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<div class="section" id="pair-style-lj-long-coul-long-command">
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<span id="index-0"></span><h1>pair_style lj/long/coul/long command<a class="headerlink" href="#pair-style-lj-long-coul-long-command" title="Permalink to this headline">¶</a></h1>
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</div>
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<div class="section" id="pair-style-lj-long-coul-long-omp-command">
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<h1>pair_style lj/long/coul/long/omp command<a class="headerlink" href="#pair-style-lj-long-coul-long-omp-command" title="Permalink to this headline">¶</a></h1>
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</div>
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<div class="section" id="pair-style-lj-long-coul-long-opt-command">
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<h1>pair_style lj/long/coul/long/opt command<a class="headerlink" href="#pair-style-lj-long-coul-long-opt-command" title="Permalink to this headline">¶</a></h1>
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</div>
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<div class="section" id="pair-style-lj-long-tip4p-long-command">
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<h1>pair_style lj/long/tip4p/long command<a class="headerlink" href="#pair-style-lj-long-tip4p-long-command" title="Permalink to this headline">¶</a></h1>
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<div class="section" id="syntax">
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<h2>Syntax<a class="headerlink" href="#syntax" title="Permalink to this headline">¶</a></h2>
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<div class="highlight-python"><div class="highlight"><pre>pair_style style args
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</pre></div>
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</div>
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<ul class="simple">
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<li>style = <em>lj/long/coul/long</em> or <em>lj/long/tip4p/long</em></li>
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<li>args = list of arguments for a particular style</li>
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</ul>
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<pre class="literal-block">
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<em>lj/long/coul/long</em> args = flag_lj flag_coul cutoff (cutoff2)
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flag_lj = <em>long</em> or <em>cut</em> or <em>off</em>
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<em>long</em> = use Kspace long-range summation for dispersion 1/r^6 term
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<em>cut</em> = use a cutoff on dispersion 1/r^6 term
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<em>off</em> = omit disperion 1/r^6 term entirely
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flag_coul = <em>long</em> or <em>off</em>
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<em>long</em> = use Kspace long-range summation for Coulombic 1/r term
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<em>off</em> = omit Coulombic term
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cutoff = global cutoff for LJ (and Coulombic if only 1 arg) (distance units)
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cutoff2 = global cutoff for Coulombic (optional) (distance units)
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<em>lj/long/tip4p/long</em> args = flag_lj flag_coul otype htype btype atype qdist cutoff (cutoff2)
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flag_lj = <em>long</em> or <em>cut</em>
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<em>long</em> = use Kspace long-range summation for dispersion 1/r^6 term
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<em>cut</em> = use a cutoff
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flag_coul = <em>long</em> or <em>off</em>
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<em>long</em> = use Kspace long-range summation for Coulombic 1/r term
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<em>off</em> = omit Coulombic term
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otype,htype = atom types for TIP4P O and H
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btype,atype = bond and angle types for TIP4P waters
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qdist = distance from O atom to massless charge (distance units)
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cutoff = global cutoff for LJ (and Coulombic if only 1 arg) (distance units)
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cutoff2 = global cutoff for Coulombic (optional) (distance units)
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</pre>
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</div>
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<div class="section" id="examples">
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<h2>Examples<a class="headerlink" href="#examples" title="Permalink to this headline">¶</a></h2>
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<div class="highlight-python"><div class="highlight"><pre>pair_style lj/long/coul/long cut off 2.5
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pair_style lj/long/coul/long cut long 2.5 4.0
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pair_style lj/long/coul/long long long 2.5 4.0
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pair_coeff * * 1 1
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pair_coeff 1 1 1 3 4
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</pre></div>
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</div>
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<div class="highlight-python"><div class="highlight"><pre>pair_style lj/long/tip4p/long long long 1 2 7 8 0.15 12.0
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pair_style lj/long/tip4p/long long long 1 2 7 8 0.15 12.0 10.0
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pair_coeff * * 100.0 3.0
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pair_coeff 1 1 100.0 3.5 9.0
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</pre></div>
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</div>
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</div>
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<div class="section" id="description">
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<h2>Description<a class="headerlink" href="#description" title="Permalink to this headline">¶</a></h2>
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<p>Style <em>lj/long/coul/long</em> computes the standard 12/6 Lennard-Jones and
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Coulombic potentials, given by</p>
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<img alt="_images/pair_lj.jpg" class="align-center" src="_images/pair_lj.jpg" />
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<img alt="_images/pair_coulomb.jpg" class="align-center" src="_images/pair_coulomb.jpg" />
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<p>where C is an energy-conversion constant, Qi and Qj are the charges on
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the 2 atoms, epsilon is the dielectric constant which can be set by
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the <a class="reference internal" href="dielectric.html"><em>dielectric</em></a> command, and Rc is the cutoff. If
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one cutoff is specified in the pair_style command, it is used for both
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the LJ and Coulombic terms. If two cutoffs are specified, they are
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used as cutoffs for the LJ and Coulombic terms respectively.</p>
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<p>The purpose of this pair style is to capture long-range interactions
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resulting from both attractive 1/r^6 Lennard-Jones and Coulombic 1/r
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interactions. This is done by use of the <em>flag_lj</em> and <em>flag_coul</em>
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settings. The <a class="reference internal" href="#veld"><span>In ‘t Veld</span></a> paper has more details on when it is
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appropriate to include long-range 1/r^6 interactions, using this
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potential.</p>
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<p>Style <em>lj/long/tip4p/long</em> implements the TIP4P water model of
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<a class="reference internal" href="pair_lj.html#jorgensen"><span>(Jorgensen)</span></a>, which introduces a massless site located a
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short distance away from the oxygen atom along the bisector of the HOH
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angle. The atomic types of the oxygen and hydrogen atoms, the bond
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and angle types for OH and HOH interactions, and the distance to the
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massless charge site are specified as pair_style arguments.</p>
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<div class="admonition warning">
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<p class="first admonition-title">Warning</p>
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<p class="last">For each TIP4P water molecule in your system, the atom
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IDs for the O and 2 H atoms must be consecutive, with the O atom
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first. This is to enable LAMMPS to “find” the 2 H atoms associated
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with each O atom. For example, if the atom ID of an O atom in a TIP4P
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water molecule is 500, then its 2 H atoms must have IDs 501 and 502.</p>
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</div>
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<p>See the <a class="reference internal" href="Section_howto.html#howto-8"><span>howto section</span></a> for more
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information on how to use the TIP4P pair style. Note that the
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neighobr list cutoff for Coulomb interactions is effectively extended
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by a distance 2*qdist when using the TIP4P pair style, to account for
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the offset distance of the fictitious charges on O atoms in water
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molecules. Thus it is typically best in an efficiency sense to use a
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LJ cutoff >= Coulomb cutoff + 2*qdist, to shrink the size of the
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neighbor list. This leads to slightly larger cost for the long-range
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calculation, so you can test the trade-off for your model.</p>
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<p>If <em>flag_lj</em> is set to <em>long</em>, no cutoff is used on the LJ 1/r^6
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dispersion term. The long-range portion can be calculated by using
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the <a class="reference internal" href="kspace_style.html"><em>kspace_style ewald/disp or pppm/disp</em></a> commands.
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The specified LJ cutoff then determines which portion of the LJ
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interactions are computed directly by the pair potential versus which
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part is computed in reciprocal space via the Kspace style. If
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<em>flag_lj</em> is set to <em>cut</em>, the LJ interactions are simply cutoff, as
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with <a class="reference internal" href="pair_lj.html"><em>pair_style lj/cut</em></a>.</p>
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<p>If <em>flag_coul</em> is set to <em>long</em>, no cutoff is used on the Coulombic
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interactions. The long-range portion can calculated by using any of
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several <a class="reference internal" href="kspace_style.html"><em>kspace_style</em></a> command options such as
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<em>pppm</em> or <em>ewald</em>. Note that if <em>flag_lj</em> is also set to long, then
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the <em>ewald/disp</em> or <em>pppm/disp</em> Kspace style needs to be used to
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perform the long-range calculations for both the LJ and Coulombic
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interactions. If <em>flag_coul</em> is set to <em>off</em>, Coulombic interactions
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are not computed.</p>
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<p>The following coefficients must be defined for each pair of atoms
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types via the <a class="reference internal" href="pair_coeff.html"><em>pair_coeff</em></a> command as in the examples
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above, or in the data file or restart files read by the
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<a class="reference internal" href="read_data.html"><em>read_data</em></a> or <a class="reference internal" href="read_restart.html"><em>read_restart</em></a>
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commands, or by mixing as described below:</p>
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<ul class="simple">
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<li>epsilon (energy units)</li>
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<li>sigma (distance units)</li>
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<li>cutoff1 (distance units)</li>
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<li>cutoff2 (distance units)</li>
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</ul>
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<p>Note that sigma is defined in the LJ formula as the zero-crossing
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distance for the potential, not as the energy minimum at 2^(1/6)
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sigma.</p>
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<p>The latter 2 coefficients are optional. If not specified, the global
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LJ and Coulombic cutoffs specified in the pair_style command are used.
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If only one cutoff is specified, it is used as the cutoff for both LJ
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and Coulombic interactions for this type pair. If both coefficients
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are specified, they are used as the LJ and Coulombic cutoffs for this
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type pair.</p>
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<p>Note that if you are using <em>flag_lj</em> set to <em>long</em>, you
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cannot specify a LJ cutoff for an atom type pair, since only one
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global LJ cutoff is allowed. Similarly, if you are using <em>flag_coul</em>
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set to <em>long</em>, you cannot specify a Coulombic cutoff for an atom type
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pair, since only one global Coulombic cutoff is allowed.</p>
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<p>For <em>lj/long/tip4p/long</em> only the LJ cutoff can be specified
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since a Coulombic cutoff cannot be specified for an individual I,J
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type pair. All type pairs use the same global Coulombic cutoff
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specified in the pair_style command.</p>
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<hr class="docutils" />
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<p>Styles with a <em>cuda</em>, <em>gpu</em>, <em>intel</em>, <em>kk</em>, <em>omp</em>, or <em>opt</em> suffix are
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functionally the same as the corresponding style without the suffix.
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They have been optimized to run faster, depending on your available
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hardware, as discussed in <a class="reference internal" href="Section_accelerate.html"><em>Section_accelerate</em></a>
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of the manual. The accelerated styles take the same arguments and
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should produce the same results, except for round-off and precision
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issues.</p>
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<p>These accelerated styles are part of the USER-CUDA, GPU, USER-INTEL,
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KOKKOS, USER-OMP and OPT packages, respectively. They are only
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enabled if LAMMPS was built with those packages. See the <a class="reference internal" href="Section_start.html#start-3"><span>Making LAMMPS</span></a> section for more info.</p>
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<p>You can specify the accelerated styles explicitly in your input script
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by including their suffix, or you can use the <a class="reference internal" href="Section_start.html#start-7"><span>-suffix command-line switch</span></a> when you invoke LAMMPS, or you can
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use the <a class="reference internal" href="suffix.html"><em>suffix</em></a> command in your input script.</p>
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<p>See <a class="reference internal" href="Section_accelerate.html"><em>Section_accelerate</em></a> of the manual for
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more instructions on how to use the accelerated styles effectively.</p>
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<hr class="docutils" />
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<p><strong>Mixing, shift, table, tail correction, restart, rRESPA info</strong>:</p>
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<p>For atom type pairs I,J and I != J, the epsilon and sigma coefficients
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and cutoff distance for all of the lj/long pair styles can be mixed.
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The default mix value is <em>geometric</em>. See the “pair_modify” command
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for details.</p>
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<p>These pair styles support the <a class="reference internal" href="pair_modify.html"><em>pair_modify</em></a> shift
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option for the energy of the Lennard-Jones portion of the pair
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interaction, assuming <em>flag_lj</em> is <em>cut</em>.</p>
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<p>These pair styles support the <a class="reference internal" href="pair_modify.html"><em>pair_modify</em></a> table and
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table/disp options since they can tabulate the short-range portion of
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the long-range Coulombic and dispersion interactions.</p>
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<p>Thes pair styles do not support the <a class="reference internal" href="pair_modify.html"><em>pair_modify</em></a>
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tail option for adding a long-range tail correction to the
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Lennard-Jones portion of the energy and pressure.</p>
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<p>These pair styles write their information to <a class="reference internal" href="restart.html"><em>binary restart files</em></a>, so pair_style and pair_coeff commands do not need
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to be specified in an input script that reads a restart file.</p>
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<p>The pair lj/long/coul/long styles support the use of the <em>inner</em>,
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<em>middle</em>, and <em>outer</em> keywords of the <a class="reference internal" href="run_style.html"><em>run_style respa</em></a>
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command, meaning the pairwise forces can be partitioned by distance at
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different levels of the rRESPA hierarchy. See the
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<a class="reference internal" href="run_style.html"><em>run_style</em></a> command for details.</p>
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</div>
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<hr class="docutils" />
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<div class="section" id="restrictions">
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<h2>Restrictions<a class="headerlink" href="#restrictions" title="Permalink to this headline">¶</a></h2>
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<p>These styles are part of the KSPACE package. They are only enabled if
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LAMMPS was built with that package. See the <a class="reference internal" href="Section_start.html#start-3"><span>Making LAMMPS</span></a> section for more info. Note that
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the KSPACE package is installed by default.</p>
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</div>
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<div class="section" id="related-commands">
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<h2>Related commands<a class="headerlink" href="#related-commands" title="Permalink to this headline">¶</a></h2>
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<p><a class="reference internal" href="pair_coeff.html"><em>pair_coeff</em></a></p>
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<p><strong>Default:</strong> none</p>
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<hr class="docutils" />
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<p id="veld"><strong>(In ‘t Veld)</strong> In ‘t Veld, Ismail, Grest, J Chem Phys (accepted) (2007).</p>
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