forked from lijiext/lammps
163 lines
5.8 KiB
Plaintext
163 lines
5.8 KiB
Plaintext
"LAMMPS WWW Site"_lws - "LAMMPS Documentation"_ld - "LAMMPS Commands"_lc :c
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:link(lws,http://lammps.sandia.gov)
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:link(ld,Manual.html)
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:link(lc,Section_commands.html#comm)
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:line
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pair_style sw command :h3
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[Syntax:]
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pair_style sw :pre
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[Examples:]
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pair_style sw
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pair_coeff * * si.sw Si
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pair_coeff * * SiC.sw Si C Si :pre
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[Description:]
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The {sw} style computes a 3-body "Stillinger-Weber"_#Stillinger
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potential for the energy E of a system of atoms as
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:c,image(Eqs/pair_sw.jpg)
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where phi2 is a two-body term and phi3 is a three-body term. The
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summations in the formula are over all neighbors J and K of atom I
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within a cutoff distance = a*sigma.
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Only a single pair_coeff command is used with the {sw} style which
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specifies a Stillinger-Weber potential file with parameters for all
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needed elements. These are mapped to LAMMPS atom types by specifying
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N additional arguments after the filename in the pair_coeff command,
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where N is the number of LAMMPS atom types:
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filename
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N element names = mapping of SW elements to atom types :ul
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As an example, imagine the SiC.sw file has Stillinger-Weber values for
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Si and C. If your LAMMPS simulation has 4 atoms types and you want
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the 1st 3 to be Si, and the 4th to be C, you would use the following
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pair_coeff command:
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pair_coeff * * SiC.sw Si Si Si C :pre
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The 1st 2 arguments must be * * so as to span all LAMMPS atom types.
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The first three Si arguments map LAMMPS atom types 1,2,3 to the Si
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element in the SW file. The final C argument maps LAMMPS atom type 4
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to the C element in the SW file. If a mapping value is specified as
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NULL, the mapping is not performed. This can be used when a {sw}
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potential is used as part of the {hybrid} pair style. The NULL values
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are placeholders for atom types that will be used with other
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potentials.
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Stillinger-Weber files in the {potentials} directory of the LAMMPS
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distribution have a ".sw" suffix. Lines that are not blank or
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comments (starting with #) define parameters for a triplet of
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elements. The parameters in a single entry correspond to the two-body
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and three-body coefficients in the formula above:
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element 1 (the center atom in a 3-body interaction)
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element 2
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element 3
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epsilon (energy units)
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sigma (distance units)
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a
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lambda
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gamma
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costheta0
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A
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B
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p
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q :ul
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The A, B, p, and q parameters are used only for two-body
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interactions. The lambda, gamma, and costheta0 parameters are used only for
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three-body interactions. The epsilon, sigma and a parameters are used
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for both two-body and three-body interactions.
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The non-annotated parameters are unitless.
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The Stillinger-Weber potential file must contain entries for all the
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elements listed in the pair_coeff command. It can also contain
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entries for additional elements not being used in a particular
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simulation; LAMMPS ignores those entries.
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For a single-element simulation, only a single entry is required
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(e.g. SiSiSi). For a two-element simulation, the file must contain 8
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entries (for SiSiSi, SiSiC, SiCSi, SiCC, CSiSi, CSiC, CCSi, CCC), that
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specify SW parameters for all permutations of the two elements
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interacting in three-body configurations. Thus for 3 elements, 27
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entries would be required, etc.
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As annotated above, the first element in the entry is the center atom
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in a three-body interaction. Thus an entry for SiCC means a Si atom
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with 2 C atoms as neighbors. By symmetry, three-body parameters for
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SiCSi and SiSiC entries should be the same. The parameters used for
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the two-body interaction come from the entry where the 2nd element is
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repeated. Thus the two-body parameters for Si interacting with C,
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comes from the SiCC entry. Again by symmetry, the two-body parameters
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in the SiCC and CSiSi entries should thus be the same. The parameters
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used for a particular three-body interaction come from the entry with
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the corresponding three elements. The parameters used only for
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two-body interactions (A, B, p, and q) in entries whose 2nd and 3rd
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element are different (e.g. SiCSi) are not used for anything and can
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be set to 0.0 if desired.
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:line
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[Mixing, shift, table, tail correction, per-atom energy/stress,
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restart, rRESPA info]:
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For atom type pairs I,J and I != J, where types I and J correspond to
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two different element types, mixing is performed by LAMMPS as
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described above from values in the potential file.
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This pair style does not support the "pair_modify"_pair_modify.html
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shift, table, and tail options.
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This pair style does not calculate per-atom energy and stress, as used
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by the "compute epair/atom"_compute_epair_atom.html, "compute
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stress/atom"_compute_stress_atom.html, and "dump custom"_dump.html
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commands.
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This pair style does not write its information to "binary restart
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files"_restart.html, since it is stored in potential files. Thus, you
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need to re-specify the pair_style and pair_coeff commands in an input
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script that reads a restart file.
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This pair style can only be used via the {pair} keyword of the
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"run_style respa"_run_style.html command. It does not support the
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{inner}, {middle}, {outer} keywords of the "run_style
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command"_run_style.html.
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:line
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[Restrictions:]
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This pair style is part of the "manybody" package. It is only enabled
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if LAMMPS was built with that package (which it is by default). See
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the "Making LAMMPS"_Section_start.html#2_3 section for more info.
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This pair style requires the "newton"_newton.html setting to be "on"
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for pair interactions.
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The Stillinger-Weber potential files provided with LAMMPS (see the
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potentials directory) are parameterized for metal "units"_units.html.
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You can use the SW potential with any LAMMPS units, but you would need
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to create your own SW potential file with coefficients listed in the
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appropriate units if your simulation doesn't use "metal" units.
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[Related commands:]
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"pair_coeff"_pair_coeff.html
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[Default:] none
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:line
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:link(Stillinger)
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[(Stillinger)] Stillinger and Weber, Phys Rev B, 31, 5262 (1985).
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