4.8 Article

Design of sandwich-structured ZnO/ZnS/Au photoanode for enhanced efficiency of photoelectrochemical water splitting

Journal

NANO RESEARCH
Volume 8, Issue 9, Pages 2891-2900

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-015-0794-y

Keywords

ZnO; ZnS; Au; photoanode; photoelectrochemical water splitting

Funding

  1. National Basic Research Program of China [2013CB932601]
  2. Major Project of International Cooperation and Exchanges [2012DFA50990]
  3. Program of Introducing Talents of Discipline to Universities [B14003]
  4. National Natural Science Foundation of China [51232001, 51172022, 51372023, 31371203]
  5. Beijing Municipal Commission of Education
  6. Fundamental Research Funds for the Central Universities
  7. Program for Changjiang Scholars and Innovative Research Team in University

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We developed and demonstrated a ZnO/ZnS/Au composite photoanode with significantly enhanced photoelectrochemical water-splitting performance, containing a ZnS interlayer and Au nanoparticles. The solar-to-hydrogen conversion efficiency of this ZnO/ZnS/Au heterostructure reached 0.21%, 3.5 times that of pristine ZnO. The comparison of the incident photon-to-current efficiency (IPCE) and the photoresponse in the white and visible light regions further verified that the enhancement resulted from contributions of both UV and visible light. The modification of the Au NPs was shown to improve the photoelectrochemical (PEC) performance to both UV and visible light, as modification encouraged effective surface passivation and surface-plasmonresonance effects. The ZnS interlayer favored the movement of photogenerated electrons under UV light and hot electrons under visible light, causing their injection into ZnO; this simultaneously suppressed the electron-hole recombination at the photoanode-electrolyte interface. The optimized design of the interlayer within plasmonic metal/semiconductor composite systems, as reported here, provided a facile and compatible photoelectrode configuration, enhancing the utilization efficiency of incident light for photoelectrochemical applications.

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