单层
材料科学
拉伤
凝聚态物理
背景(考古学)
侧向应变
价(化学)
模数
分子物理学
光学
纳米技术
复合材料
物理
生物
内科学
古生物学
医学
量子力学
作者
Hongxiao Chao,Ze Xue,Chuan He,Shi-Li Li,Zhiyuan Cao,Lei Qiang,Dongying Wang,Ruowei Wu,Tao Kuai,Lipeng Zhu,Qiyi Zhao
标识
DOI:10.1021/acsaelm.4c01084
摘要
Two-dimensional (2D) layered nanomaterials with exceptional flexibility offer a promising platform for the development of advanced microstrain sensors. Herein, we meticulously examined the linear optical response of monolayer GeSe subjected to a spectrum of strains, spanning from −3 to 3%, encompassing both uniaxial and biaxial strain configurations, to uncover the strain-sensing capabilities of monolayer GeSe. Focusing on the perspective of the energy difference between the conduction and valence bands at high-symmetry points, we observed a significant strain-induced variation in transition energy, with sensitivities reaching up to 152.14 meV/% under biaxial strain. The transition energies demonstrate a near-perfect linear correlation with the applied strain, highlighting a highly predictable and reliable strain response. This pronounced strain-responsive behavior is attributed to the intricate interplay between orbital overlap and geometric modifications. In the context of light-field coupling with monolayer GeSe, the 1.6 eV absorption peak within the linear optical dispersion spectrum is observed to blueshift with increasing biaxial strain and uniaxial strain along the a-axis, contrastingly redshifting with uniaxial strain along the b-axis. These findings reveal that the magnitude of strain can be discerned by resolving the displacement of the linear optical absorption peaks, thereby laying a robust theoretical foundation for the engineering of monolayer GeSe-based strain sensors.
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