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arXiv · 2512.07923

Environment-matrix-product operator for boundary-free large-scale quantum many-body simulations

Abstract

We propose an alternative to the infinite density-matrix renormalization approach for accessing quantum many-body states within a finite-size calculation that faithfully mimics the thermodynamic limit. Our method constructs environment matrix product operators (MPOs) representing the Hamiltonian of semi-infinite regions surrounding the target system. Starting from the finite-size ground-state MPS, we contract its Hamiltonian representation to generate effective environment MPOs, which are then attached to a renewed finite system in a recursive manner. This iterative embedding drives the system toward a bulk-like state with negligible finite-size effects. The scheme requires no assumption of homogeneity and achieves unprecedentedly long real-time dynamics free from boundary reflections.

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Souta Shimozono, Chisa Hotta. 2025-12-08. Environment-matrix-product operator for boundary-free large-scale quantum many-body simulations. https://arxiv.org/abs/2512.07923

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