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Optoelectronic crystal of artificial atoms in strain-textured molybdenum disulphide

机译:应变织构化二硫化钼中人造原子的光电晶体

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The isolation of the two-dimensional semiconductor molybdenum disulphide introduced a new optically active material possessing a band gap that can be facilely tuned via elastic strain. As an atomically thin membrane with exceptional strength, monolayer molybdenum disulphide subjected to biaxial strain can embed wide band gap variations overlapping the visible light spectrum, with calculations showing the modified electronic potential emanating from point-induced tensile strain perturbations mimics the Coulomb potential in a mesoscopic atom. Here we realize and confirm this 'artificial atom' concept via capillary-pressure-induced nanoindentation of monolayer molybdenum disulphide from a tailored nanopattern, and demonstrate that a synthetic superlattice of these building blocks forms an optoelectronic crystal capable of broadband light absorption and efficient funnelling of photo-generated excitons to points of maximum strain at the artificial-atom nuclei. Such two-dimensional semiconductors with spatially textured band gaps represent a new class of materials, which may find applications in next-generation optoelectronics or photovoltaics.
机译:二维半导体二硫化钼的分离引入了一种新型的具有带隙的光学活性材料,该带隙可以通过弹性应变方便地进行调谐。作为具有出色强度的原子薄膜,承受双轴应变的单层二硫化钼可以嵌入宽带隙变化,使其与可见光谱重叠,计算结果表明,由点诱发的拉伸应变扰动产生的改性电子势模仿了介观的库仑势原子。在这里,我们通过定制的纳米图案通过毛细管压力诱导的单层二硫化钼纳米压痕的纳米压痕认识并证实了这种“人造原子”的概念,并证明了这些构件的合成超晶格形成了能够宽带吸收光并有效漏斗的光电晶体。光生激子到人工原子核的最大应变点。具有空间纹理化的带隙的这种二维半导体代表了新型材料,可以在下一代光电或光伏中找到应用。

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