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Colossal Dielectric Perovskites of Calcium Copper Titanate(CaCu3Ti4O12) with Low-Iridium Dopants Enables Ultrahigh Mass Activity for the Acidic Oxygen Evolution Reactionopen access

Authors
Thao, Nguyen Thi ThuKim, KwangsooRyu, Jeong HoAn, Byeong-SeonNayak, Arpan KumarJang, Jin UkNa, Kyeong-HanChoi, Won-YoulAli, GhulamChae, Keun HwaAkbar, MuhammadChung, Kyung YoonCho, Hyun-SeokPark, Jong HyeokKim, Byung-HyunHan, HyukSu
Issue Date
Jun-2023
Publisher
Wiley-VCH Verlag
Keywords
calcium copper titanate; electrocatalysts; low iridium; oxygen evolution reaction
Citation
Advanced Science, v.10, no.16, pp 1 - 13
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
Advanced Science
Volume
10
Number
16
Start Page
1
End Page
13
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/115230
DOI
10.1002/advs.202207695
ISSN
2198-3844
Abstract
Oxygen evolution reaction (OER) under acidic conditions becomes of significant importance for the practical use of a proton exchange membrane (PEM) water electrolyzer. In particular, maximizing the mass activity of iridium (Ir) is one of the maiden issues. Herein, the authors discover that the Ir-doped calcium copper titanate (CaCu₃Ti₄O₁₂, CCTO) perovskite exhibits ultrahigh mass activity up to 1000 A gIr−1 for the acidic OER, which is 66 times higher than that of the benchmark catalyst, IrO2. By substituting Ti with Ir in CCTO, metal-oxygen (M-O) covalency can be significantly increased leading to the reduced energy barrier for charge transfer. Further, highly polarizable CCTO perovskite referred to as “colossal dielectric”, possesses low defect formation energy for oxygen vacancy inducing a high number of oxygen vacancies in Ir-doped CCTO (Ir-CCTO). Electron transfer occurs from the oxygen vacancies and Ti to the substituted Ir consequentially resulting in the electron-rich Ir and -deficient Ti sites. Thus, favorable adsorptions of oxygen intermediates can take place at Ti sites while the Ir ensures efficient charge supplies during OER, taking a top position of the volcano plot. Simultaneously, the introduced Ir dopants form nanoclusters at the surface of Ir-CCTO, which can boost catalytic activity for the acidic OER. © 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
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ERICA 공학대학 (ERICA 에너지바이오학과)
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