Title: Environmentally and Mechanically Stable Selenium 1D/2D Hybrid Structures for Broad-Range Photoresponse from Ultraviolet to Infrared Wavelengths
Authors: Chen, Yu-Ze
You, Yen-Ting
Chen, Pin Jung
Li, Dapan
Su, Teng-Yu
Lee, Ling
Shih, Yu-Chuan
Chen, Chia-Wei
Chang, Ching-Chen
Wang, Yi-Chung
Hong, Cheng-You
Wei, Tzu-Chien
Ho, Johnny C.
Wei, Kung-Hwa
Shen, Chang-Hong
Chueh, Yu-Lun
交大名義發表
材料科學與工程學系
National Chiao Tung University
Department of Materials Science and Engineering
Keywords: Se nanowires arrays;plasma-assisted selenization process;flexible substrate;adhesion ability;broad-ranged photoresponse
Issue Date: 17-Oct-2018
Abstract: Selenium (Se) is one of the potential candidates as photodetector because of its outstanding properties such as high photoconductivity (similar to 8 x 10(4) S cm(-1)), piezoelectricity, thermoelectricity, and nonlinear optical responses. Solution phase synthesis becomes an efficient way to produce Se, but a contamination issue that could deteriorate the electric characteristic of Se should be taken into account. In this work, a facile, controllable approach of synthesizing Se nanowires (NWs)/films via a plasma-assisted growth process was demonstrated at the low substrate temperature of 100 degrees C. The detailed formation mechanisms of nanowires arrays to thin films at different plasma powers were investigated. Moreover, indium (In) layer was used to enhance the adhesive strength with 50% improvement on a SiO2/Si substrate by mechanical interlocking and surface alloying between Se and In layers, indicating great tolerance for mechanical stress for future wearable devices applications. Furthermore, the direct growth of Se NWs/films on a poly(ethylene terephthalate) substrate was demonstrated, exhibiting a visible to broad infrared detection ranges from 405 to 1555 nm with a high on/off ratio of similar to 700 as well as the fast response time less than 25 ms. In addition, the devices exhibited fascinating stability in the atmosphere over one month.
URI: http://dx.doi.org/10.1021/acsami.8b11676
http://hdl.handle.net/11536/148345
ISSN: 1944-8244
DOI: 10.1021/acsami.8b11676
Journal: ACS APPLIED MATERIALS & INTERFACES
Volume: 10
Begin Page: 35477
End Page: 35486
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