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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

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var __re = new RegExp('^' + "github\\.com" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

About

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Force GitHub README to respect dark mode\n(function() {\n var style = document.createElement('style');\n style.textContent = '\n .markdown-body {\n color-scheme: dark light;\n }\n .markdown-body pre { background: #161b22 !important; }\n .markdown-body code { background: rgba(110, 118, 129, 0.4) !important; }\n .markdown-body table th, .markdown-body table td { border-color: #30363d !important; }\n .markdown-body img { background: #0d1117; }\n .markdown-body blockquote { border-left-color: #8b949e; }\n .markdown-body hr { border-color: #30363d; }\n ';\n document.head.appendChild(style);\n})();", "GitHub Dark Mode README Fix"); } } catch(__e) { console.warn('[Userscript:GitHub Dark Mode README Fix]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

About

No description, website, or topics provided.

Resources

Stars

7 stars

Watchers

1 watching

Forks

Releases

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Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Highlight search terms from Google/DuckDuckGo/Bing referrer\n(function() {\n var ref = document.referrer;\n var terms = [];\n \n if (ref.includes('google.com') || ref.includes('duckduckgo.com') || ref.includes('bing.com')) {\n var url = new URL(ref);\n var q = url.searchParams.get('q') || url.searchParams.get('p');\n if (q) {\n terms = q.split(/\\s+/).filter(function(t) { return t.length > 2; });\n }\n }\n \n if (terms.length === 0) return;\n \n var style = document.createElement('style');\n style.textContent = '.userscript-highlight { background: #fbbf24; color: #1a1a2e; padding: 1px 3px; border-radius: 2px; }';\n document.head.appendChild(style);\n \n function highlight(node) {\n if (node.nodeType === 3) { // text node\n var text = node.textContent;\n var found = false;\n terms.forEach(function(term) {\n var regex = new RegExp('(' + term.replace(/[.*+?^${}()|[\\]\\\\]/g, '\\\\') + ')', 'gi');\n if (regex.test(text)) {\n found = true;\n var frag = document.createDocumentFragment();\n var parts = text.split(regex);\n parts.forEach(function(part, i) {\n if (i % 2 === 0) {\n frag.appendChild(document.createTextNode(part));\n } else {\n var span = document.createElement('span');\n span.className = 'userscript-highlight';\n span.textContent = part;\n frag.appendChild(span);\n }\n });\n node.parentNode.replaceChild(frag, node);\n }\n });\n } else if (node.nodeType === 1 && node.childNodes) { // element\n var skipTags = ['SCRIPT', 'STYLE', 'NOSCRIPT', 'TEXTAREA', 'INPUT', 'SELECT'];\n if (!skipTags.includes(node.tagName)) {\n Array.from(node.childNodes).forEach(highlight);\n }\n }\n }\n \n highlight(document.body);\n \n // Re-highlight on dynamic content\n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1 || node.nodeType === 3) highlight(node);\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Highlight Search Terms"); } } catch(__e) { console.warn('[Userscript:Highlight Search Terms]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

About

No description, website, or topics provided.

Resources

Stars

7 stars

Watchers

1 watching

Forks

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Strip utm_, fbclid, gclid, etc. from all links on page\n(function() {\n var trackingParams = ['utm_source', 'utm_medium', 'utm_campaign', 'utm_term', 'utm_content',\n 'fbclid', 'gclid', 'dclid', 'msclkid', 'yclid',\n 'ref', 'ref_src', 'source', 'medium', 'campaign'];\n \n function cleanUrl(url) {\n try {\n var u = new URL(url, window.location.origin);\n var changed = false;\n trackingParams.forEach(function(p) {\n if (u.searchParams.has(p)) {\n u.searchParams.delete(p);\n changed = true;\n }\n });\n return changed ? u.toString() : url;\n } catch (e) {\n return url;\n }\n }\n \n function cleanLinks() {\n document.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n \n cleanLinks();\n \n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1) {\n if (node.tagName === 'A') cleanLinks();\n node.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Remove Tracking Parameters from Links"); } } catch(__e) { console.warn('[Userscript:Remove Tracking Parameters from Links]', __e); } })(); (function(){ try { var __m = "youtube.com"; var __re = new RegExp('^' + "youtube\\.com" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Auto-enable theater mode on YouTube\n(function() {\n function tryTheater() {\n var btn = document.querySelector('button[aria-label=\"Theater mode\"], ytd-player #player button[title=\"Theater mode\"]');\n if (btn && !btn.classList.contains('activated')) {\n btn.click();\n }\n }\n \n // Try immediately\n tryTheater();\n \n // Try after navigation (SPA)\n var lastUrl = location.href;\n setInterval(function() {\n if (location.href !== lastUrl) {\n lastUrl = location.href;\n setTimeout(tryTheater, 500);\n }\n }, 1000);\n \n // Also try on player load\n var observer = new MutationObserver(tryTheater);\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "YouTube Theater Mode Default"); } } catch(__e) { console.warn('[Userscript:YouTube Theater Mode Default]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

About

No description, website, or topics provided.

Resources

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7 stars

Watchers

1 watching

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Remove or un-stick sticky/fixed headers that block content\n(function() {\n function unstick() {\n document.querySelectorAll('header, nav, [role=\"banner\"], .header, .navbar, .sticky, .fixed-top, [style*=\"position: fixed\"], [style*=\"position:sticky\"]').forEach(function(el) {\n if (el.style.position === 'fixed' || el.style.position === 'sticky' || \n getComputedStyle(el).position === 'fixed' || getComputedStyle(el).position === 'sticky') {\n el.style.position = 'static';\n el.style.top = 'auto';\n el.style.zIndex = 'auto';\n }\n });\n }\n \n unstick();\n \n var observer = new MutationObserver(unstick);\n observer.observe(document.body, { childList: true, subtree: true, attributes: true, attributeFilter: ['style', 'class'] });\n})();", "Kill Sticky Headers"); } } catch(__e) { console.warn('[Userscript:Kill Sticky Headers]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

About

No description, website, or topics provided.

Resources

Stars

7 stars

Watchers

1 watching

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Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Universal Dark Mode - works on any site\n(function() {\n var enabled = true;\n \n function applyDarkMode() {\n if (!enabled) return;\n \n // Create style element if it doesn't exist\n var style = document.getElementById('universal-dark-mode-style');\n if (!style) {\n style = document.createElement('style');\n style.id = 'universal-dark-mode-style';\n document.head.appendChild(style);\n }\n \n // Dark mode CSS - inverts colors but preserves images/video\n style.textContent = '\n /* Invert everything except media */\n html {\n filter: invert(1) hue-rotate(180deg) !important;\n background: #1a1a2e !important;\n }\n \n /* Restore images, videos, iframes, canvas */\n img, video, iframe, canvas, svg, picture, [style*=\"background-image\"] {\n filter: invert(1) hue-rotate(180deg) !important;\n }\n \n /* Preserve specific elements that should not be inverted */\n .no-dark-mode, .no-dark-mode *,\n [data-theme=\"light\"], [data-theme=\"light\"],\n .ace_editor, .ace_editor *,\n .CodeMirror, .CodeMirror *,\n .monaco-editor, .monaco-editor *,\n .markdown-body pre, .markdown-body pre *,\n .highlight, .highlight *,\n pre code, pre code * {\n filter: none !important;\n }\n \n /* Fix common UI elements */\n .modal, .popup, .dropdown-menu, .tooltip, .popover {\n filter: invert(1) hue-rotate(180deg) !important;\n background: #2d2d44 !important;\n border-color: #444 !important;\n }\n \n /* Scrollbars */\n ::-webkit-scrollbar { background: #1a1a2e !important; }\n ::-webkit-scrollbar-thumb { background: #444 !important; }\n ::-webkit-scrollbar-thumb:hover { background: #555 !important; }\n \n /* Selection */\n ::selection { background: #4ecdc4 !important; color: #1a1a2e !important; }\n ::-moz-selection { background: #4ecdc4 !important; color: #1a1a2e !important; }\n ';\n }\n \n function removeDarkMode() {\n var style = document.getElementById('universal-dark-mode-style');\n if (style) style.remove();\n }\n \n // Toggle with Alt+Shift+D\n document.addEventListener('keydown', function(e) {\n if (e.altKey && e.shiftKey && e.key === 'D') {\n e.preventDefault();\n enabled = !enabled;\n if (enabled) {\n applyDarkMode();\n console.log('[Universal Dark Mode] Enabled');\n } else {\n removeDarkMode();\n console.log('[Universal Dark Mode] Disabled');\n }\n }\n });\n \n // Apply on load\n applyDarkMode();\n \n // Re-apply on dynamic content\n var observer = new MutationObserver(function(mutations) {\n if (enabled && !document.getElementById('universal-dark-mode-style')) {\n applyDarkMode();\n }\n });\n observer.observe(document.head, { childList: true });\n \n console.log('[Universal Dark Mode] Loaded - Press Alt+Shift+D to toggle');\n})();", "Universal Dark Mode"); } } catch(__e) { console.warn('[Userscript:Universal Dark Mode]', __e); } })(); })();
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md_patchy_model

Tutorial on using the MD Patch Model of JR Espinosa et al.

 In case of problems please email: jaj52@cam.ac.uk

Reference

If you use any of this code please cite the reference below, which includes full details on the model:

J. Chem. Phys. 150, 224510 (2019) https://aip.scitation.org/doi/10.1063/1.5098551?af=R&


Software and Packages

  1. LAMMPS (Large-scale atomiic/molecular massively parallel simulator)

    1.1. Install LAMMPS with mpi - for more information on how to obtain and install LAMMPS see: https://lammps.sandia.gov/doc/Install.html

    1.2. Example installation on HPC (Cambridge users)
    Download lammps source from github
    > git clone https://github.com/lammps/lammps.git
    > cd lammps
    > git checkout origin/stable
    > module purge
    > module load rhel7/default-peta4
    > cd src

    1.3. Install lammps packages (RIGID, USER-SMD, MOLECULE) required for MD patchy simulations
    > make yes-rigid
    > make yes-user-smd
    > make lib-smd args="-b"
    > make yes-molecule
    > make package-update
    > make mpi

    You should obtain the executable: lmp_mpi


Procedure: MD simulation with patchy particles and polymer

We will prepare a box containing a given number of patchy particles (hard spheres with patches on them) and a polymer chain. Then we will simulate the system in the NVT ensemble. The following describes the files in each directory, in the order of usage.

STEP 1: replicate/
INPUT FILES

  • conf1.xyz: xyz coordinates for one patchy particle in the correct format for lammps (ie input configuration)
  • in.replicate: simulation parameters for replicating conf1.xyz. Gives a multiple of orginal patchy particle based on parameters given to "replicate" keyword
  • table_gas_ideal.xvg: ideal gas potential for interactions between patches and hard spheres in tabular form
  • table_PHS.xvg: potential for hard sphere-hard sphere interactions in tabular form
  • table_12KT.xvg: potential for patchy-patchy interactions in tabular form

RUN AND USEFUL OUTPUT

  • run.sh: example script for running lammps on the command line with the input files descried above
  • replicas.lammpstrj: lammps trajectory file with given number of frames. Each frame will contain a box of many patchy particles (number of particles = xyz specified by replicate keyword)

STEP 2: removing_particles/

  • replicas.lammpstrj: edited version of replicas.lammpstrj in which the last configuration is saved and all other configurations are discarded.
  • trj_config: dumped coordinates from replicas.lammpstrj
  • trj_ordered: atoms from trj_config sorted sequentially
  • halo_bola.f90: selects a subset of particles between rmin and rmax from trj_ordered and formats coordinates
    Compile and run as follows:

gfortran -o halo_bola halo_bola.f90
./halo_bola

  • boli_final.g96: formatted coordinates for subset (approx. 25%) of patchy particles obtained by compiling and running halo_bola.f90 above.

STEP 3: create_config/

  • boli_final.g96: same as in step 2
  • conf2.xyz: same format as conf1.xyz above. The number of atoms is updated to total in boli_final.g96 . The box information is obtained from replicas.lammpstrj. The last section of the file contains the contents of boli_final.g96. We now have a box containing 1584 patchy particles (equivalent to 6336 atoms).
  • halo_chain.f90: Compile and run to set up atom coordinates, bonds and angles for polymer

gfortran -o halo_chain halo_chain.f90
./halo_chain

  • chain.g96: formatted coordinates for polymer based on variables set in halo_chain.f90. Y and Z coordinates are edited manually for now.
  • conf3.xyz: (cat conf2.xyz chain.g96 > conf3.xyz). Updated total atoms, bonds, angles. Updated atom types, bond types, angle types, added mass for polymer particles.

STEP 4: potentials/
The final step before we can run our simulations is to create the potentials for our patchy-particles and polymer chain interactions.

  • Compile each file below with double precision

gfortran -fdefault-real-8 -o a.out ideal_gas.f
./a.out

  • ideal_gas.f: produces table_gas_ideal.xvg which describes interactions between patches and hard spheres (atom types 1 and 2), and patches and polymer particles (2 and 3).
  • potencial_LJ.f: produces table_LJ.xvg which describes interactions between hard spheres and polymer particles (atom types 1 and 3).
  • potencial_PHS_lammps.f: produces table_PHS.xvg which describes interactions between hard spheres (1 and 1), and polymer particles (3 and 3)
  • patch_patch.f: produces table_XKT.xvg which describes interactions between patches (2 and 2) at a given temparature.

STEP 5: simulate/

INPUT FILES

  • conf3.xyz
  • potentials in tabular form: table_gas_ideal.xvg, table_LJ.xvg, table_PHS.xvg, table_10_5KT.xvg
  • in.minimal: lammps input file containing simulation parameters. A very short simulation.

RUN and OUTPUT

  • run.sh: execute this script to obtain sample output.
  • patchy_and_polymer.lammpstraj: Lammps trajectory file.

Visualisation: (Optional)

  • Load patchy_and_polymer.lammpstraj in VMD to visulalise box with polymer chain and patchy particles.

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