Jin Chenhao, Ma Eric Yue, Karni Ouri, Regan Emma C, Wang Feng, Heinz Tony F
Department of Physics, University of California at Berkeley, Berkeley, CA, USA.
Department of Applied Physics, Stanford University, Stanford, CA, USA.
Nat Nanotechnol. 2018 Nov;13(11):994-1003. doi: 10.1038/s41565-018-0298-5. Epub 2018 Nov 5.
Van der Waals heterostructures are synthetic quantum materials composed of stacks of atomically thin two-dimensional (2D) layers. Because the electrons in the atomically thin 2D layers are exposed to layer-to-layer coupling, the properties of van der Waals heterostructures are defined not only by the constituent monolayers, but also by the interactions between the layers. Many fascinating electrical, optical and magnetic properties have recently been reported in different types of van der Waals heterostructures. In this Review, we focus on unique excited-state dynamics in transition metal dichalcogenide (TMDC) heterostructures. TMDC monolayers are the most widely studied 2D semiconductors, featuring prominent exciton states and accessibility to the valley degree of freedom. Many TMDC heterostructures are characterized by a staggered band alignment. This band alignment has profound effects on the evolution of the excited states in heterostructures, including ultrafast charge transfer between the layers, the formation of interlayer excitons, and the existence of long-lived spin and valley polarization in resident carriers. Here we review recent experimental and theoretical efforts to elucidate electron dynamics in TMDC heterostructures, extending from timescales of femtoseconds to microseconds, and comment on the relevance of these effects for potential applications in optoelectronic, valleytronic and spintronic devices.
范德华异质结构是由原子级薄的二维(2D)层堆叠而成的合成量子材料。由于原子级薄的二维层中的电子会受到层间耦合的影响,范德华异质结构的特性不仅由组成的单层决定,还由层间相互作用决定。最近,在不同类型的范德华异质结构中报道了许多引人入胜的电学、光学和磁学特性。在本综述中,我们聚焦于过渡金属二硫属化物(TMDC)异质结构中独特的激发态动力学。TMDC单层是研究最广泛的二维半导体,具有显著的激子态和谷自由度的可及性。许多TMDC异质结构的特征是交错能带排列。这种能带排列对异质结构中激发态的演化有深远影响,包括层间的超快电荷转移、层间激子的形成,以及驻留载流子中长寿命自旋和谷极化的存在。在此,我们综述了最近为阐明TMDC异质结构中电子动力学所做的实验和理论工作,时间尺度从飞秒到微秒,并评论了这些效应与光电器件、谷电子器件和自旋电子器件潜在应用的相关性。