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Vertically aligned MoS2 thin film catalysts with Fe-Ni sulfide nanoparticles by one-step sulfurization for efficient solar water reduction

Cited 23 time in Web of Science Cited 24 time in Scopus
Authors

Choi, Seokhoon; Kim, Changyeon; Lee, Jae Yoon; Lee, Tae Hyung; Kwon, Ki Chang; Kang, Sungwoo; Lee, Sol A.; Choi, Kyoung Soon; Suh, Jun Min; Hong, Kootak; Jun, Sang Eon; Kim, Woo Kyoung; Ahn, Sang Hyun; Han, Seungwu; Kim, Soo Young; Lee, Chul-Ho; Jang, Ho Won

Issue Date
2021-08
Publisher
Elsevier BV
Citation
Chemical Engineering Journal, Vol.418, p. 129369
Abstract
Transferable 2-dimensional (2D) MoS2 thin films have a versatile potential for constructing highly efficient photoelectrodes when combined with conventional semiconductor light absorbers, taking advantage of its optical transparency and high electrochemical activity. Here, we firstly report fully vertically aligned MoS2 (VMS)/ p-Si heterostructure photocathode for photoelectrochemical (PEC) water splitting. Furthermore, 3D iron-nickel sulfide nanoparticles of tailored atomic composition are formed simultaneously during the synthesis of VMS via one-step sulfurization to build 3D/2D transition metal sulfide (TMD) heterostructure thin film catalyst. The spectroscopic results reveal that the Fe-doped Ni3S2 nanoparticles on VMS/p-Si photocathode induce the electrochemically-benign band bending in the overall heterostructure, enabling a significant improvement in PEC performance and long-term stability. Scanning photoelectrochemical microscopy is used to vividly visualize the photocurrent enhancement by the various 3D/2D TMD heterostructures. This work provides promising strategies in developing high performance TMD-based electrocatalysts for practical applications in a wide variety of electrochemical energy conversion processes.
ISSN
1385-8947
URI
https://hdl.handle.net/10371/202241
DOI
https://doi.org/10.1016/j.cej.2021.129369
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  • College of Engineering
  • Department of Electrical and Computer Engineering
Research Area 2차원 반도체 소자 및 재료, High-Performance 2D Electronics, Low-Power 2D Electronics, 뉴로모픽 소자 및 응용기술, 저전력 소자 및 소자물리

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