DOE OSTI · 2578605
Correlation functions from tensor network influence functionals: The case of the spin-boson model
Abstract
We investigate the application of matrix product state (MPS) representations of the influence functionals (IFs) for the calculation of real-time equilibrium correlation functions in open quantum systems. Focusing specifically on the unbiased spin-boson model, we explore the use of IF-MPSs for complex time propagation, as well as IF-MPSs for constructing correlation functions in the steady state. We examine three different IF approaches: one based on the Kadanoff–Baym contour targeting correlation functions at all times, one based on a complex contour targeting the correlation function at a single time, and a steady state formulation, which avoids imaginary or complex times, while providing access to correlation functions at all times. We show that within the IF language, the steady state formulation provides a powerful approach to evaluate equilibrium correlation functions.
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Nguyen, Haimi (ORCID:000000031685445X), Ng, Nathan (ORCID:0000000208856036), Lindoy, Lachlan (ORCID:0000000218886490), Park, Gunhee (ORCID:000000022818488X), Millis, Andrew (ORCID:0000000194136344), Kin-Lic Chan, Garnet (ORCID:0000000180096038), Reichman, David (ORCID:0000000252655637). 2024-09-13. Correlation functions from tensor network influence functionals: The case of the spin-boson model. https://doi.org/10.1063/5.0224880
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