Restructuring highly electron-deficient metal-metal oxides for boosting stability in acidic oxygen evolution reaction

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作者
Xinghui Liu
Shibo Xi
Hyunwoo Kim
Ashwani Kumar
Jinsun Lee
Jian Wang
Ngoc Quang Tran
Taehun Yang
Xiaodong Shao
Mengfang Liang
Min Gyu Kim
Hyoyoung Lee
机构
[1] Institute of Basic Science (IBS),Center for Integrated Nanostructure Physics (CINAP)
[2] Sungkyunkwan University (SKKU),Department of Chemistry
[3] Institute of Chemical and Engineering Sciences,Department of Energy Science
[4] A*STAR,Department of Chemistry, College of Science
[5] Sungkyunkwan University (SKKU),Beamline Research Division, Pohang Accelerator Laboratory (PAL)
[6] Seoul National University,Department of Biophysics
[7] Pohang University of Science and Technology,undefined
[8] Sungkyunkwan University (SKKU),undefined
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The poor catalyst stability in acidic oxidation evolution reaction (OER) has been a long-time issue. Herein, we introduce electron-deficient metal on semiconducting metal oxides-consisting of Ir (Rh, Au, Ru)-MoO3 embedded by graphitic carbon layers (IMO) using an electrospinning method. We systematically investigate IMO’s structure, electron transfer behaviors, and OER catalytic performance by combining experimental and theoretical studies. Remarkably, IMO with an electron-deficient metal surface (Irx+; x > 4) exhibit a low overpotential of only ~156 mV at 10 mA cm−2 and excellent durability in acidic media due to the high oxidation state of metal on MoO3. Furthermore, the proton dissociation pathway is suggested via surface oxygen serving as proton acceptors. This study suggests high stability with high catalytic performance in these materials by creating electron-deficient surfaces and provides a general, unique strategy for guiding the design of other metal-semiconductor nanocatalysts.
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