Dmitri Maslov, Jin-Sung Kim, et al.
QIP 2021
We discuss several thermodynamic criteria that have been introduced to characterize the thermal stability of a self-correcting quantum memory. We first examine the use of symmetry-breaking fields in analyzing the properties of self-correcting quantum memories in the thermodynamic limit; we show that the thermal expectation values of all logical operators vanish for any stabilizer and any subsystem code in any spatial dimension. On the positive side, we generalize the results of Alicki et al to obtain a general upper bound on the relaxation rate of a quantum memory at nonzero temperature, assuming that the quantum memory interacts via a Markovian master equation with a thermal bath. This upper bound is applicable to quantum memories based on either stabilizer or subsystem codes. © IOP Publishing Ltd. and Deutsche Physikalische Gesellschaft.
Dmitri Maslov, Jin-Sung Kim, et al.
QIP 2021
Daniel Miller, Daniel Loss, et al.
Journal of Physics A
Sergey Bravyi, Alexander Kliesch, et al.
Quantum
Sergey Bravyi, Guillaume Duclos-Cianci, et al.
Quantum Information and Computation