Barati Fatemeh, Arp Trevor B, Su Shanshan, Lake Roger K, Aji Vivek, van Grondelle Rienk, Rudner Mark S, Song Justin C W, Gabor Nathaniel M
Department of Physics and Astronomy, Faculty of Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.
Canadian Institute for Advanced Research, MaRS Centre West Tower, 661 University Avenue, Toronto, Ontario ON M5G 1M1, Canada.
Nano Lett. 2022 Jul 27;22(14):5751-5758. doi: 10.1021/acs.nanolett.2c00944. Epub 2022 Jul 5.
Stack engineering, an atomic-scale metamaterial strategy, enables the design of optical and electronic properties in van der Waals heterostructure devices. Here we reveal the optoelectronic effects of stacking-induced strong coupling between atomic motion and interlayer excitons in WSe/MoSe heterojunction photodiodes. To do so, we introduce the photocurrent spectroscopy of a stack-engineered photodiode as a sensitive technique for probing interlayer excitons, enabling access to vibronic states typically found only in molecule-like systems. The vibronic states in our stack are manifest as a palisade of pronounced periodic sidebands in the photocurrent spectrum in frequency windows close to the interlayer exciton resonances and can be shifted "on demand" through the application of a perpendicular electric field via a source-drain bias voltage. The observation of multiple well-resolved sidebands as well as their ability to be shifted by applied voltages vividly demonstrates the emergence of interlayer exciton vibronic structure in a stack-engineered optoelectronic device.
堆叠工程作为一种原子尺度的超材料策略,能够在范德华异质结构器件中设计光学和电子特性。在此,我们揭示了在WSe/MoSe异质结光电二极管中,堆叠诱导的原子运动与层间激子之间强耦合的光电效应。为此,我们引入了堆叠工程光电二极管的光电流光谱,作为探测层间激子的一种灵敏技术,从而能够获取通常仅在类分子系统中发现的振动电子态。我们堆叠中的振动电子态表现为在靠近层间激子共振的频率窗口内,光电流光谱中一系列明显的周期性边带,并且可以通过经由源漏偏置电压施加垂直电场“按需”进行移动。多个清晰分辨的边带的观测以及它们通过施加电压而移动的能力,生动地证明了在堆叠工程光电器件中层间激子振动电子结构的出现。