Dynamic large-array terahertz imaging display based on high-performance 1D/2D tellurium homojunction modulators

Author:

Zhang Pujing1ORCID,Hao Xue2,Zhou Qingli1ORCID,She Guangwei2ORCID,Chen Jinyu1,Zhang Xuteng1,Liang Wanlin1ORCID,Deng Yuwang1ORCID,Ning Tingyin3ORCID,Shi WenSheng2ORCID,Zhang Liangliang1ORCID,Zhang Cunlin1ORCID

Affiliation:

1. Key Laboratory of Terahertz Optoelectronics, Ministry of Education, and Beijing Advanced Innovation Center for Imaging Theory and Technology, Department of Physics, Capital Normal University 1 , Beijing 100048, China

2. Key Laboratory of Photochemical Conversion and Optoelectronic Materials, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences 2 , Beijing 100190, China

3. Shandong Provincial Engineering and Technical Center of Light Manipulations and Shandong Provincial Key Laboratory of Optics and Photonic Device, School of Physics and Electronics, Shandong Normal University 3 , Jinan 250358, China

Abstract

Mixed-dimensional van der Waals systems could improve terahertz modulators’ performance by utilizing the advantages of different dimensional materials. However, the reported available mixed-dimensional heterojunctions using two-dimensional (2D) and three-dimensional materials usually sacrifice the modulation speed to realize a higher modulation depth. Here, we creatively integrate one-dimensional (1D) nanowires with 2D nanofilms to construct the novel mixed-dimensional tellurium (Te) homojunction and achieve optimal indices with an ultrahigh modulation depth and a shorter carrier lifetime. In addition, a Te-based large-array imaging element was fabricated to successfully reproduce the painting colors under specific pump conditions as well as the dynamic multicolor display. Further measurements with the introduction of metamaterials prove that the required energy consumption can be significantly reduced by one order of magnitude. Our proposed 1D/2D integration strategy opens a new way to build high-performance terahertz functional devices and greatly expands the application fields of Te nanomaterials.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

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