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dockonsurf / modules / screening.py @ e1c5f171

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import logging
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import numpy as np
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import ase
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logger = logging.getLogger('DockOnSurf')
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def assign_prop(atoms: ase.Atoms, prop_name: str, prop_val):  # TODO Needed?
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    atoms.info[prop_name] = prop_val
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def select_confs(orig_conf_list: list, calc_dirs: list, magns: list,
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                 num_sel: int, code: str):
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    """Takes a list ase.Atoms and selects the most different magnitude-wise.
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    Given a list of ase.Atoms objects and a list of magnitudes, it selects a
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    number of the most different conformers according to every magnitude
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    specified.
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    @param orig_conf_list: list of ase.Atoms objects to select among.
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    @param calc_dirs: List of directories where to read the energies from.
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    @param magns: list of str with the names of the magnitudes to use for the
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        conformer selection. Supported magnitudes: 'energy', 'moi'.
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    @param num_sel: number of conformers to select for every of the magnitudes.
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    @param code: The code that generated the magnitude information.
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         Supported codes: See formats.py
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    @return: list of the selected ase.Atoms objects.
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    """
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    from copy import deepcopy
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    from modules.formats import collect_energies
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    conf_list = deepcopy(orig_conf_list)
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    conf_enrgs, mois, selected_ids = [], [], []
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    if num_sel >= len(conf_list):
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        logger.warning('Number of conformers per magnitude is equal or larger '
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                       'than the total number of conformers. Using all '
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                       f'available conformers: {len(conf_list)}.')
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        return conf_list
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    # Read properties
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    if 'energy' in magns:
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        conf_enrgs = collect_energies(calc_dirs, code, 'isolated')
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    if 'moi' in magns:
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        mois = np.array([conf.get_moments_of_inertia() for conf in conf_list])
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    # Assign values
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    for i, conf in enumerate(conf_list):
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        assign_prop(conf, 'idx', i)
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        if 'energy' in magns:
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            assign_prop(conf, 'energy', conf_enrgs[i])
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        if 'moi' in magns:
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            assign_prop(conf, 'moi', mois[i, 2])
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    # pick ids
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    for magn in magns:
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        sorted_list = sorted(conf_list, key=lambda conf: abs(conf.info[magn]))
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        if sorted_list[-1].info['idx'] not in selected_ids:
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            selected_ids.append(sorted_list[-1].info['idx'])
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        if num_sel > 1:
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            for i in range(0, len(sorted_list) - 1,
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                           len(conf_list) // (num_sel - 1)):
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                if sorted_list[i].info['idx'] not in selected_ids:
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                    selected_ids.append(sorted_list[i].info['idx'])
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    logger.info(f'Selected {len(selected_ids)} conformers for adsorption.')
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    return [conf_list[idx] for idx in selected_ids]
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def get_vect_angle(v1: list, v2: list, degrees=False):
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    """Computes the angle between two vectors.
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    @param v1: The first vector.
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    @param v2: The second vector.
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    @param degrees: Whether the result should be in radians (True) or in
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        degrees (False).
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    @return: The angle in radians if degrees = False, or in degrees if
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        degrees =True
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    """
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    v1_u = v1 / np.linalg.norm(v1)
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    v2_u = v2 / np.linalg.norm(v2)
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    angle = np.arccos(np.clip(np.dot(v1_u, v2_u), -1.0, 1.0))
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    return angle if not degrees else angle * 180 / np.pi
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def vect_avg(vects):
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    """Computes the element-wise mean of a set of vectors.
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    @param vects: list of lists-like: containing the vectors (num_vectors,
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        length_vector).
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    @return: vector average computed doing the element-wise mean.
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    """
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    from utilities import try_command
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    err = "vect_avg parameter vects must be a list-like, able to be converted" \
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          " np.array"
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    array = try_command(np.array, [(ValueError, err)], vects)
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    if len(array.shape) == 1:
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        return array
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    else:
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        num_vects = array.shape[1]
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        return np.array([np.average(array[:, i]) for i in range(num_vects)])
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def get_atom_coords(atoms: ase.Atoms, ctrs_list=None):
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    """Gets the coordinates of the specified indices from a ase.Atoms object.
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    Given an ase.Atoms object and a list of atom indices specified in ctrs_list
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    it gets the coordinates of the specified atoms. If the element in the
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    ctrs_list is not an index but yet a list of indices, it computes the
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    element-wise mean of the coordinates of the atoms specified in the inner
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    list.
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    @param atoms: ase.Atoms object for which to obtain the coordinates of.
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    @param ctrs_list: list of (indices/list of indices) of the atoms for which
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                      the coordinates should be extracted.
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    @return: np.ndarray of atomic coordinates.
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    """
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    coords = []
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    err = "'ctrs_list' argument must be an integer, a list of integers or a " \
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          "list of lists of integers. Every integer must be in the range " \
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          "[0, num_atoms)"
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    if ctrs_list is None:
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        ctrs_list = range(len(atoms))
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    elif isinstance(ctrs_list, int):
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        if ctrs_list not in range(len(atoms)):
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            logger.error(err)
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            raise ValueError(err)
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        return atoms[ctrs_list].position
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    for elem in ctrs_list:
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        if isinstance(elem, list):
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            coords.append(vect_avg([atoms[c].position for c in elem]))
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        elif isinstance(elem, int):
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            coords.append(atoms[elem].position)
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        else:
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            logger.error(err)
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            raise ValueError
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    return np.array(coords)
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def add_adsorbate(slab, adsorbate, site_coord, ctr_coord, height, offset=None,
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                  norm_vect=(0, 0, 1)):
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    """Add an adsorbate to a surface.
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    This function extends the functionality of ase.build.add_adsorbate
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    (https://wiki.fysik.dtu.dk/ase/ase/build/surface.html#ase.build.add_adsorbate)
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    by enabling to change the z coordinate and the axis perpendicular to the
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    surface.
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    @param slab: ase.Atoms object containing the coordinates of the surface
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    @param adsorbate: ase.Atoms object containing the coordinates of the
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        adsorbate.
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    @param site_coord: The coordinates of the adsorption site on the surface.
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    @param ctr_coord: The coordinates of the adsorption center in the molecule.
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    @param height: The height above the surface where to adsorb.
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    @param offset: Offsets the adsorbate by a number of unit cells. Mostly
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        useful when adding more than one adsorbate.
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    @param norm_vect: The vector perpendicular to the surface.
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    """
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    from copy import deepcopy
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    info = slab.info.get('adsorbate_info', {})
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    pos = np.array([0.0, 0.0, 0.0])  # part of absolute coordinates
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    spos = np.array([0.0, 0.0, 0.0])  # part relative to unit cell
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    norm_vect_u = np.array(norm_vect) / np.linalg.norm(norm_vect)
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    if offset is not None:
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        spos += np.asarray(offset, float)
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    if isinstance(site_coord, str):
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        # A site-name:
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        if 'sites' not in info:
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            raise TypeError('If the atoms are not made by an ase.build '
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                            'function, position cannot be a name.')
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        if site_coord not in info['sites']:
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            raise TypeError('Adsorption site %s not supported.' % site_coord)
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        spos += info['sites'][site_coord]
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    else:
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        pos += site_coord
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    if 'cell' in info:
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        cell = info['cell']
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    else:
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        cell = slab.get_cell()
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    pos += np.dot(spos, cell)
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    # Convert the adsorbate to an Atoms object
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    if isinstance(adsorbate, ase.Atoms):
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        ads = deepcopy(adsorbate)
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    elif isinstance(adsorbate, ase.Atom):
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        ads = ase.Atoms([adsorbate])
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    else:
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        # Assume it is a string representing a single Atom
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        ads = ase.Atoms([ase.Atom(adsorbate)])
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    pos += height * norm_vect_u
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    # Move adsorbate into position
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    ads.translate(pos - ctr_coord)
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    # Attach the adsorbate
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    slab.extend(ads)
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def check_collision(slab_molec, slab_num_atoms, min_height, vect, nn_slab=0,
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                    nn_molec=0, coll_coeff=0.9):
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    """Checks whether a slab and a molecule collide or not.
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    @param slab_molec: The system of adsorbate-slab for which to detect if there
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        are collisions.
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    @param nn_slab: Number of neigbors in the surface.
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    @param nn_molec: Number of neighbors in the molecule.
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    @param coll_coeff: The coefficient that multiplies the covalent radius of
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        atoms resulting in a distance that two atoms being closer to that is
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        considered as atomic collision.
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    @param slab_num_atoms: Number of atoms of the bare slab.
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    @param min_height: The minimum height atoms can have to not be considered as
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        colliding.
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    @param vect: The vector perpendicular to the slab.
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    @return: bool, whether the surface and the molecule collide.
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    """
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    from ase.neighborlist import natural_cutoffs, neighbor_list
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    if min_height is not False:
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        cart_axes = [[1.0, 0.0, 0.0], [0.0, 1.0, 0.0], [0.0, 0.0, 1.0],
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                     [-1.0, 0.0, 0.0], [0.0, -1.0, 0.0], [0.0, 0.0, -1.0]]
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        if vect.tolist() in cart_axes:
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            for atom in slab_molec[slab_num_atoms:]:
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                for i, coord in enumerate(vect):
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                    if coord == 0:
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                        continue
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                    if atom.position[i] * coord < min_height:
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                        return True
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            return False
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    else:
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        slab_molec_cutoffs = natural_cutoffs(slab_molec, mult=coll_coeff)
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        slab_molec_nghbs = len(
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            neighbor_list("i", slab_molec, slab_molec_cutoffs))
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        if slab_molec_nghbs > nn_slab + nn_molec:
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            return True
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        else:
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            return False
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def dissociate_h(slab_molec_orig, h_idx, num_atoms_slab, neigh_cutoff=1):
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    # TODO rethink
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    """Tries to dissociate a H from the molecule and adsorbs it on the slab.
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    Tries to dissociate a H atom from the molecule and adsorb in on top of the
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    surface if the distance is shorter than two times the neigh_cutoff value.
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    @param slab_molec_orig: The ase.Atoms object of the system adsorbate-slab.
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    @param h_idx: The index of the hydrogen atom to carry out adsorption of.
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    @param num_atoms_slab: The number of atoms of the slab without adsorbate.
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    @param neigh_cutoff: half the maximum distance between the surface and the
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        H for it to carry out dissociation.
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    @return: An ase.Atoms object of the system adsorbate-surface with H
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    """
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    from copy import deepcopy
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    from ase.neighborlist import NeighborList
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    slab_molec = deepcopy(slab_molec_orig)
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    cutoffs = len(slab_molec) * [neigh_cutoff]
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    nl = NeighborList(cutoffs, self_interaction=False, bothways=True)
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    nl.update(slab_molec)
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    surf_h_vect = np.array([np.infty] * 3)
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    for neigh_idx in nl.get_neighbors(h_idx)[0]:
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        if neigh_idx < num_atoms_slab:
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            dist = np.linalg.norm(slab_molec[neigh_idx].position -
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                                  slab_molec[h_idx].position)
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            if dist < np.linalg.norm(surf_h_vect):
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                surf_h_vect = slab_molec[neigh_idx].position \
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                              - slab_molec[h_idx].position
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    if np.linalg.norm(surf_h_vect) != np.infty:
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        trans_vect = surf_h_vect - surf_h_vect / np.linalg.norm(surf_h_vect)
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        slab_molec[h_idx].position = slab_molec[h_idx].position + trans_vect
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        return slab_molec
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def dissociation(slab_molec, disso_atoms, num_atoms_slab):
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    # TODO rethink
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    # TODO multiple dissociation
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    """Decides which H atoms to dissociate according to a list of atoms.
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    Given a list of chemical symbols or atom indices it checks for every atom
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    or any of its neighbor if it's a H and calls dissociate_h to try to carry
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    out dissociation of that H. For atom indices, it checks both whether
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    the atom index or its neighbors are H, for chemical symbols, it only checks
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    if there is a neighbor H.
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    @param slab_molec: The ase.Atoms object of the system adsorbate-slab.
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    @param disso_atoms: The indices or chemical symbols of the atoms
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    @param num_atoms_slab:
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    @return:
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    """
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    from ase.neighborlist import natural_cutoffs, NeighborList
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    molec = slab_molec[num_atoms_slab:]
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    cutoffs = natural_cutoffs(molec)
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    nl = NeighborList(cutoffs, self_interaction=False, bothways=True)
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    nl.update(molec)
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    disso_structs = []
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    for el in disso_atoms:
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        if isinstance(el, int):
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            if molec[el].symbol == 'H':
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                disso_struct = dissociate_h(slab_molec, el + num_atoms_slab,
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                                            num_atoms_slab)
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                if disso_struct is not None:
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                    disso_structs.append(disso_struct)
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            else:
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                for neigh_idx in nl.get_neighbors(el)[0]:
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                    if molec[neigh_idx].symbol == 'H':
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                        disso_struct = dissociate_h(slab_molec, neigh_idx +
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                                                    num_atoms_slab,
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                                                    num_atoms_slab)
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                        if disso_struct is not None:
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                            disso_structs.append(disso_struct)
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        else:
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            for atom in molec:
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                if atom.symbol.lower() == el.lower():
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                    for neigh_idx in nl.get_neighbors(atom.index)[0]:
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                        if molec[neigh_idx].symbol == 'H':
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                            disso_struct = dissociate_h(slab_molec, neigh_idx \
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                                                        + num_atoms_slab,
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                                                        num_atoms_slab)
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                            if disso_struct is not None:
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                                disso_structs.append(disso_struct)
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    return disso_structs
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def correct_coll(molec, slab, ctr_coord, site_coord, num_pts,
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                 min_coll_height, norm_vect, slab_nghbs, molec_nghbs,
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                 coll_coeff, height=2.5):
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    # TODO Rethink this function
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    """Tries to adsorb a molecule on a slab trying to avoid collisions by doing
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    small rotations.
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    @param molec: ase.Atoms object of the molecule to adsorb
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    @param slab: ase.Atoms object of the surface on which to adsorb the
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        molecule
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    @param ctr_coord: The coordinates of the molecule to use as adsorption
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        center.
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    @param site_coord: The coordinates of the surface on which to adsorb the
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        molecule
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    @param num_pts: Number on which to sample Euler angles.
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    @param min_coll_height: The lowermost height for which to detect a collision
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    @param norm_vect: The vector perpendicular to the surface.
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    @param slab_nghbs: Number of neigbors in the surface.
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    @param molec_nghbs: Number of neighbors in the molecule.
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    @param coll_coeff: The coefficient that multiplies the covalent radius of
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        atoms resulting in a distance that two atoms being closer to that is
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        considered as atomic collision.
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    @param height: Height on which to try adsorption
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    @return collision: bool, whether the structure generated has collisions
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        between slab and adsorbate.
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    """
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    from copy import deepcopy
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    slab_num_atoms = len(slab)
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    collision = True
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    max_corr = 6  # Should be an even number
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    d_angle = 180 / ((max_corr / 2.0) * num_pts)
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    num_corr = 0
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    while collision and num_corr <= max_corr:
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        k = num_corr * (-1) ** num_corr
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        slab_molec = deepcopy(slab)
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        molec.euler_rotate(k * d_angle, k * d_angle / 2, k * d_angle,
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                           center=ctr_coord)
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        add_adsorbate(slab_molec, molec, site_coord, ctr_coord, height,
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                      norm_vect=norm_vect)
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        collision = check_collision(slab_molec, slab_num_atoms, min_coll_height,
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                                    norm_vect, slab_nghbs, molec_nghbs,
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                                    coll_coeff)
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        num_corr += 1
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    return slab_molec, collision
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def ads_euler(orig_molec, slab, ctr_coord, site_coord, num_pts,
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              min_coll_height, coll_coeff, norm_vect, slab_nghbs, molec_nghbs,
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              disso_atoms):
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    """Generates adsorbate-surface structures by sampling over Euler angles.
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    This function generates a number of adsorbate-surface structures at
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    different orientations of the adsorbate sampled at multiple Euler (zxz)
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    angles.
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    @param orig_molec: ase.Atoms object of the molecule to adsorb
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    @param slab: ase.Atoms object of the surface on which to adsorb the molecule
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    @param ctr_coord: The coordinates of the molecule to use as adsorption
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        center.
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    @param site_coord: The coordinates of the surface on which to adsorb the
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        molecule
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    @param num_pts: Number on which to sample Euler angles.
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    @param min_coll_height: The lowermost height for which to detect a collision
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    @param coll_coeff: The coefficient that multiplies the covalent radius of
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        atoms resulting in a distance that two atoms being closer to that is
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        considered as atomic collision.
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    @param norm_vect: The vector perpendicular to the surface.
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    @param slab_nghbs: Number of neigbors in the surface.
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    @param molec_nghbs: Number of neighbors in the molecule.
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    @param disso_atoms: List of atom types or atom numbers to try to dissociate.
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    @return: list of ase.Atoms object conatining all the orientations of a given
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        conformer
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    """
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    from copy import deepcopy
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    slab_ads_list = []
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    # rotation around z
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    for alpha in np.arange(0, 360, 360 / num_pts):
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        # rotation around x'
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        for beta in np.arange(0, 180, 180 / num_pts):
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            # rotation around z'
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            for gamma in np.arange(0, 360, 360 / num_pts):
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                molec = deepcopy(orig_molec)
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                molec.euler_rotate(alpha, beta, gamma, center=ctr_coord)
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                slab_molec, collision = correct_coll(molec, slab,
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                                                     ctr_coord, site_coord,
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                                                     num_pts, min_coll_height,
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                                                     norm_vect,
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                                                     slab_nghbs, molec_nghbs,
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                                                     coll_coeff)
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                if not collision and \
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                        not any([(slab_molec.positions == conf.positions).all()
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                                 for conf in slab_ads_list]):
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                    slab_ads_list.append(slab_molec)
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                    slab_ads_list.extend(dissociation(slab_molec, disso_atoms,
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                                                      len(slab)))
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    return slab_ads_list
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def ads_chemcat(site, ctr, pts_angle):
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    return "TO IMPLEMENT"
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def adsorb_confs(conf_list, surf, molec_ctrs, sites, algo, num_pts, neigh_ctrs,
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                 norm_vect, min_coll_height, coll_coeff, disso_atoms):
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    """Generates a number of adsorbate-surface structure coordinates.
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421 a5cc42ff Carles Marti
    Given a list of conformers, a surface, a list of atom indices (or list of
422 a5cc42ff Carles Marti
    list of indices) of both the surface and the adsorbate, it generates a
423 a5cc42ff Carles Marti
    number of adsorbate-surface structures for every possible combination of
424 a5cc42ff Carles Marti
    them at different orientations.
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    @param conf_list: list of ase.Atoms of the different conformers
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    @param surf: the ase.Atoms object of the surface
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    @param molec_ctrs: the list atom indices of the adsorbate.
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    @param sites: the list of atom indices of the surface.
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    @param algo: the algorithm to use for the generation of adsorbates.
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    @param num_pts: the number of points per angle orientation to sample
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    @param neigh_ctrs: the indices of the neighboring atoms to the adsorption
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        atoms.
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    @param norm_vect: The vector perpendicular to the surface.
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    @param min_coll_height: The lowermost height for which to detect a collision
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    @param coll_coeff: The coefficient that multiplies the covalent radius of
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        atoms resulting in a distance that two atoms being closer to that is
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        considered as atomic collision.
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    @param disso_atoms: List of atom types or atom numbers to try to dissociate.
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    @return: list of ase.Atoms for the adsorbate-surface structures
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    """
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    from ase.neighborlist import natural_cutoffs, neighbor_list
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    surf_ads_list = []
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    sites_coords = get_atom_coords(surf, sites)
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    if min_coll_height is False:
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        surf_cutoffs = natural_cutoffs(surf, mult=coll_coeff)
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        surf_nghbs = len(neighbor_list("i", surf, surf_cutoffs))
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    else:
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        surf_nghbs = 0
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    for conf in conf_list:
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        molec_ctr_coords = get_atom_coords(conf, molec_ctrs)
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        molec_neigh_coords = get_atom_coords(conf, neigh_ctrs)
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        if min_coll_height is False:
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            conf_cutoffs = natural_cutoffs(conf, mult=coll_coeff)
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            molec_nghbs = len(neighbor_list("i", conf, conf_cutoffs))
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        else:
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            molec_nghbs = 0
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        for site in sites_coords:
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            for ctr in molec_ctr_coords:
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                if algo == 'euler':
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                    surf_ads_list.extend(ads_euler(conf, surf, ctr, site,
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                                                   num_pts, min_coll_height,
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                                                   coll_coeff, norm_vect,
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                                                   surf_nghbs, molec_nghbs,
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                                                   disso_atoms))
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                elif algo == 'chemcat':
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                    surf_ads_list.extend(ads_chemcat(site, ctr, num_pts))
467 f3d1e601 Carles Marti
    return surf_ads_list
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def run_screening(inp_vars):
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    """Carries out the screening of adsorbate structures on a surface.
472 e07c09eb Carles

473 e07c09eb Carles
    @param inp_vars: Calculation parameters from input file.
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    """
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    import os
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    import random
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    from modules.formats import collect_coords, adapt_format
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    from modules.calculation import run_calc, check_finished_calcs
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    logger.info('Carrying out procedures for the screening of adsorbate-surface'
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                ' structures.')
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    if not os.path.isdir("isolated"):
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        err = "'isolated' directory not found. It is needed in order to carry "
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        "out the screening of structures to be adsorbed"
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        logger.error(err)
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        raise FileNotFoundError(err)
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    finished_calcs, unfinished_calcs = check_finished_calcs('isolated',
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                                                            inp_vars['code'])
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    if len(unfinished_calcs) == 0:
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        logger.info(f"Found {len(finished_calcs)} structures of isolated "
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                    f"conformers.")
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    else:
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        logger.info(f"Found {len(finished_calcs)} structures of isolated "
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                    f"conformers whose calculation finished normally.")
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        logger.warning(f"Found {len(unfinished_calcs)} calculations more that "
497 76f4ac19 Carles Marti
                       f"did not finish normally: {unfinished_calcs}. \n"
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                       f"Using only the ones that finished normally: "
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                       f"{finished_calcs}.")
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    conformer_atoms_list = collect_coords(finished_calcs, inp_vars['code'],
502 fd2384fc Carles Marti
                                          'isolated', inp_vars['special_atoms'])
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    selected_confs = select_confs(conformer_atoms_list, finished_calcs,
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                                  inp_vars['select_magns'],
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                                  inp_vars['confs_per_magn'],
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                                  inp_vars['code'])
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    surf = adapt_format('ase', inp_vars['surf_file'], inp_vars['special_atoms'])
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    surf_ads_list = adsorb_confs(selected_confs, surf,
509 bfe93f0d Carles Marti
                                 inp_vars['molec_ads_ctrs'], inp_vars['sites'],
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                                 inp_vars['ads_algo'],
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                                 inp_vars['sample_points_per_angle'],
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                                 inp_vars['molec_neigh_ctrs'],
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                                 inp_vars['surf_norm_vect'],
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                                 inp_vars['min_coll_height'],
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                                 inp_vars['collision_threshold'],
516 b4b2f307 Carles Marti
                                 inp_vars['disso_atoms'])
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    if len(surf_ads_list) > inp_vars['max_structures']:
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        surf_ads_list = random.sample(surf_ads_list, inp_vars['max_structures'])
519 bfe93f0d Carles Marti
    logger.info(f'Generated {len(surf_ads_list)} adsorbate-surface atomic '
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                f'configurations to carry out a calculation of.')
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    run_calc('screening', inp_vars, surf_ads_list)
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    logger.info('Finished the procedures for the screening of adsorbate-surface'
524 14f39d2a Carles Marti
                ' structures section.')