Gong Jiangli, Qi Qianglong, Wang Zhiyuan, Zhao Guangxin, Yuan Jianliang, Zhang Chengxu, Hu Jue
Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology, Kunming, China.
LuXi KuoBo Precious Metals Co. Ltd, Honghe, Yunnan, China.
Dalton Trans. 2025 Feb 11;54(7):2991-2999. doi: 10.1039/d4dt03348e.
During the oxygen evolution reaction (OER), metal-organic framework (MOF) catalysts undergo structural reorganization, a phenomenon that is still not fully comprehended. Additionally, designing MOFs that undergo structural reconstruction to produce highly active OER catalysts continues to pose significant challenges. Herein, a bimetallic MOF (CoNi-MOF) with carboxylate oxygen and pyridine nitrogen coordination has been synthesized and its reconstruction behavior has been analyzed. The CoNi-MOF electrocatalyst attains a current density of 10 mA cm with a minimal overpotential of just 250 mV, along with a Tafel slope of 91.57 mV dec, which is relatively low. After undergoing CV cycling tests, changes were observed in its catalytic activity, as well as in the microstructure and electrochemically active surface area, which are related to its activity. Importantly, Raman analysis indicates that during the electrocatalytic process, the MOFs undergo a transition to MOOH, signifying the occurrence of reconstruction. Notably, compared to monometallic MOFs, bimetallic MOFs undergo reconstruction at lower voltage and with a faster reconstruction rate. Further analysis has revealed that the electrochemical reconstruction rate of the Co-N/O coordination mode at the active center is higher than that of Ni-N/O, playing a crucial role in enhancing OER activity. This study underscores the significance of the reconstruction strategy in enhancing the activity of MOF catalysts, providing new insights for the development of high-activity materials.
在析氧反应(OER)过程中,金属有机框架(MOF)催化剂会发生结构重组,这一现象仍未得到充分理解。此外,设计能够进行结构重构以产生高活性OER催化剂的MOF仍然面临重大挑战。在此,合成了一种具有羧酸盐氧和吡啶氮配位的双金属MOF(CoNi-MOF),并分析了其重构行为。CoNi-MOF电催化剂在仅250 mV的最小过电位下达到10 mA cm的电流密度,塔菲尔斜率为91.57 mV dec,相对较低。经过循环伏安(CV)循环测试后,观察到其催化活性、微观结构和电化学活性表面积发生了变化,这些变化与活性相关。重要的是,拉曼分析表明,在电催化过程中,MOF会转变为MOOH,这表明发生了重构。值得注意的是,与单金属MOF相比,双金属MOF在较低电压下进行重构,且重构速率更快。进一步分析表明,活性中心处Co-N/O配位模式的电化学重构速率高于Ni-N/O,这在提高OER活性方面起着关键作用。本研究强调了重构策略在提高MOF催化剂活性方面的重要性,为高活性材料的开发提供了新的见解。