Unassisted photoelectrochemical water splitting exceeding 7% solar-to-hydrogen conversion efficiency using photon recycling

Various tandem cell configurations have been reported for highly efficient and spontaneous hydrogen production from photoelectrochemical solar water splitting. However, there is a contradiction between two main requirements of a front photoelectrode in a tandem cell configuration, namely, high trans...

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Veröffentlicht in:Nature communications 2016-06, Vol.7 (1), p.11943-11943, Article 11943
Hauptverfasser: Shi, Xinjian, Jeong, Hokyeong, Oh, Seung Jae, Ma, Ming, Zhang, Kan, Kwon, Jeong, Choi, In Taek, Choi, Il Yong, Kim, Hwan Kyu, Kim, Jong Kyu, Park, Jong Hyeok
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Sprache:eng
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Zusammenfassung:Various tandem cell configurations have been reported for highly efficient and spontaneous hydrogen production from photoelectrochemical solar water splitting. However, there is a contradiction between two main requirements of a front photoelectrode in a tandem cell configuration, namely, high transparency and high photocurrent density. Here we demonstrate a simple yet highly effective method to overcome this contradiction by incorporating a hybrid conductive distributed Bragg reflector on the back side of the transparent conducting substrate for the front photoelectrochemical electrode, which functions as both an optical filter and a conductive counter-electrode of the rear dye-sensitized solar cell. The hybrid conductive distributed Bragg reflectors were designed to be transparent to the long-wavelength part of the incident solar spectrum ( λ >500 nm) for the rear solar cell, while reflecting the short-wavelength photons ( λ
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms11943