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Interlayer‐State‐Coupling Dependent Ultrafast Charge Transfer in MoS2/WS2 Bilayers

机译:MoS2 / WS2双层中依赖于层间状态耦合的超快电荷转移

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摘要

Light‐induced interlayer ultrafast charge transfer in 2D heterostructures provides a new platform for optoelectronic and photovoltaic applications. The charge separation process is generally hypothesized to be dependent on the interlayer stackings and interactions, however, the quantitative characteristic and detailed mechanism remain elusive. Here, a systematical study on the interlayer charge transfer in model MoS2/WS2 bilayer system with variable stacking configurations by time‐dependent density functional theory methods is demonstrated. The results show that the slight change of interlayer geometry can significantly modulate the charge transfer time from 100 fs to 1 ps scale. Detailed analysis further reveals that the transfer rate in MoS2/WS2 bilayers is governed by the electronic coupling between specific interlayer states, rather than the interlayer distances, and follows a universal dependence on the state‐coupling strength. The results establish the interlayer stacking as an effective freedom to control ultrafast charge transfer dynamics in 2D heterostructures and facilitate their future applications in optoelectronics and light harvesting.
机译:2D异质结构中的光诱导层间超快速电荷转移为光电和光伏应用提供了新的平台。通常假设电荷分离过程取决于层间堆叠和相互作用,但是,定量特征和详细机理仍然难以捉摸。在此,通过时变密度泛函理论方法对具有可变堆叠结构的MoS2 / WS2模型双层系统中的层间电荷转移进行了系统研究。结果表明,层间几何形状的微小变化可以显着地将电荷转移时间从100 fs调整为1 ps。详细的分析进一步表明,MoS2 / WS2双层中的传输速率是由特定层间状态之间的电子耦合而不是层间距离决定的,并且遵循状态耦合强度的普遍依赖性。结果证明层间堆叠是控制2D异质结构中超快电荷转移动力学的有效自由,并促进了它们在光电和光收集领域的未来应用。

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