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Slow cooling and efficient extraction of C-exciton hot carriers in MoS2 monolayer

机译:缓慢冷却并有效提取MoS2单层中C激子热载流子

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摘要

In emerging optoelectronic applications, such as water photolysis, exciton fission and novel photovoltaics involving low-dimensional nanomaterials, hot-carrier relaxation and extraction mechanisms play an indispensable and intriguing role in their photo-electron conversion processes. Two-dimensional transition metal dichalcogenides have attracted much attention in above fields recently; however, insight into the relaxation mechanism of hot electron-hole pairs in the band nesting region denoted as C-excitons, remains elusive. Using MoS2 monolayers as a model two-dimensional transition metal dichalcogenide system, here we report a slower hot-carrier cooling for C-excitons, in comparison with band-edge excitons. We deduce that this effect arises from the favourable band alignment and transient excited-state Coulomb environment, rather than solely on quantum confinement in two-dimension systems. We identify the screening-sensitive bandgap renormalization for MoS2 monolayer/graphene heterostructures, and confirm the initial hot-carrier extraction for the C-exciton state with an unprecedented efficiency of 80%, accompanied by a twofold reduction in the exciton binding energy.
机译:在新兴的光电应用中,例如水的光解,激子裂变和涉及低维纳米材料的新型光伏技术,热载流子弛豫和提取机制在其光电子转换过程中起着不可或缺的作用。二维过渡金属二卤化物最近在上述领域引起了广泛关注。然而,对于带状嵌套区域(称为C-激子)中的热电子-空穴对的弛豫机理的了解仍然难以捉摸。使用MoS2单层作为模型的二维过渡金属二卤化二硫化锡系统,在这里我们报道了与带边激子相比,C激子的热载流子冷却较慢。我们推论,这种效应是由有利的能带排列和瞬态激发态库仑环境引起的,而不是仅仅由于二维系统中的量子限制。我们确定了MoS2单层/石墨烯异质结构的筛选敏感带隙重新归一化,并确认了C激子态的初始热载流子提取,其空前效率为80%,激子结合能降低了两倍。

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