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![Protein Film Infrared Electrochemistry Demonstrated for Study of H2 Oxidation by a [NiFe] Hydrogenase](/_next/image?url=https%3A%2F%2Fcloudfront.jove.com%2FCDNSource%2Fteasers%2F55858.jpg&w=3840&q=50)
Protein Film Infrared Electrochemistry Demonstrated for Study of H2 Oxidation by a [NiFe] Hydrogenase
Published on: December 4, 2017
Ga-induced electron pump optimization of Fe active sites in NiFe-LDHs for efficient alkaline water electrooxidation
Yu Shuai1, Shucheng Liu1, GangBiao Li1
1School of Physical Sciences, Guizhou University Guiyang 550025 China yliu9@gzu.edu.cn.
Abstract:
The development of efficient and stable electrocatalysts for the alkaline oxygen evolution reaction (OER) is crucial for large-scale industrial application in producing green hydrogen. Herein, we propose a targeted electronic modulation strategy to enhance the OER performance of NiFe layered double hydroxides (LDHs) via Ga3+ doping. Preliminary theoretical analyses indicate that Ga3+, serving as a strong Lewis acid center with high electron-withdrawing ability, effectively optimizes the electronic structure of adjacent Fe active sites through indirect orbital interactions. As a result, the synthesized NiFeGa-LDH anode exhibits a low overpotential of only 275 mV at 50 mA cm-2 in 1 M KOH and, notably, exhibits stable operation for over 100 hours at an industrial-level current density of 1 A cm-2 in an anion exchange membrane (AEM) electrolyzer test (configured as NiFeGa-LDHs//Pt-C), demonstrating overall performance superior to that of the commercial RuO2//Pt-C benchmark. Through a combination of theoretical and experimental characterization, we demonstrate that Ga3+ acts as an "electron pump" to effectively tune and stabilize the Fe active sites. Operando spectroscopic analyses further confirm that this electronic modulation drives an earlier and more extensive electrochemical reconstruction of the catalyst into the active γ-NiFeOOH phase, which is identified as the key structural origin of the activity enhancement. This work pioneers a targeted electronic structure engineering tactic via strong Lewis acid doping, providing a transformative pathway for designing advanced electrocatalysts beyond the OER.
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