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arXiv · 2609.14371

Accelerating ab initio spin-phonon relaxation simulation of single-ion magnets by quantum embedding and spatial truncation

Abstract

Single-ion magnets (SIMs) show promise for high-density storage and quantum computing, but predicting spin-phonon coupling (SPC) and magnetic relaxation remains challenging due to the need for numerous non-equilibrium multiconfigurational calculations. Recent advances in quantum embedding methods offer a potential route to address this issue. In this work, density matrix embedding theory (DMET) combined with complete active space self-consistent field (CASSCF) is benchmarked for the static magnetic properties and spin-phonon coupling (SPC) parameters of Dy$^{3+}$-based SIMs. The method is further combined with spatial truncation to calculate SPC parameters for these SIMs. It is found that truncating the space near the first coordination sphere reduces the computational cost dramatically while keeping the errors in the effective energy barrier and relaxation time-scale negligible. This study provides a practical calculation framework for accurate and efficient spin dynamics prediction, laying the foundation for the rational design of high-performance single-molecule magnets.

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Yifan Deng, Zhe-Bin Guan, Zilong Zou, Zheng Sun, Ze-Wei Li, Bingwu Wang, Hong Jiang. 2026-09-13. Accelerating ab initio spin-phonon relaxation simulation of single-ion magnets by quantum embedding and spatial truncation. https://arxiv.org/abs/2609.14371

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