arXiv · 2609.23426
Non-Hermitian Quantum Mechanics I: Instantaneous Self-Energy
Abstract
Starting from the unitary evolution of a closed quantum system, we rigorously demonstrate that the projection of the global wavefunction onto an arbitrary local subsystem is governed by an exact, time-dependent non-Hermitian Schrödinger equation. Crucially, the derivation does not rely on conventional approximations such as the Born approximation, the Markov approximation, or the wide-band limit. The central quantity is the \textit{instantaneous self-energy}, a time-dependent and generally non-Hermitian operator that encodes environmental backaction and, together with the subsystem Hamiltonian, forms the exact time-local generator of the projected dynamics. By benchmarking the conventional non-Hermitian approximation against this exact framework, we systematically expose its limitations. These results provide a rigorous microscopic foundation for the emergence of effective non-Hermitian dynamics in quantum systems.
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Lingfeng Liu, Wei-Wei Yang, Jiangping Hu, Zhesen Yang. 2026-09-20. Non-Hermitian Quantum Mechanics I: Instantaneous Self-Energy. https://arxiv.org/abs/2609.23426
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