The partition function (PF) plays a key role in the calculation of quantum thermodynamic properties of a system that interacts with a heat bath. The imaginary-time hierarchical equations of motion (imHEOM) approach was developed to evaluate in a rigorous manner the PF of a system strongly coupled to a non-Markovian bath. In this paper, we present a numerically efficient scheme to evaluate the imHEOM utilizing the β-differentiated imHEOM (BD-imHEOM) that are obtained by differentiating the elements of the imHEOM with respect to the inverse temperature. This approach allows us to evaluate the system, system–bath interaction, and heat-bath parts of the PF efficiently. Moreover, we employ a polyharmonic decomposition method to construct a conci...
International audienceThe quantum thermal bath (QTB) method has been recently developed to account f...
Coherent states in imaginary time are used to represent the Boltzmann operator in terms of a classic...
A hierarchical equations of motion formalism for a quantum dissipation system in a grand canonical b...
We present a theoretical framework to investigate quantum thermodynamic processes under non-Markovia...
Quantum dissipation theory (QDT) plays a key role describing the reduced system dynamics under influ...
It is known one may use Feynman’s path integral approach to solve for a quantum propagator. Setting ...
An open quantum system refers to a system that is further coupled to a bath system consisting of sur...
We present a quantum algorithm to prepare the thermal Gibbs state of interacting quantum systems. Th...
We present a quantum algorithm to prepare the thermal Gibbs state of interacting quantum systems. Th...
We present a numerical method to evaluate partition functions and associated correlation functions o...
Using equations of thermodynamic perturbation theory, we have derived the formalism for evaluation o...
The path integral formalism is applied to derive the full partition function of a generalized Su–Sch...
Methods based on path integral molecular dynamics (PIMD) are a family of chemical dynamics technique...
The hierarchical equations of motion technique has found widespread success as a tool to generate th...
We introduce a new approach for calculating quantum time-correlation functions and time-dependent ex...
International audienceThe quantum thermal bath (QTB) method has been recently developed to account f...
Coherent states in imaginary time are used to represent the Boltzmann operator in terms of a classic...
A hierarchical equations of motion formalism for a quantum dissipation system in a grand canonical b...
We present a theoretical framework to investigate quantum thermodynamic processes under non-Markovia...
Quantum dissipation theory (QDT) plays a key role describing the reduced system dynamics under influ...
It is known one may use Feynman’s path integral approach to solve for a quantum propagator. Setting ...
An open quantum system refers to a system that is further coupled to a bath system consisting of sur...
We present a quantum algorithm to prepare the thermal Gibbs state of interacting quantum systems. Th...
We present a quantum algorithm to prepare the thermal Gibbs state of interacting quantum systems. Th...
We present a numerical method to evaluate partition functions and associated correlation functions o...
Using equations of thermodynamic perturbation theory, we have derived the formalism for evaluation o...
The path integral formalism is applied to derive the full partition function of a generalized Su–Sch...
Methods based on path integral molecular dynamics (PIMD) are a family of chemical dynamics technique...
The hierarchical equations of motion technique has found widespread success as a tool to generate th...
We introduce a new approach for calculating quantum time-correlation functions and time-dependent ex...
International audienceThe quantum thermal bath (QTB) method has been recently developed to account f...
Coherent states in imaginary time are used to represent the Boltzmann operator in terms of a classic...
A hierarchical equations of motion formalism for a quantum dissipation system in a grand canonical b...