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Benchmarking Hydrogen Evolving Reaction and Oxygen Evolving Reaction Electrocatalysts for Solar Water Splitting Devices

Journal of the American Chemical Society · 2015 · Vol. 137(13) · pp. 4347–4357
Charles C. L. McCrorySuho JungIvonne M. FerrerShawn ChatmanJonas C. PetersThomas F. Jaramillo

Abstract

Objective comparisons of electrocatalyst activity and stability using standard methods under identical conditions are necessary to evaluate the viability of existing electrocatalysts for integration into solar-fuel devices as well as to help inform the development of new catalytic systems. Herein, we use a standard protocol as a primary screen for evaluating the activity, short-term (2 h) stability, and electrochemically active surface area (ECSA) of 18 electrocatalysts for the hydrogen evolution reaction (HER) and 26 electrocatalysts for the oxygen evolution reaction (OER) under conditions relevant to an integrated solar water-splitting device in aqueous acidic or alkaline solution. Our primary figure of merit is the overpotential necessary to achieve a magnitude current density of 10 mA cm(-2) per geometric area, the approximate current density expected for a 10% efficient solar-to-fuels conversion device under 1 sun illumination. The specific activity per ECSA of each material is also reported. Among HER catalysts, several could operate at 10 mA cm(-2) with overpotentials <0.1 V in acidic and/or alkaline solutions. Among OER catalysts in acidic solution, no non-noble metal based materials showed promising activity and stability, whereas in alkaline solution many OER catalysts performed with similar activity achieving 10 mA cm(-2) current densities at overpotentials of ~0.33-0.5 V. Most OER catalysts showed comparable or better specific activity per ECSA when compared to Ir and Ru catalysts in alkaline solutions, while most HER catalysts showed much lower specific activity than Pt in both acidic and alkaline solutions. For select catalysts, additional secondary screening measurements were conducted including Faradaic efficiency and extended stability measurements.

Electrocatalysts for Energy ConversionAdvanced battery technologies researchAdvanced Photocatalysis TechniquesOverpotentialOxygen evolutionChemistryWater splittingCatalysisElectrocatalystInorganic chemistryAqueous solutionNoble metalSolar fuel
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References
Orientation-Dependent Oxygen Evolution Activities of Rutile IrO<sub>2</sub>and RuO<sub>2</sub>
The Journal of Physical Chemistry Letters · 2014 · 561 citations
Solar Water Splitting Cells
Chemical Reviews · 2010 · 9,183 citations
Thermodynamic theory of multi-electron transfer reactions: Implications for electrocatalysis
Journal of Electroanalytical Chemistry · 2010 · 1,146 citations
Electrolysis of water on oxide surfaces
Journal of Electroanalytical Chemistry · 2007 · 2,950 citations
Powering the planet: Chemical challenges in solar energy utilization
Proceedings of the National Academy of Sciences · 2006 · 8,164 citations
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