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Janus MoSSe双层堆叠中载流子复合的抑制:时域从头算研究

Suppressed Carrier Recombination in Janus MoSSe Bilayer Stacks: A Time-Domain Ab Initio Study.

作者信息

Song Bing, Liu Limin, Yam ChiYung

机构信息

Beijing Computational Science Research Center , Haidian District, Beijing 100193 , China.

School of Physics , Beihang University , Beijing 100083 , China.

出版信息

J Phys Chem Lett. 2019 Sep 19;10(18):5564-5570. doi: 10.1021/acs.jpclett.9b02048. Epub 2019 Sep 5.

Abstract

Janus transition metal dichalcogenides (TMDs) have recently emerged as a new class of two-dimensional materials with a vertical dipole moment. Here, using time-domain ab initio simulations, we show that electron-hole recombination can be substantially suppressed via different stacking orientations of bilayer MoSSe. Despite having a larger net dipole moment, a S-Se/S-Se oriented MoSSe bilayer has a shorter carrier lifetime due to strong nonadiabatic coupling and a small band gap. The electron-hole recombination is coupled to the interlayer out-of-plane motion. In contrast, the opposite vertical dipoles weaken interlayer interactions in symmetric oriented MoSSe bilayers. Consequently, initial and final states are localized within different layers, and this significantly suppresses carrier recombination, resulting in an order of magnitude longer excited carrier lifetime in Se-S/S-Se oriented MoSSe bilayers. Our simulations provide theoretical insights into the carrier dynamics and suggest a way to enhance the carrier lifetime in Janus TMDs for efficient energy harvesting.

摘要

Janus 过渡金属二硫属化物(TMDs)最近作为一类具有垂直偶极矩的新型二维材料出现。在此,我们使用时域从头算模拟表明,通过双层 MoSSe 的不同堆叠取向可以大幅抑制电子 - 空穴复合。尽管具有更大的净偶极矩,但由于强非绝热耦合和小带隙,S - Se/S - Se 取向的 MoSSe 双层具有较短的载流子寿命。电子 - 空穴复合与层间面外运动耦合。相比之下,相反的垂直偶极会削弱对称取向的 MoSSe 双层中的层间相互作用。因此,初始态和终态局限于不同层内,这显著抑制了载流子复合,导致 Se - S/S - Se 取向的 MoSSe 双层中激发载流子寿命延长一个数量级。我们的模拟为载流子动力学提供了理论见解,并提出了一种在 Janus TMDs 中提高载流子寿命以实现高效能量收集的方法。

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