材料科学
膜
结晶学
复合材料
纳米技术
化学工程
化学
遗传学
工程类
生物
作者
Congcong Wu,Minghui Fu,Wenbo Zhai,Yujing Tang,Changhao Men,Yi Yu,Hung-Ta Wang
标识
DOI:10.1021/acsami.5c02636
摘要
Bismuth oxychlorides are emerging two-dimensional wide-bandgap semiconductors with exceptional potential for advanced photoelectric applications. Elastic strain engineering is a promising strategy to enhance their photoelectric performances. However, fundamental elastic properties of bismuth oxychlorides are largely unknown. In this work, atomic force microscopy based nanoindentations were employed to characterize sub 5 nm thick freestanding BiOCl and Bi 3 O 4 Cl circular membranes, and recorded elastic responses were analyzed using a nonlinear membrane model. Experimentally acquired Young’s moduli and breaking strains of BiOCl and Bi 3 O 4 Cl membranes indicate a Cl–Cl interfacial shear effect in epitaxially grown BiOCl and a process-induced defect effect in the phase-transformed Bi 3 O 4 Cl. Built atomistic models illustrated bond strain behaviors of structurally symmetric BiOCl and asymmetric Bi 3 O 4 Cl and enabled predictions of strain-mediated interlayer electric fields and electronic structures. These results provide fundamental insights into the unique nanomechanics of layered bismuth oxychlorides and show guidelines of elastic strain engineering to tailor photoelectric properties of BiOCl and Bi 3 O 4 Cl.
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