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Fe-facilitated dynamic active-site generation on spinel CoAl2O4 with self-termination of surface reconstruction for water oxidation
by
Gan, Chee Lip
, Grimaud, Alexis
, Li, Hui
, Xu, Zhichuan J
, Du, Yonghua
, Zeng, Lin
, Sun, Shengnan
, Xi, Shibo
, Scherer, Günther G
, Wang, Haijiang
, Bo, Chen
, Song, Jiajia
, Sasangka, Wardhana Aji
, Wu, Tianze
, Liao, Hanbin
in
Chemical Sciences
2019
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Fe-facilitated dynamic active-site generation on spinel CoAl2O4 with self-termination of surface reconstruction for water oxidation
by
Gan, Chee Lip
, Grimaud, Alexis
, Li, Hui
, Xu, Zhichuan J
, Du, Yonghua
, Zeng, Lin
, Sun, Shengnan
, Xi, Shibo
, Scherer, Günther G
, Wang, Haijiang
, Bo, Chen
, Song, Jiajia
, Sasangka, Wardhana Aji
, Wu, Tianze
, Liao, Hanbin
in
Chemical Sciences
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
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Fe-facilitated dynamic active-site generation on spinel CoAl2O4 with self-termination of surface reconstruction for water oxidation
by
Gan, Chee Lip
, Grimaud, Alexis
, Li, Hui
, Xu, Zhichuan J
, Du, Yonghua
, Zeng, Lin
, Sun, Shengnan
, Xi, Shibo
, Scherer, Günther G
, Wang, Haijiang
, Bo, Chen
, Song, Jiajia
, Sasangka, Wardhana Aji
, Wu, Tianze
, Liao, Hanbin
in
Chemical Sciences
2019
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Fe-facilitated dynamic active-site generation on spinel CoAl2O4 with self-termination of surface reconstruction for water oxidation
Journal Article
Fe-facilitated dynamic active-site generation on spinel CoAl2O4 with self-termination of surface reconstruction for water oxidation
2019
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Overview
The development of efficient and low-cost electrocatalysts for the oxygen evolution reaction (OER) is critical for improving the efficiency of water electrolysis. Here, we report a strategy using Fe substitution to enable the inactive spinel CoAl2O4 to become highly active and superior to the benchmark IrO2. The Fe substitution is revealed to facilitate surface reconstruction into active Co oxyhydroxides under OER conditions. It also activates deprotonation on the reconstructed oxyhydroxide to induce negatively charged oxygen as an active site, thus significantly enhancing the OER activity of CoAl2O4. Furthermore, it promotes the pre-oxidation of Co and introduces great structural flexibility due to the uplift of the oxygen 2p levels. This results in the accumulation of surface oxygen vacancies along with lattice oxygen oxidation that terminates as Al3+ leaches, preventing further reconstruction. We showcase a promising way to achieve tunable electrochemical reconstruction by optimizing the electronic structure for low-cost and robust spinel oxide OER catalysts.
Publisher
Nature Publishing Group
Subject
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