4.8 Article

Quantum Dots-Based Photoelectrochemical Hydrogen Evolution from Water Splitting

期刊

ADVANCED ENERGY MATERIALS
卷 11, 期 12, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202003233

关键词

hydrogen; photoelectrochemical water splitting; quantum dots; solar technology

资金

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. Canada Foundation for Innovation (CFI)
  3. Fonds de recherche du Quebec-Nature et technologies (FRQNT)
  4. National Key Research and Development Program of China [2019YFE0121600]
  5. State Key Laboratory of Bio-Fibers and Eco-Textiles (Qingdao University) [ZKT03, GZRC202004]
  6. Shandong Natural Science Funds for Distinguished Young Scholar [ZR2020JQ20]
  7. China Postdoctoral Science Foundation [2020M673173]
  8. National Natural Science Foundation of China (NSFC) [22005044]
  9. Chinese Scholarship Council (CSC) [201906070283]

向作者/读者索取更多资源

This article summarizes the latest progress in tailoring the materials, structure, and performance of QDs-based PEC H-2 generation, and discusses the impact of specific features of QDs and charge generation and transfer on the performance of PEC devices. Future challenges and opportunities for high-efficiency and stable QDs-based PEC applications are also discussed.
Solar-driven photoelectrochemical (PEC) hydrogen evolution is a promising and sustainable approach to convert solar energy into a fuel that can be stored. Semiconductor quantum dots (QDs) are increasingly used in PEC devices due to their broad composition/size/shape tunable absorption spectrum (from ultraviolet to near-infrared, with significant overlap with the solar spectrum). Despite significant efforts and recent progress, several major challenges remain unresolved in this fast-developing field. Here, the latest progress in tailoring the materials, structure, and performance of QDs-based PEC H-2 generation, including photoanodes, photocathodes, and tandem PEC systems, is summarized. In particular, recent strategies developed for PEC H-2 generation are critically analyzed. Specific features of QDs (e.g., size/shape/composition-tunable absorption band edge arising from quantum confinement, ease of fabrication through chemical approaches, and multiple exciton generation), charge generation, and charge transfer of photoelectrodes and their implications on the performance of PEC devices are discussed. Future challenges and opportunities working, toward high-efficiency and stable QDs-based PEC applications are discussed in the conclusion.

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