Dongling Xie, Jianan Wang, Bo Huang, Yiyi Yang, Dunmin Lin, Chenggang Xu and Fengyu Xie
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引用次数: 0
Abstract
Rational design of viable routes to develop affordable and efficient oxygen evolution reaction (OER) catalysts is essential for advancing electrochemical water splitting, yet significant challenges remain, particularly in seawater. Here, we propose a ligand defect engineering strategy to modify the electronic structure of NH2-MIL-88B(Fe) using a monodentate ligand (acetic acid, AcOH), inducing ligand vacancies in NH2-MIL-88B(Fe) for oxygen evolution in an alkaline seawater electrolyte, thereby improving the performance of the electrocatalysts. The resulting defective MOFs (denoted as NH2-MIL-88B(Fe)-x) exhibited exceptionally high catalytic activity for OER, requiring low overpotentials of 313 and 329 mV at a current density of 100 mA cm−2 in 1 M KOH and simulated seawater (1 M KOH + 0.5 M NaCl) solutions, respectively. Experimental analyses revealed that the introduction of AcOH can modulate the d-band center of active sites in NH2-MIL-88B(Fe)-x and play a critical role in alleviating chloride ion (Cl−) corrosion, thereby enhancing catalytic stability in seawater. When directly used as an OER catalyst in an alkaline electrolyte, wind and solar power were harnessed to operate the NH2-MIL-88B(Fe)-x || Pt/C configuration to drive the electrolytic water reaction. Thus, the ligand defect strategy can be employed to design and prepare high-performance OER electrocatalysts, particularly for generating H2 through water electrolysis powered by renewable energy sources.
合理设计可行的路线来开发经济高效的析氧反应(OER)催化剂对于推进电化学水分解至关重要,但仍存在重大挑战,特别是在海水中。本文提出了一种配体缺陷工程策略,利用单齿配体(乙酸、AcOH)修饰NH2-MIL-88B(Fe)的电子结构,在碱性海水电解质中诱导NH2-MIL-88B(Fe)的配体空位进行析氧,从而提高电催化剂的性能。所得到的缺陷mof(表示为NH2-MIL-88B(Fe)-x)对OER表现出异常高的催化活性,在1 M KOH和模拟海水(1 M KOH + 0.5 M NaCl)溶液中,电流密度为100 mA cm - 2时,分别需要低过电位313和329 mV。实验分析表明,AcOH的引入可以调节NH2-MIL-88B(Fe)-x活性位点的d波段中心,对缓解氯离子(Cl−)腐蚀起关键作用,从而提高催化在海水中的稳定性。当直接用作碱性电解质中的OER催化剂时,利用风能和太阳能驱动NH2-MIL-88B(Fe)-x || Pt/C结构来驱动电解水反应。因此,配体缺陷策略可用于设计和制备高性能OER电催化剂,特别是可再生能源水电解制氢。