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Solar Water Oxidation by an InGaN Nanowire Photoanode with a Bandgap of 1.7 eV AITranslate

University of Michigan
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Publisher: ACS
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Abstract AITranslate

The performance of overall solar water splitting has been largely limited by the half-reaction of water oxidation. Here, we report a 1.7 eV bandgap InGaN nanowire photoanode for efficient solar water oxidation. It produces a low onset potential of 0.1 V versus a reversible hydrogen electrode (RHE) and a high photocurrent density of 5.2 mA/cm2 at a potential as low as 0.6 V versus RHE. The photoanode yields a half-cell solar energy conversion efficiency up to 3.6%, a record for a single-photon photoanode to our knowledge. Furthermore, in the presence of hole scavengers, the photocurrent density of the InGaN photoanode reaches 21.2 mA/cm2 at 1.23 V versus RHE, which approaches the theoretical limit for a 1.7 eV InGaN absorber. The InGaN nanowire photoanode may serve as an ideal top cell in a photoelectrochemical tandem device when stacked with a 0.9–1.2 eV bandgap bottom cell, which can potentially deliver solar-to-hydrogen efficiency over 25%.

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DOI:https://doi.org/10.1021/acsenergylett.7b01138

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Citation Information:

The performance of overall solar water splitting has been largely limited by the half-reaction of water oxidation. Here, we report a 1.7 eV bandgap InGaN nanowire photoanode for efficient solar water oxidation. It produces a low onset potential of 0.1 V versus a reversible hydrogen electrode (RHE) and a high photocurrent density of 5.2 mA/cm2 at a potential as low as 0.6 V versus RHE. The photoanode yields a half-cell solar energy conversion efficiency up to 3.6%, a record for a single-photon photoanode to our knowledge. Furthermore, in the presence of hole scavengers, the photocurrent density of the InGaN photoanode reaches 21.2 mA/cm2 at 1.23 V versus RHE, which approaches the theoretical limit for a 1.7 eV InGaN absorber. The InGaN nanowire photoanode may serve as an ideal top cell in a photoelectrochemical tandem device when stacked with a 0.9–1.2 eV bandgap bottom cell, which can potentially deliver solar-to-hydrogen efficiency over 25%.

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GB/T 7714-2015 [1] Zetian Mi. ACS Energy Letters, 2018(3). DOI:10.1021/acsenergylett.7b01138.
MLA [1] Zetian Mi. ACS Energy Letters, no. 3, 2018, https://doi.org/10.1021/acsenergylett.7b01138.
APA [1] Zetian Mi. (2018). ACS Energy Letters(3). https://doi.org/10.1021/acsenergylett.7b01138
IEEE [1] Zetian Mi, ACS Energy Letters, no. 3, 2018, doi: 10.1021/acsenergylett.7b01138.