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Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes

Publication ,  Journal Article
Yu, W; Richter, MH; Buabthong, P; Moreno-Hernandez, IA; Read, CG; Simonoff, E; Brunschwig, BS; Lewis, NS
Published in: Energy and Environmental Science
November 1, 2021

The stability of p-InP photocathodes performing the hydrogen-evolution reaction (HER) has been evaluated in contact with either 1.0 M H2SO4(aq) or 1.0 M KOH(aq), with a focus on identifying corrosion mechanisms. Stability for the solar-driven HER was evaluated using p-InP electrodes that were either etched or coated with an electrodeposited Pt catalyst (p-InP/Pt). Variables such as trace O2 were systematically controlled during the measurements. Changes in surface characteristics after exposure to electrochemical conditions as well as electrode dissolution processes were monitored using X-ray photoelectron spectroscopy (XPS) and inductively coupled plasma mass spectrometry (ICP-MS). In either H2SO4 or KOH, etched p-InP photoelectrodes corroded cathodically under illumination, forming metallic In0 at the electrode surface. In contrast, electrodeposition of Pt kinetically stabilized illuminated p-InP photocathodes in both H2SO4 and KOH by inhibiting the cathodic corrosion pathway. Notably, when held at 0 V vs. the reversible hydrogen electrode (RHE) in 1.0 M H2SO4(aq), p-InP/Pt exhibited a stable current density (J) of ∼-18 mA cm-2 for >285 h under simulated 1 Sun illumination. The long-term current density vs. potential (J-E) behavior at pH 0 and pH 14 of p-InP/Pt photocathodes correlated with changes in the surface chemistry as well as the dissolution of p-InP. In acidic media, the J-E behavior of p-InP/Pt photocathodes remained nearly constant with time, but the surface of a p-InP/Pt electrodes gradually turned P-rich via a slow and continuous leaching of In ions. In alkaline electrolyte, the surface of p-InP/Pt electrodes was passivated by formation of an InOx layer that exhibited negligible dissolution but led to a substantial degradation in the J-E characteristics. Consequently, changes in the catalytic kinetics and surface stoichiometry are both important considerations for determining the corrosion chemistry and the long-term operational stability of InP photoelectrodes.

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Published In

Energy and Environmental Science

DOI

EISSN

1754-5706

ISSN

1754-5692

Publication Date

November 1, 2021

Volume

14

Issue

11

Start / End Page

6007 / 6020

Related Subject Headings

  • Energy
 

Citation

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MLA
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Yu, W., Richter, M. H., Buabthong, P., Moreno-Hernandez, I. A., Read, C. G., Simonoff, E., … Lewis, N. S. (2021). Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes. Energy and Environmental Science, 14(11), 6007–6020. https://doi.org/10.1039/d1ee02809j
Yu, W., M. H. Richter, P. Buabthong, I. A. Moreno-Hernandez, C. G. Read, E. Simonoff, B. S. Brunschwig, and N. S. Lewis. “Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes.” Energy and Environmental Science 14, no. 11 (November 1, 2021): 6007–20. https://doi.org/10.1039/d1ee02809j.
Yu W, Richter MH, Buabthong P, Moreno-Hernandez IA, Read CG, Simonoff E, et al. Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes. Energy and Environmental Science. 2021 Nov 1;14(11):6007–20.
Yu, W., et al. “Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes.” Energy and Environmental Science, vol. 14, no. 11, Nov. 2021, pp. 6007–20. Scopus, doi:10.1039/d1ee02809j.
Yu W, Richter MH, Buabthong P, Moreno-Hernandez IA, Read CG, Simonoff E, Brunschwig BS, Lewis NS. Investigations of the stability of etched or platinized p-InP(100) photocathodes for solar-driven hydrogen evolution in acidic or alkaline aqueous electrolytes. Energy and Environmental Science. 2021 Nov 1;14(11):6007–6020.
Journal cover image

Published In

Energy and Environmental Science

DOI

EISSN

1754-5706

ISSN

1754-5692

Publication Date

November 1, 2021

Volume

14

Issue

11

Start / End Page

6007 / 6020

Related Subject Headings

  • Energy