Ding Hui, Su Caijie, Wu Jiabao, Lv Haifeng, Tan Yi, Tai Xiaolin, Wang Wenjie, Zhou Tianpei, Lin Yue, Chu Wangsheng, Wu Xiaojun, Xie Yi, Wu Changzheng
Key Laboratory of Precision and Intelligent Chemistry, CAS Center for Excellence in Nanoscience, and CAS Key Laboratory of Mechanical Behavior and Design of Materials, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), University of Science and Technology of China, Hefei, Anhui Province 230026, P. R. China.
School of Chemistry and Materials Sciences, CAS Key Laboratory of Materials for Energy Conversion, CAS Center for Excellence in Nanoscience, University of Science and Technology of China, Hefei, Anhui Province 230026, P. R. China.
J Am Chem Soc. 2024 Mar 20;146(11):7858-7867. doi: 10.1021/jacs.4c01379. Epub 2024 Mar 8.
Developing efficient bifunctional materials is highly desirable for overall proton membrane water splitting. However, the design of iridium materials with high overall acidic water splitting activity and durability, as well as an in-depth understanding of the catalytic mechanism, is challenging. Herein, we successfully developed subnanoporous IrNi ultrathin nanocages with high crystallinity as bifunctional materials for acidic water splitting. The subnanoporous shell enables IrNi NCs optimized exposure of active sites. Importantly, the nickel incorporation contributes to the favorable thermodynamics of the electrocatalysis of the OER after surface reconstruction and optimized hydrogen adsorption free energy in HER electrocatalysis, which induce enhanced intrinsic activity of the acidic oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). Together, the IrNi nanocages achieve 3.72 A/mg and 4.47 A/mg OER and HER mass activity, which are 18.8 times and 3.3 times higher than that of commercial IrO and Pt, respectively. In addition, their highly crystalline identity ensures a robust nanostructure, enabling good catalytic durability during the oxygen evolution reaction after surface oxidation. This work provides a new revenue toward the structural design and insightful understanding of metal alloy catalytic mechanisms for the bifunctional acidic water splitting electrocatalysis.
开发高效的双功能材料对于整体质子膜水分解非常重要。然而,设计具有高整体酸性水分解活性和耐久性的铱材料,以及深入了解其催化机制,具有挑战性。在此,我们成功开发了具有高结晶度的亚纳米多孔IrNi超薄纳米笼作为酸性水分解的双功能材料。亚纳米多孔壳使IrNi纳米笼能够优化活性位点的暴露。重要的是,镍的掺入有助于表面重构后OER电催化的有利热力学以及HER电催化中优化的氢吸附自由能,这导致酸性析氧反应(OER)和析氢反应(HER)的本征活性增强。总之,IrNi纳米笼实现了3.72 A/mg和4.47 A/mg的OER和HER质量活性,分别比商业IrO和Pt高18.8倍和3.3倍。此外,它们高度结晶的特性确保了坚固的纳米结构,使其在表面氧化后的析氧反应中具有良好的催化耐久性。这项工作为双功能酸性水分解电催化的金属合金催化机制的结构设计和深入理解提供了新的思路。