4.8 Article

Enhanced Incident Photon-to-Electron Conversion Efficiency of Tungsten Trioxide Photoanodes Based on 3D-Photonic Crystal Design

期刊

ACS NANO
卷 5, 期 6, 页码 4310-4318

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn200100v

关键词

photon-to-electron conversion; WO3 photoanode; inverse opal; stop-band; slow light

资金

  1. World Premier International Research Center Initiative (WPI Initiative) on Materials Nanoarchitectonics
  2. MEXT
  3. Tokyo Institute of Technology
  4. Japan Society for the Promotion of Science [21760030]
  5. National Basic Research Program of China [2007CB613305]
  6. Grants-in-Aid for Scientific Research [21760030] Funding Source: KAKEN

向作者/读者索取更多资源

In this study, 3D-photonic crystal design was utilized to enhance incident photon-to-electron conversion efficiency (IPCE) of WO3 photoanodes. Large-area and high-quality WO3 photonic crystal photoanodes with Inverse opal structure were prepared. The photonic stop-bands of these WO3 photoanodes were tuned experimentally by variation of the pore size of inverse opal structures. It was found that when the red-edge of the photonic stop-band of WO3 inverse opals overlapped with the WO3 electronic absorption edge at E-9 = 2.6-2.8 eV, a maximum of 100% increase in photocurrent intensity war observed under visible light irradiation (lambda > 400 nm) in comparison with a disordered porous WO3 photoanode. When the red-edge of the stop-band was tuned well within the electronic absorption range of WO3, noticeable but less amplitude of enhancement In the photocurrent intensity was observed. It was further shown that the spectral region with a selective IPCE enhancement of the WO3 Inverse opals exhibited a blue-shift in wavelength under off-normal Incidence of light, In agreement with the calculated stop-band edge locations. The enhancement could be attributed to a longer photon matter interaction length as a result of the slow-light effect at the photonic stop-band edge, thus leading to a remarkable improvement in the light-harvesting efficiency. The present method can provide a potential and promising approach to effectively utilize solar energy in visible-light-responsive photoanodes.

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