论文标题

分析MN3单分子磁体二聚体中的交换相互作用及其对外部压力的敏感性

Analysis of exchange interactions in dimers of Mn3 single-molecule magnets, and their sensitivity to external pressure

论文作者

Yu, Jie-Xiang, Christou, George, Cheng, Hai-Ping

论文摘要

鉴于在新兴的量子信息科学计划中使用单分子磁铁(SMM)的潜在用途,我们报告了[$ \ Mathrm {mnrm {mn} _ {3} $ _ {2} $ dimers $ \ \ m narrm {mn} _ 3 $ smmms smmms smmms the Organter,covery的磁性交流计算通过磁化学和EPR光谱进行了实验研究和研究。校准为实验结果校准的能量评估给出了两个$ \ mathrm {mn} _ {3} $ units与磁化易感性数据和EPR光谱匹配的两个$ \ mathrm {Mn} _ {3} $之间的交换耦合常数($ j_ {12} $)的符号和数量级。放入$ \ mathrm {mn} $ $ d $ - 轨道基础上,wannier功能分析表明,磁相互作用可以由van der waals交互和/或通过交互的配体组通过特定系统的共同结合来引导,并获得有效的汉密尔顿人。我们称这种涉及一组原子的远程耦合为集体交流。轨道预测状态的旋转密度和替代的Wannier变换支持了这一观察结果。为了评估$ j_ {12} $对外部压力的敏感性,已经研究了静水压力和单轴压力的应力 - 应变曲线,这表明随着压力增加,$ j_ {12} $从铁磁到反铁磁性的转换。

In light of the potential use of single-molecule magnets (SMMs) in emerging quantum information science initiatives, we report first-principles calculations of the magnetic exchange interactions in [$\mathrm{Mn}_{3}$]$_{2}$ dimers of $\mathrm{Mn}_3$ SMMs, connected by covalently-attached organic linkers, that have been synthesized and studied experimentally by magnetochemistry and EPR spectroscopy. Energy evaluations calibrated to experimental results give the sign and order of magnitude of the exchange coupling constant ($J_{12}$) between the two $\mathrm{Mn}_{3}$ units that match with fits of magnetic susceptibility data and EPR spectra. Downfolding into the $\mathrm{Mn}$ $d$-orbital basis, Wannier function analysis has shown that magnetic interactions can be channeled by ligand groups that are bonded by van der Waals interaction and/or by the linkers via covalent bonding of specific systems, and effective tight-binding Hamiltonians are obtained. We call this long-range coupling that involves a group of atoms a collective exchange. Orbital projected spin density of states and alternative Wannier transformations support this observation. To assess the sensitivity of $J_{12}$ to external pressure, stress-strain curves have been investigated for both hydrostatic and uniaxial pressure, which have revealed a switch of $J_{12}$ from ferromagnetic to antiferromagnetic with increasing pressure.

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