In-plane strain-modulated photoresponsivity of the α-In2Se3-based flexible transistor

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Abstract

Two-dimensional (2D) van der Waals (vdW) materials have been proven to be functional materials with excellent performance among flexible functional optoelectronics. Static strain may have a great influence on photoinduced charge carriers in a 2D vdW piezoelectric semiconductor. However, only a few works pay attention to the static-strain-modulated photoresponsivity of 2D vdW ferroelectric materials. α-In2Se3, a 2D vdW ferroelectric semiconductor from the family of III− VI compounds in the form of III2−VI3, has attracted considerable attention for the study of high-performance nanodevices. In this study, we investigate a flexible α-In2Se3-based transistor on a polyethylene terephthalate substrate. A competitive mechanism of carrier mobility and piezoelectric/ferroelectric polarization exists in the transistor when in-plane strain is applied. The carrier mobility modulates separation and transport of electron−hole pairs, whereas piezoelectric/ferroelectric polarization charges modulate the local band profile tilting. The optimized photoresponsivity is increased by 200% (illumination intensity is about 454 μW/cm2) while introducing a −0.15% compressive strain when the wavelength of the laser is about 405 nm. Our results reveal the strain-modulated photoresponsivity in an α-In2Se3-based flexible transistor, which may offer an approach to understand strain-modulated flexible functional optoelectronics.

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Hou, P., Lv, Y., Chen, Y., Liu, Y., Wang, C., Zhou, P., … Ouyang, X. (2020). In-plane strain-modulated photoresponsivity of the α-In2Se3-based flexible transistor. ACS Applied Electronic Materials, 2(1), 140–146. https://doi.org/10.1021/acsaelm.9b00658

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