Ye Changxuan, Yao Shuang, Xiao Xiong, Zhu Pei, Zhang Wen, Yang Xian, An Changhua
Tianjin Key Laboratory of Organic Solar Cells and Photochemical Conversion, School of Chemistry and Chemical Engineering, Tianjin University of Technology, Tianjin 300384, China.
ACS Nano. 2025 Jul 29;19(29):26782-26790. doi: 10.1021/acsnano.5c06948. Epub 2025 Jul 15.
Ru-based clusters represent a class of promising electrocatalysts for pH-universal hydrogen evolution reaction (HER), yet their practical application is hindered by nanoparticle aggregation and strong oxygen affinity, leading to compromising activity and stability. This study proposes a strategy by integrating strong metal-support interactions with a built-in electric field (BIEF), in which the electrostatic interaction facilitates the design of a class of heterostructure catalysts comprising RuO clusters and MoO on Ni(OH) (RuO/MoO-Ni(OH)). Detailed characterizations reveal that the engineered BIEF induces charge redistribution, leading to the enhanced electron density at Ru active sites. This electronic modulation effectively weakens the adsorption of the OH group while substantially boosting catalytic activity and stability. The synthesized RuO/MoO-Ni(OH) achieves low overpotentials of 64, 150, and 83 mV at 100 mA cm in 1.0 M KOH, 1.0 M phosphate-buffered saline (PBS), and 0.5 M HSO, respectively. Furthermore, it exhibits robust stability for 150 h at 100 mA cm in an alkaline solution. In an anion exchange membrane water electrolyzer, the catalyst requires only 1.76 V to attain 0.5 A cm. This work establishes a pioneering pathway for designing efficient electrocatalysts toward the production of clean energy carriers.
钌基簇合物是一类有前景的用于pH通用析氢反应(HER)的电催化剂,然而它们的实际应用受到纳米颗粒聚集和强氧亲和力的阻碍,导致活性和稳定性受损。本研究提出了一种通过将强金属-载体相互作用与内置电场(BIEF)相结合的策略,其中静电相互作用有助于设计一类由RuO簇和Ni(OH)上的MoO组成的异质结构催化剂(RuO/MoO-Ni(OH))。详细表征表明,设计的BIEF诱导电荷重新分布,导致Ru活性位点处的电子密度增强。这种电子调制有效地减弱了OH基团的吸附,同时大幅提高了催化活性和稳定性。合成的RuO/MoO-Ni(OH)在1.0 M KOH、1.0 M磷酸盐缓冲盐水(PBS)和0.5 M HSO中,在100 mA cm时分别实现了64、150和83 mV的低过电位。此外,它在碱性溶液中于100 mA cm下表现出150 h的稳健稳定性。在阴离子交换膜水电解槽中,该催化剂仅需1.76 V即可达到0.5 A cm。这项工作为设计用于生产清洁能源载体的高效电催化剂开辟了一条开创性的途径。