材料科学
铱
电极
析氧
化学工程
分解水
电容
氧化物
多孔性
电化学
阳极
纳米颗粒
铂金
钛
拉曼光谱
可逆氢电极
钽
铂纳米粒子
阳极氧化
可重用性
密度泛函理论
电流密度
无机化学
纳米技术
图层(电子)
双层电容
标准氢电极
X射线光电子能谱
电极电位
原子层沉积
作者
Songhu Bi,Dawei Zhou,Jinghui Deng,Kui Xu,Peng Bee,Lin Xia
标识
DOI:10.1021/acsami.5c16088
摘要
Iridium oxide (IrO 2 ) electrodes suffer from their high costs caused by the high iridium loading, which severely hinder their large-scale application in the oxygen evolution reaction (OER). In this work, platinum nanoparticles (Pt NPs) are employed as a nanofiller layer on matrix porous titanium (MPT) to fabricate a porous IrO 2 electrode (IrO 2 @Pt/MPT). Despite its Ir loading being as low as 0.0126 mg Ir /cm 2, it exhibits good OER performance in both neutral and acidic solutions, achieving a potential of 1.9 V at 50 mA cm 2 (0.01 M Na 2 SO 4 ) and a mass activity of up to 25577.8 A/g Ir at 1.53 V (0.5 M H 2 SO 4 ). Density functional theory calculations and in situ Raman spectra reveal that its superior OER originates from the synergistic effect of IrO 2 and Pt. It suggests that the heterogeneous interface capacitance induces charge reconstruction on the IrO 2, which enhances the surface Ir–O covalency and ultimately reduces the rate-determining step energy barrier on the (101) plane. The electrode stability is evaluated in CO 2 electroreduction, demonstrating long-term stability and good reusability in three 100 h stability evaluations. IrO 2 @Pt/MPT shows a negligible voltage rise with an iridium loss of 3.97% in anodic corrosion and 4.76% in exfoliation. This work provides a potential strategy for designing low-iridium porous OER electrodes.
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