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Photocarrier relaxation pathway in two-dimensional semiconducting transition metal dichalcogenides

机译:二维半导体过渡金属二卤化物中的载流子弛豫途径

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Two-dimensional crystals of semiconducting transition metal dichalcogenides absorb a large fraction of incident photons in the visible frequencies despite being atomically thin. It has been suggested that the strong absorption is due to the parallel band or 'band nesting' effect and corresponding divergence in the joint density of states. Here, we use photoluminescence excitation spectroscopy to show that the band nesting in mono-and bilayer MX2 (M = Mo, W and X = S, Se) results in excitation-dependent characteristic relaxation pathways of the photoexcited carriers. Our experimental and simulation results reveal that photoexcited electron-hole pairs in the nesting region spontaneously separate in k-space, relaxing towards immediate band extrema with opposite momentum. These effects imply that the loss of photocarriers due to direct exciton recombination is temporarily suppressed for excitation in resonance with band nesting. Our findings highlight the potential for efficient hot carrier collection using these materials as the absorbers in optoelectronic devices.RI Ribeiro, Ricardo/I-6885-2013; Carvalho, Alexandra/B-2771-2011OI Ribeiro, Ricardo/0000-0002-1485-6809; Carvalho, Alexandra/0000-0002-2851-1887
机译:半导体过渡金属二卤化物的二维晶体尽管原子薄,但在可见光频率下仍吸收了大量入射光子。已经提出,强吸收是由于平行带或“带嵌套”效应和状态的联合密度的相应发散。在这里,我们使用光致发光激发光谱来显示单层和双层MX2(M = Mo,W和X = S,Se)中的能带嵌套会导致光激发载流子的激发依赖性特征弛豫路径。我们的实验和模拟结果表明,嵌套区域中的光激发电子-空穴对在k空间中自发分离,朝着具有相反动量的直接带极松驰。这些效果暗示了由于直接激子复合而引起的光载流子的损失被暂时抑制,从而在带嵌套共振中被激发。我们的发现凸显了使用这些材料作为光电器件中的吸收剂进行高效热载流子收集的潜力。RIRibeiro,里卡多/ I-6885-2013;亚历山德拉·卡瓦略/ B-2771-2011OI里贝罗·里卡多/ 0000-0002-1485-6809;亚历山德拉·卡瓦略/ 0000-0002-2851-1887

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