root / ase / transport / selfenergy.py @ 1
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import numpy as np |
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class LeadSelfEnergy: |
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conv = 1e-8 # Convergence criteria for surface Green function |
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def __init__(self, hs_dii, hs_dij, hs_dim, eta=1e-4): |
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self.h_ii, self.s_ii = hs_dii # onsite principal layer |
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self.h_ij, self.s_ij = hs_dij # coupling between principal layers |
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self.h_im, self.s_im = hs_dim # coupling to the central region |
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self.nbf = self.h_im.shape[1] # nbf for the scattering region |
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self.eta = eta
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self.energy = None |
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self.bias = 0 |
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self.sigma_mm = np.empty((self.nbf, self.nbf), complex) |
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def retarded(self, energy): |
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"""Return self-energy (sigma) evaluated at specified energy."""
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if energy != self.energy: |
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self.energy = energy
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z = energy - self.bias + self.eta * 1.j |
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tau_im = z * self.s_im - self.h_im |
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a_im = np.linalg.solve(self.get_sgfinv(energy), tau_im)
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tau_mi = z * self.s_im.T.conj() - self.h_im.T.conj() |
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self.sigma_mm[:] = np.dot(tau_mi, a_im)
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return self.sigma_mm |
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def set_bias(self, bias): |
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self.bias = bias
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def get_lambda(self, energy): |
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"""Return the lambda (aka Gamma) defined by i(S-S^d).
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Here S is the retarded selfenergy, and d denotes the hermitian
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conjugate.
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"""
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sigma_mm = self.retarded(energy)
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return 1.j * (sigma_mm - sigma_mm.T.conj()) |
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def get_sgfinv(self, energy): |
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"""The inverse of the retarded surface Green function"""
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z = energy - self.bias + self.eta * 1.j |
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v_00 = z * self.s_ii.T.conj() - self.h_ii.T.conj() |
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v_11 = v_00.copy() |
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v_10 = z * self.s_ij - self.h_ij |
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v_01 = z * self.s_ij.T.conj() - self.h_ij.T.conj() |
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delta = self.conv + 1 |
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while delta > self.conv: |
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a = np.linalg.solve(v_11, v_01) |
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b = np.linalg.solve(v_11, v_10) |
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v_01_dot_b = np.dot(v_01, b) |
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v_00 -= v_01_dot_b |
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v_11 -= np.dot(v_10, a) |
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v_11 -= v_01_dot_b |
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v_01 = -np.dot(v_01, a) |
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v_10 = -np.dot(v_10, b) |
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delta = abs(v_01).max()
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return v_00
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class BoxProbe: |
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"""Box shaped Buttinger probe.
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Kramers-kroning: real = H(imag); imag = -H(real)
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"""
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def __init__(self, eta, a, b, energies, S, T=0.3): |
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from Transport.Hilbert import hilbert |
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se = np.empty(len(energies), complex) |
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se.imag = .5 * (np.tanh(.5 * (energies - a) / T) - |
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np.tanh(.5 * (energies - b) / T))
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se.real = hilbert(se.imag) |
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se.imag -= 1
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self.selfenergy_e = eta * se
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self.energies = energies
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self.S = S
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def retarded(self, energy): |
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return self.selfenergy_e[self.energies.searchsorted(energy)] * self.S |
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