Bilayer construction for mixed state phenomena with strong, weak symmetries and symmetry breakings
Shuangyuan Lu, Penghao Zhu, and Yuan-Ming Lu

TL;DR
This paper introduces a bilayer construction method for representing mixed quantum states as pure states with specific symmetries, enabling new insights into symmetry breaking, decoherence, and topological phenomena.
Contribution
The paper presents a novel bilayer purification scheme that maps mixed states to pure states with symmetry constraints, facilitating experimental realization and analysis of complex quantum phenomena.
Findings
Mixed state phenomena can be understood as symmetry breakings in bilayer pure states.
Decoherence processes correspond to quantum quenches in the bilayer framework.
Classification and realization of mixed SPT states and topological orders.
Abstract
We introduce the bilayer construction, as a specific purification scheme for a general mixed state, where each mixed state has a one-to-one correspondence with a bilayer pure state with two constraints: non-negativity of the bilayer wavefunction; and the presence of an anti-unitary layer-exchange symmetry T. Different from the Choi-Jamio{\l}kowski isomorphism, any mixed state can be realized as the monolayer reduced density matrix of a bilayer pure state, and its physical properties can be experimentally realized and detected in non-magnetic bilayer 2D materials with a layer-exchange mirror symmetry. We study a variety of mixed state phenomena in the bilayer construction: (1) strong and weak symmetries, their explicit and spontaneous breakings in mixed states can be understood as usual Landau-type symmetry breakings in the bilayer pure state, and their criteria can be derived…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Spectroscopy and Quantum Chemical Studies · Molecular spectroscopy and chirality
