Impact of the uniaxial strain on terahertz modulation characteristics in flexible epitaxial VO2 film across the phase transition

Author:

Chang Xue1,Li Jiang1ORCID,Mu Jian1,Ma Chun-Hao2,Huang Wanxia,Zhu Hong-Fu1,Liu Qiao1,Du Liang-Hui1,Zhong Sen-Cheng1,Zhai Zhao-Hui1,Das Sujit3,Huang Yen-Lin2,Zhu Gang-Bei1,Zhu Li-Guo1,Shi QiwuORCID

Affiliation:

1. Institute of Fluid Physics, China Academy of Engineering Physics

2. National Yang Ming Chiao Tung University

3. Indian Institute of Science

Abstract

Exploring flexible electronics is on the verge of innovative breakthroughs in terahertz (THz) communication technology. Vanadium dioxide (VO2) with insulator-metal transition (IMT) has excellent application potential in various THz smart devices, but the associated THz modulation properties in the flexible state have rarely been reported. Herein, we deposited an epitaxial VO2 film on a flexible mica substrate via pulsed-laser deposition and investigated its THz modulation properties under different uniaxial strains across the phase transition. It was observed that the THz modulation depth increases under compressive strain and decreases under tensile strain. Moreover, the phase-transition threshold depends on the uniaxial strain. Particularly, the rate of the phase transition temperature depends on the uniaxial strain and reaches approximately 6 °C/% in the temperature-induced phase transition. The optical trigger threshold in laser-induced phase transition decreased by 38.9% under compressive strain but increased by 36.7% under tensile strain, compared to the initial state without uniaxial strain. These findings demonstrate the uniaxial strain-induced low-power triggered THz modulation and provide new insights for applying phase transition oxide films in THz flexible electronics.

Funder

National Natural Science Foundation of China

Sichuan Province Science and Technology Support Program

the Fundamental Research Funds for Central Universities and the Distinguished Young Scholars of Sichuan Province

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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