材料科学
光电子学
光电探测器
异质结
半导体
激子
带隙
紫外线
发光
波长
光致发光
化学气相沉积
平面的
量子效率
纳米技术
凝聚态物理
计算机科学
物理
计算机图形学(图像)
作者
Chuanhui Gong,Junwei Chu,Chujun Yin,Chaoyi Yan,Xiaozong Hu,Shifeng Qian,Yin Hu,Kai Hu,Jianwen Huang,Hongbo Wang,Yang Wang,Peihua Wangyang,Tianyu Lei,Liping Dai,Chunyang Wu,Bo Chen,Chaobo Li,Min Liao,Tianyou Zhai,Jie Xiong
标识
DOI:10.1002/adma.201903580
摘要
2D planar structures of nonlayered wide-bandgap semiconductors enable distinguished electronic properties, desirable short wavelength emission, and facile construction of 2D heterojunction without lattice match. However, the growth of ultrathin 2D nonlayered materials is limited by their strong covalent bonded nature. Herein, the synthesis of ultrathin 2D nonlayered CuBr nanosheets with a thickness of about 0.91 nm and an edge size of 45 µm via a controllable self-confined chemical vapor deposition method is described. The enhanced spin-triplet exciton (Zf , 2.98 eV) luminescence and polarization-enhanced second-harmonic generation based on the 2D CuBr flakes demonstrate the potential of short-wavelength luminescent applications. Solar-blind and self-driven ultraviolet (UV) photodetectors based on the as-synthesized 2D CuBr flakes exhibit a high photoresponsivity of 3.17 A W-1 , an external quantum efficiency of 1126%, and a detectivity (D*) of 1.4 × 1011 Jones, accompanied by a fast rise time of 32 ms and a decay time of 48 ms. The unique nonlayered structure and novel optical properties of the 2D CuBr flakes, together with their controllable growth, make them a highly promising candidate for future applications in short-wavelength light-emitting devices, nonlinear optical devices, and UV photodetectors.
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