Caikang Wang, Xiangrui Wu, Hao Sun, Zhe Xu, Chang Xu, Xuan Wang, Meng Li, Yu Wang, Yawen Tang, Jianchun Jiang, Kang Sun and Gengtao Fu
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Taking Sm as a RE model, the incorporation of Sm into RuO<small><sub>2</sub></small> induces the formation of an asymmetric Sm–O–Ru unit with a unique f–p–d electron ladder and an adjacent bridged oxygen vacancy (O<small><sub>v</sub></small>), which compensates for electron loss in Ru species and creates vacancy-localized electronic perturbation at the bridged O<small><sub>v</sub></small> due to the delocalization of 4f electrons. The optimized Sm–RuO<small><sub>2−<em>x</em></sub></small>–O<small><sub>v</sub></small> catalyst requires an overpotential of only 217 mV at 10 mA cm<small><sup>−2</sup></small> and operates steadily for over 300 h with a negligible degradation rate of ∼27 μV h<small><sup>−1</sup></small> in an acidic medium, outperforming Sm-free RuO<small><sub>2</sub></small> and most other reported Ru-based catalysts. <em>In situ</em> characterization and theoretical analysis demonstrate that the constructed asymmetric Sm–O–Ru unit prevents the over-oxidation of Ru species at high voltages and accelerates the *OH deprotonation at the surface oxygen vacancy during the OER process, leading to high OER activity and stability. The potential role of asymmetric RE–O–Ru units with bridged O<small><sub>v</sub></small> is also observed in other RE-doped RuO<small><sub>2</sub></small> systems (<em>e.g.</em>, Nd and Lu), where all catalysts exhibit enhanced deprotonation of oxygenated intermediates. 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引用次数: 0
摘要
质子交换膜水电解(PEMWE)是一种有前途的可持续制氢技术。然而,在酸性析氧反应(OER)中,氧化中间体在RuO2上的缓慢去质子化限制了其长期稳定性。本文提出了一种创新而有效的稀土(RE)介导策略,通过构建不对称RE- o - ru结构单元来加速OER中间体在RuO₂基体上的去质子化。以Sm为RE模型,Sm加入到RuO2中诱导形成不对称Sm- o -Ru单元,该单元具有独特的f-p-d电子阶梯和相邻的桥式氧空位(Ov),弥补了Ru中电子的损失,并由于4f电子的离域而在桥式Ov上产生了空位局域电子扰动。优化后的Sm-RuO2-x-Ov催化剂在10 mA cm-2下的过电位仅为217 mV,在酸性介质中稳定运行300 h以上,降解率为~27 μV h-1,优于无sm的RuO2和大多数其他钌基催化剂。原位表征和理论分析表明,构建的不对称Sm-O-Ru单元可以防止Ru在高压下过度氧化,并加速OER过程中表面氧空位处的*OH去质子化,从而提高OER活性和稳定性。桥接Ov的不对称RE-O-Ru单元的潜在作用也在其他re掺杂的RuO2体系中被观察到(例如,Nd和Lu),其中所有催化剂都表现出增强的氧化中间体去质子化。我们相信本研究提出的re介导策略为设计高活性和稳定的贵金属基酸性水氧化催化剂提供了新的途径。
An asymmetric RE–O–Ru unit with bridged oxygen vacancies accelerates deprotonation during acidic water oxidation†
Proton exchange membrane water electrolysis (PEMWE) is a promising technology for sustainable hydrogen production; however, the slow deprotonation of oxo-intermediates on RuO2 during the acidic oxygen evolution reaction (OER) limits its long-term stability. Herein, we propose an innovative and effective rare-earth (RE)-mediated strategy to accelerate the deprotonation of OER intermediates on the RuO2 matrix by constructing an asymmetric RE–O–Ru structural unit. Taking Sm as a RE model, the incorporation of Sm into RuO2 induces the formation of an asymmetric Sm–O–Ru unit with a unique f–p–d electron ladder and an adjacent bridged oxygen vacancy (Ov), which compensates for electron loss in Ru species and creates vacancy-localized electronic perturbation at the bridged Ov due to the delocalization of 4f electrons. The optimized Sm–RuO2−x–Ov catalyst requires an overpotential of only 217 mV at 10 mA cm−2 and operates steadily for over 300 h with a negligible degradation rate of ∼27 μV h−1 in an acidic medium, outperforming Sm-free RuO2 and most other reported Ru-based catalysts. In situ characterization and theoretical analysis demonstrate that the constructed asymmetric Sm–O–Ru unit prevents the over-oxidation of Ru species at high voltages and accelerates the *OH deprotonation at the surface oxygen vacancy during the OER process, leading to high OER activity and stability. The potential role of asymmetric RE–O–Ru units with bridged Ov is also observed in other RE-doped RuO2 systems (e.g., Nd and Lu), where all catalysts exhibit enhanced deprotonation of oxygenated intermediates. We believe that the RE-mediated strategy presented in this work provides a new pathway for designing highly active and stable noble-metal-based catalysts for acidic water oxidation.
期刊介绍:
Energy & Environmental Science, a peer-reviewed scientific journal, publishes original research and review articles covering interdisciplinary topics in the (bio)chemical and (bio)physical sciences, as well as chemical engineering disciplines. Published monthly by the Royal Society of Chemistry (RSC), a not-for-profit publisher, Energy & Environmental Science is recognized as a leading journal. It boasts an impressive impact factor of 8.500 as of 2009, ranking 8th among 140 journals in the category "Chemistry, Multidisciplinary," second among 71 journals in "Energy & Fuels," second among 128 journals in "Engineering, Chemical," and first among 181 scientific journals in "Environmental Sciences."
Energy & Environmental Science publishes various types of articles, including Research Papers (original scientific work), Review Articles, Perspectives, and Minireviews (feature review-type articles of broad interest), Communications (original scientific work of an urgent nature), Opinions (personal, often speculative viewpoints or hypotheses on current topics), and Analysis Articles (in-depth examination of energy-related issues).