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root / ase / test / COCu111_2.py @ 1

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from math import sqrt
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from ase import Atoms, Atom
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from ase.constraints import FixAtoms
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from ase.optimize import FIRE, QuasiNewton
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from ase.neb import SingleCalculatorNEB
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from ase.calculators.emt import EMT
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Optimizer=FIRE
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Optimizer=QuasiNewton
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# Distance between Cu atoms on a (111) surface:
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a = 3.6
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d = a / sqrt(2)
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fcc111 = Atoms(symbols='Cu',
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               cell=[(d, 0, 0),
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                     (d / 2, d * sqrt(3) / 2, 0),
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                     (d / 2, d * sqrt(3) / 6, -a / sqrt(3))],
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               pbc=True)
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initial = fcc111 * (2, 2, 4)
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initial.set_cell([2 * d, d * sqrt(3), 1])
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initial.set_pbc((1, 1, 0))
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initial.set_calculator(EMT())
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Z = initial.get_positions()[:, 2]
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indices = [i for i, z in enumerate(Z) if z < Z.mean()]
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constraint = FixAtoms(indices=indices)
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initial.set_constraint(constraint)
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dyn = Optimizer(initial)
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dyn.run(fmax=0.05)
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Z = initial.get_positions()[:, 2]
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print Z[0] - Z[1]
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print Z[1] - Z[2]
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print Z[2] - Z[3]
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b = 1.2
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h = 1.5
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initial += Atom('C', (d / 2, -b / 2, h))
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initial += Atom('O', (d / 2, +b / 2, h))
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s = initial.copy()
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dyn = Optimizer(initial)
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dyn.run(fmax=0.05)
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#view(initial)
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# create final
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final = initial.copy()
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final.set_calculator(EMT())
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final.set_constraint(constraint)
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final[-2].position = final[-1].position
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final[-1].x = d
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final[-1].y = d / sqrt(3)
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dyn = Optimizer(final)
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dyn.run(fmax=0.1)
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#view(final)
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# create 2 intermediate step neb
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neb = SingleCalculatorNEB([initial, final])
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neb.refine(2)
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neb.set_calculators(EMT())
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assert(neb.n() == 4)
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dyn = Optimizer(neb, maxstep=0.04, trajectory='mep_2coarse.traj')
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dyn.run(fmax=0.1)
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#dyn.run(fmax=39.1)
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# read from the trajectory
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neb = SingleCalculatorNEB('mep_2coarse.traj@-4:')
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# refine in the important region
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neb.refine(2, 1, 3)
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neb.set_calculators(EMT())
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dyn = Optimizer(neb, maxstep=0.04, trajectory='mep_2fine.traj')
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dyn.run(fmax=0.1)
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assert(len(neb.images) == 8)