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Largely tunable band structures of few-layer InSe by uniaxial strain

Mesoscale and Nanoscale Physics 2018-03-20 v1

Abstract

Due to the strong quantum confinement effect, few-layer {\gamma}-InSe exhibits a layer-dependent bandgap, spanning the visible and near infrared regions, and thus recently draws tremendous attention. As a two-dimensional material, the mechanical flexibility provides an additional tuning knob for the electronic structure. Here, for the first time, we engineer the band structures of few-layer and bulk-like InSe by uniaxial tensile strain, and observe salient shift of photoluminescence (PL) peaks. The shift rate of the optical gap is approximately 90-100 meV per 1% strain for 4- to 8-layer samples, which is much larger than that for the widely studied MoS2 monolayer. Density functional calculations well reproduce the observed layer-dependent bandgaps and the strain effect, and reveal that the shift rate decreases with increasing layer number for few-layer InSe. Our study demonstrates that InSe is a very versatile 2D electronic and optoelectronic material, which is suitable for tunable light emitters, photo-detectors and other optoelectronic devices.

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Cite

@article{arxiv.1711.01715,
  title  = {Largely tunable band structures of few-layer InSe by uniaxial strain},
  author = {Chaoyu Song and Fengren Fan and Ningning Xuan and Shenyang Huang and Guowei Zhang and Chong Wang and Zhengzong Sun and Hua Wu and Hugen Yan},
  journal= {arXiv preprint arXiv:1711.01715},
  year   = {2018}
}

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