TY - JOUR
T1 - Charging a quantum battery in a non-Markovian environment : a collisional model approach
AU - Morrone, Daniele
AU - Rossi, Matteo A.C.
AU - Smirne, Andrea
AU - Genoni, Marco G.
N1 - Funding Information:
D M acknowledges financial support from MUR under the ‘PON Ricerca e Innovazione 2014-2020’. M A C R acknowledges financial support from the Academy of Finland via the Centre of Excellence program (Project No. 336810). M G G and A S acknowledge support from UniMi via PSR-2 2020 and PSR-2 2021. The computer resources of the Finnish IT Center for Science (CSC) and the FGCI project (Finland) are acknowledged.
Publisher Copyright:
© 2023 The Author(s). Published by IOP Publishing Ltd.
PY - 2023/7
Y1 - 2023/7
N2 - We study the effect of non-Markovianity in the charging process of an open-system quantum battery. We employ a collisional model framework, where the environment is described by a discrete set of ancillary systems and memory effects in the dynamics can be introduced by allowing these ancillas to interact. We study in detail the behaviour of the steady-state ergotropy and the impact of the information backflow to the system on the different features characterizing the charging process. Remarkably, we find that there is a maximum value of the ergotropy achievable: this value can be obtained either in the presence of memoryless environment, but only in the large-loss limit, as derived in (Farina et al 2019 Phys. Rev. B 99 035421), or in the presence of an environment with memory also beyond the large-loss limit. In general, we show that the presence of an environment with memory allows us to generate steady-state ergotropy near to its maximum value for a much larger region in the parameter space and thus potentially in a shorter time. Relying on the geometrical measure of non-Markovianity, we show that in both the cases of an environment with and without memory the ergotropy maximum is obtained when the non-Markovianity of the dynamics of the battery is zero, possibly as the result of a non-trivial interplay between the memory effects induced by, respectively, the environment and the charger connected to the battery.
AB - We study the effect of non-Markovianity in the charging process of an open-system quantum battery. We employ a collisional model framework, where the environment is described by a discrete set of ancillary systems and memory effects in the dynamics can be introduced by allowing these ancillas to interact. We study in detail the behaviour of the steady-state ergotropy and the impact of the information backflow to the system on the different features characterizing the charging process. Remarkably, we find that there is a maximum value of the ergotropy achievable: this value can be obtained either in the presence of memoryless environment, but only in the large-loss limit, as derived in (Farina et al 2019 Phys. Rev. B 99 035421), or in the presence of an environment with memory also beyond the large-loss limit. In general, we show that the presence of an environment with memory allows us to generate steady-state ergotropy near to its maximum value for a much larger region in the parameter space and thus potentially in a shorter time. Relying on the geometrical measure of non-Markovianity, we show that in both the cases of an environment with and without memory the ergotropy maximum is obtained when the non-Markovianity of the dynamics of the battery is zero, possibly as the result of a non-trivial interplay between the memory effects induced by, respectively, the environment and the charger connected to the battery.
KW - collisional models
KW - quantum battery
KW - quantum thermodynamics
UR - http://www.scopus.com/inward/record.url?scp=85158003597&partnerID=8YFLogxK
U2 - 10.1088/2058-9565/accca4
DO - 10.1088/2058-9565/accca4
M3 - Article
AN - SCOPUS:85158003597
SN - 2058-9565
VL - 8
SP - 1
EP - 14
JO - Quantum Science and Technology
JF - Quantum Science and Technology
IS - 3
M1 - 035007
ER -