Nanoscale Valley Modulation by Surface Plasmon Interference.

Zhou, Huan-Li; Zhang, Xiao-Yang; Xue, Xiao-Mei; Yang, Yi; Wang, Shan-Jiang; Su, Dan; Yang, Zong-Ru; Wang, Yun-Fan et al. · Nano Lett · 2022

basic_science · Level V

Where this comes from

Abstract

Excitons in two-dimensional (2D) materials have attracted the attention of the community to develop improved photoelectronic devices. Previous reports are based on direct excitation where the out-of-plane illumination projects a uniform single-mode light spot. However, because of the optical diffraction limit, the minimal spot size is a few micrometers, inhibiting the precise manipulation and control of excitons at the nanoscale level. Herein, we introduced the in-plane coherent surface plasmonic interference (SPI) field to excite and modulate excitons remotely. Compared to the out-of-plane light, a uniform in-plane SPI suggests a more compact spatial volume and an abundance of mode selections for a single or an array of device modulation. Our results not only build up a fundamental platform for operating and encoding the exciton states at the nanoscale level but also provide a new avenue toward all-optical integrated valleytronic chips for future quantum computation and information applications.