Many-body localization proximity effects in platforms of coupled spins and bosons | |
Article | |
关键词: QUANTUM SIMULATION; CAVITY ARRAYS; 2 DIMENSIONS; SYSTEM; TRANSITION; DIFFUSION; ABSENCE; LATTICE; STATES; | |
DOI : 10.1103/PhysRevB.97.054201 | |
来源: SCIE |
【 摘 要 】
We discuss the onset of many-body localization in a one-dimensional system composed of a XXZ quantum spin chain and a Bose-Hubbard model linearly coupled together. We consider two complementary setups, depending whether spatial disorder is initially imprinted on spins or on bosons; in both cases, we explore the conditions for the disordered portion of the system to localize by proximity of the other clean half. Assuming that the dynamics of one of the two parts develops on shorter time scales than the other, we can adiabatically eliminate the fast degrees of freedom, and derive an effective Hamiltonian for the system's remainder using projection operator techniques. Performing a locator expansion on the strength of the many-body interaction term or on the hopping amplitude of the effective Hamiltonian thus derived, we present results on the stability of themany-body localized phases induced by proximity effect. We also briefly comment on the feasibility of the proposed model through modern quantum optics architectures, with the long-term perspective to realize experimentally, in composite open systems, Anderson or many-body localization proximity effects.
【 授权许可】
Free