Literature DB >> 32396324

On/Off Boundary of Photocatalytic Activity between Single- and Bilayer MoS2.

Takaaki Taniguchi1, Leanddas Nurdiwijayanto1, Shisheng Li2, Hong En Lim3, Yasumitsu Miyata3, Xueyi Lu1, Renzhi Ma1, Dang-Ming Tang1, Shigenori Ueda4,5, Kazuhito Tsukagoshi1, Takayoshi Sasaki1, Minoru Osada1,6.   

Abstract

Molecularly thin two-dimensional (2D) semiconductors are emerging as photocatalysts owing to their layer-number-dependent quantum effects and high charge separation efficiency. However, the correlation among the dimensionality, crystallinity, and photocatalytic activity of such 2D nanomaterials remains unclear. Herein, a Ag photoreduction technique coupled with microscopic analyses is employed to spatially resolve the photocatalytic activity of MoS2 as a model catalyst. Interestingly, we find that only monolayer (1L)-MoS2 is active for a Ag photoreduction reaction. The photocatalytic activity of 1L-MoS2 is enhanced by a built-in electrical field originated from the MoS2/SiO2 interface, instead of by the specific surface structure and quantum electronic state of 1L-MoS2. Furthermore, we observe photocatalytic active sites to be geometrically distributed on triangular 1L-MoS2 crystals, wherein the Ag particles are preferentially deposited on the outermost zigzag edges and defective inner parts of the triangular grains. The degradation of photocatalytic activity and electron mobility with the formation of Mo(VI) species indicates that the species inhibit the in-plane diffusion of the photogenerated electrons to the reductive sites. The monolayer-selectivity, activation, and inactivation mechanisms, unveiled in this work, will offer future directions in designing 2D nanophotocatalysts.

Entities:  

Keywords:  MoS2; nanosheets; photocatalyst; photodeposition; two-dimensional materials

Year:  2020        PMID: 32396324     DOI: 10.1021/acsnano.9b09253

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  A chemiresistive biosensor for detection of cancer biomarker in biological fluids using CVD-grown bilayer graphene.

Authors:  Mani Govindasamy; Chen-Rong Jian; Chang-Fu Kuo; Ao-Ho Hsieh; Jao-Liang Sie; Chi-Hsien Huang
Journal:  Mikrochim Acta       Date:  2022-09-07       Impact factor: 6.408

  1 in total

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