Quantum dissipation with nonlinear environment couplings: Stochastic
fields dressed dissipaton equation of motion approach
- URL: http://arxiv.org/abs/2108.10013v2
- Date: Tue, 5 Oct 2021 11:46:16 GMT
- Title: Quantum dissipation with nonlinear environment couplings: Stochastic
fields dressed dissipaton equation of motion approach
- Authors: Zi-Hao Chen and Yao Wang and Rui-Xue Xu and YiJing Yan
- Abstract summary: We propose to incorporate the fields, which resolve just the nonlinear environment coupling terms, into the dissipaton-equation-of-motion (DEOM) construction.
The resultant SFD-DEOM constitutes an exact and nonperturbative approach to quantum dissipation under nonlinear environment couplings.
- Score: 8.247015134050201
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Accurate and efficient simulation on quantum dissipation with nonlinear
environment couplings remains nowadays a challenging task. In this work, we
propose to incorporate the stochastic fields, which resolve just the nonlinear
environment coupling terms, into the dissipaton-equation-of-motion (DEOM)
construction. The stochastic fields are introduced via the Hubbard-Stratonovich
transformation. After the transformation, the resulted
stochastic-fields-dressed total Hamiltonian contains only linear environment
coupling terms. On basis of that, a stochastic-fields-dressed DEOM (SFD-DEOM)
can then be constructed. The resultant SFD-DEOM, together with the ensemble
average over the stochastic fields, constitutes an exact and nonperturbative
approach to quantum dissipation under nonlinear environment couplings. It is
also of relatively high efficiency and stability due to the fact that only
nonlinear environment coupling terms are dealt with stochastic fields while
linear couplings are still treated as the usual DEOM. Numerical demonstrations
are carried out on a two-state model system.
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