Bifunctional non-noble metal oxide nanoparticle electrocatalysts through lithium-induced conversion for overall water splitting

Двуфункциональные электрокатализаторы из наночастиц оксидов недрагоценных металлов, полученные методом литий-индуцированной конверсии для полного разложения воды
Po‐Chun Hsu, Yi Cui, Hyun‐Wook Lee, Yayuan Liu, Haotian Wang, Dingchang Lin, Yong Deng, Zhiyi Lu
2015-06-23

bifunctional non-noble metal oxide electrocatalystslithium-induced conversionoverall water splittingoxygen evolution reaction (OER) and hydrogen evolution reaction (HER)ultra-small NiFeOx nanoparticles
Developing earth-abundant, active and stable electrocatalysts which operate in the same electrolyte for water splitting, including oxygen evolution reaction and hydrogen evolution reaction, is important for many renewable energy conversion processes. Here we demonstrate the improvement of catalytic activity when transition metal oxide (iron, cobalt, nickel oxides and their mixed oxides) nanoparticles (∼20 nm) are electrochemically transformed into ultra-small diameter (2-5 nm) nanoparticles through lithium-induced conversion reactions. Different from most traditional chemical syntheses, this method maintains excellent electrical interconnection among nanoparticles and results in large surface areas and many catalytically active sites. We demonstrate that lithium-induced ultra-small NiFeOx nanoparticles are active bifunctional catalysts exhibiting high activity and stability for overall water splitting in base. We achieve 10 mA cm(-2) water-splitting current at only 1.51 V for over 200 h without degradation in a two-electrode configuration and 1 M KOH, better than the combination of iridium and platinum as benchmark catalysts.
1
Electrochemical lithium-induced conversion reduces ~20 nm transition metal oxide nanoparticles to ultra-small 2–5 nm nanoparticles, increasing catalytic activity.
2
In 1 M KOH, the NiFeOx catalyst achieves 10 mA cm^-2 water-splitting current at 1.51 V for over 200 hours without degradation in a two-electrode cell.
3
The lithium-induced NiFeOx catalyst outperforms the benchmark combination of iridium and platinum for overall water splitting under the tested conditions.
4
The lithium-induced method preserves electrical interconnection among nanoparticles while producing large surface area and many catalytically active sites.
5
Ultra-small NiFeOx nanoparticles produced by this method act as active bifunctional electrocatalysts for both oxygen and hydrogen evolution in alkaline electrolyte.

Lithium-induced ultra-small (2–5 nm) transition metal oxide nanoparticles (specifically NiFeOx and other Li-converted Fe, Co, Ni and mixed oxide nanoparticles) used as electrocatalysts for water splitting

Bifunctional electrocatalytic activity and stability for overall water splitting (oxygen and hydrogen evolution) in alkaline electrolyte, including achieved current density, overpotential/voltage (10 mA cm⁻² at 1.51 V), durability (>200 h), and electrical interconnection/surface-area effects due to lithium-induced size reduction

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2015-06-23
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Po‐Chun Hsu
Yi Cui
Hyun‐Wook Lee
Yayuan Liu
Haotian Wang
Dingchang Lin
Yong Deng
Zhiyi Lu
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