论文标题

部分可观测时空混沌系统的无模型预测

Valley Piezoelectric Mechanism for Interpreting and Optimizing Piezoelectricity in Quantum Materials via Anomalous Hall Effect

论文作者

Rouzhahong, Yilimiranmu, Liang, Chao, Li, Chong, Wang, Biao, Li, Huashan

论文摘要

量子材料表现出有吸引力的电力反应,但是由于缺乏从量子效应中受益的基本机制,它们的压电系数远非令人满意。我们发现了传统压电理论中没有的山谷压电机制,但有望克服这一挑战。开发了一种理论模型来阐明山谷压电性作为由伪电场驱动的山谷厅效应,这在时间逆转对称性的量子系统中可能很重要。一致的紧密结合和密度功能理论(DFT)计算验证了模型并揭示了谷地压电对谷地分裂,杂交能,带隙和泊松比的关键依赖性。提出掺杂,钝化和外部压力作为优化压电性的合理策略,DFT模拟证明了压电性的130%以上。一般谷地压电模型弥合了机电响应与量子效应之间的差距,这为通过优化Spin-Valley和Spin-Or-Orbit耦合而在量子材料中实现出色的压电性开放。

Quantum materials have exhibited attractive electro-mechanical responses, but their piezoelectric coefficients are far from satisfactory due to the lack of fundamental mechanisms to benefit from the quantum effects. We discovered the valley piezoelectric mechanism that is absent in traditional piezoelectric theory yet promising to overcome this challenge. A theoretical model was developed to elucidate the valley piezoelectricity as the Valley Hall effect driven by pseudoelectric field, which can be significant in quantum systems with broken time reversal symmetry. Consistent tight-binding and density-functional-theory (DFT) calculations validate the model and unveil the crucial dependence of valley piezoelectricity on valley splitting, hybridization energy, bandgap, and Poisson ratio. Doping, passivation, and external stress are proposed as rational strategies to optimize piezoelectricity, with a more than 130% increase of piezoelectricity demonstrated by DFT simulations. The general valley piezoelectric model bridges the gap between electro-mechanical response and quantum effects, which opens an opportunity to achieve outstanding piezoelectricity in quantum materials via optimizing spin-valley and spin-orbit couplings.

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