4.8 Article

Tunable 0D/2D/2D Nanocomposite Based on Green Zn-Doped CuInS2 Quantum Dots and MoS2/rGO as Photoelectrodes for Solar Production

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 49, Pages 54790-54802

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c17625

Keywords

photoelectrochemical devices; 0D; 2D; 2D heterostructures; charge transfer; doping; quantum dots

Funding

  1. Natural Science and Engineering Research Council of Canada (NSERC)
  2. Canada Foundation for Innovation for infrastructure and its operating funds
  3. Canada Research Chairs program
  4. Special Foundation for Taishan Scholar Professorship of Shandong Province
  5. Shandong Provincial Natural Science Foundation [ZR2021QB120]
  6. Chinese Scholarship Council (CSC) [201808880009, 201808880005]
  7. Fonds de recherche du Qubec - Nature et technologies (FRQNT) [281913, 271840]

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Charge separation, transmission, and light absorption properties are critical to the performance of photoelectrochemical devices, and these properties can be controlled by using heterostructured materials. This study designs a tunable zero-dimensional/two-dimensional heterostructure based on quantum dots and 2D nanosheets. The optimized heterostructure exhibits significantly higher activity in solar hydrogen production compared to other materials, due to enhanced light absorption, efficient charge separation, and transmission.
Charge separation, transmission, and light absorp-tion properties are critical to determining the performance of photoelectrochemical (PEC) devices. An important strategy to control such properties is based on using heterostructured materials. Herein, a tunable zero-dimensional (0D)/two-dimen-sional (2D) heterostructure is designed based on quantum dots (QDs) and 2D nanosheets (NSs). Specifically, eco-friendly Zn-doped CuInS2 QDs prepared by hot injection were anchored on hierarchical (2D/2D) MoS2/rGO (MG) NSs through a facile sonication-assisted method to develop a 0D/2D/2D hetero-junction-based photoelectrode for solar hydrogen production. The interfacial structure and band alignment between the proposed 0D QDs and 2D/2D MG NSs were engineered by modulating the Zn molar ratio during the QD synthesis. As proof of concept, the optimized 0D/2D/2D photoanode exhibits almost five times higher PEC activity than MG/CuInS2 and MoS2/Zn-CuInS2 NSs due to the enhanced light absorption, efficient charge separation, and transmission. Zn doping and the presence of graphene are essential in enhancing performance in the proposed heterostructure, reducing recombination of charge carriers, and improving sunlight absorption. This work shows how optimal band alignment control and carbon addition can facilitate charge transfer, enabling the development of highly efficient PEC devices based on 0D/2D/2D heterostructure nanocomposites.

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