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- W4384560518 abstract "We study the molecular state in a two-body system where one of the atoms is subject to a Rashba-type spin-orbit coupling and is spin-dependent loss, while interacting spin selectively with the other atom. The short-time conditional dynamics of the two-body system is effectively governed by a non-Hermitian Hamiltonian with an imaginary Zeeman field. Remarkably, the interplay of the exceptional ring and the spin-selective interaction results in a stable molecular state with a small decay rate, which can be 2 orders of magnitude smaller than that of the imaginary Zeeman field strength for a large-mass-ratio case. The stability of molecular state can be reflected by the imaginary part of molecular energy and the momentum distribution of the molecular wave function. We also demonstrate how mass imbalance further stabilizes the molecule. Our results illustrate the interesting consequence of spectral singularity on the few-body level, which may be readily observable in current cold-atom experiments." @default.
- W4384560518 created "2023-07-18" @default.
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- W4384560518 date "2023-07-17" @default.
- W4384560518 modified "2023-09-27" @default.
- W4384560518 title "Stable molecular state under dissipative spin-orbit coupling" @default.
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- W4384560518 doi "https://doi.org/10.1103/physreva.108.013311" @default.
- W4384560518 hasPublicationYear "2023" @default.
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