Shahbazi Farahani Fatemeh, Rahmanifar Mohammad S, Noori Abolhassan, El-Kady Maher F, Hassani Nasim, Neek-Amal Mehdi, Kaner Richard B, Mousavi Mir F
Department of Chemistry, Faculty of Basic Sciences, Tarbiat Modares University, Tehran 14117-13116, P.O. Box 14115-175, Iran.
Faculty of Basic Sciences, Shahed University, Tehran 3319118-651, Iran.
J Am Chem Soc. 2022 Mar 2;144(8):3411-3428. doi: 10.1021/jacs.1c10963. Epub 2022 Feb 15.
The need for enhanced energy storage and improved catalysts has led researchers to explore advanced functional materials for sustainable energy production and storage. Herein, we demonstrate a reductive electrosynthesis approach to prepare a layer-by-layer (LbL) assembled trimetallic Fe-Co-Ni metal-organic framework (MOF) in which the metal cations within each layer or at the interface of the two layers are linked to one another by bridging 2-amino-1,4-benzenedicarboxylic acid linkers. Tailoring catalytically active sites in an LbL fashion affords a highly porous material that exhibits excellent trifunctional electrocatalytic activities toward the hydrogen evolution reaction (η = 116 mV), oxygen evolution reaction (η = 254 mV), as well as oxygen reduction reaction (half-wave potential = 0.75 V vs reference hydrogen electrode) in alkaline solutions. The dispersion-corrected density functional theory calculations suggest that the prominent catalytic activity of the LbL MOF toward the HER, OER, and ORR is due to the initial negative adsorption energy of water on the metal nodes and the elongated O-H bond length of the HO molecule. The Fe-Co-Ni MOF-based Zn-air battery exhibits a remarkable energy storage performance and excellent cycling stability of over 700 cycles that outperform the commercial noble metal benchmarks. When assembled in an asymmetric device configuration, the activated carbon||Fe-Co-Ni MOF supercapacitor provides a superb specific energy and a power of up to 56.2 W h kg and 42.2 kW kg, respectively. This work offers not only a novel approach to prepare an LbL assembled multimetallic MOF but also provides a benchmark for a multifunctional electrocatalyst for water splitting and Zn-air batteries.
对增强能量存储和改进催化剂的需求促使研究人员探索用于可持续能源生产和存储的先进功能材料。在此,我们展示了一种还原电合成方法,用于制备逐层(LbL)组装的三金属铁 - 钴 - 镍金属有机框架(MOF),其中每层内或两层界面处的金属阳离子通过桥连的2 - 氨基 - 1,4 - 苯二甲酸连接体相互连接。以LbL方式定制催化活性位点可得到一种高度多孔的材料,该材料在碱性溶液中对析氢反应(过电位η = 116 mV)、析氧反应(过电位η = 254 mV)以及氧还原反应(相对于参比氢电极的半波电位 = 0.75 V)表现出优异的三功能电催化活性。色散校正密度泛函理论计算表明,LbL MOF对HER、OER和ORR的显著催化活性归因于水在金属节点上的初始负吸附能以及HO分子伸长的O - H键长度。基于Fe - Co - Ni MOF的锌空气电池表现出卓越的能量存储性能和超过700次循环的出色循环稳定性,优于商业贵金属基准。当以不对称器件配置组装时,活性炭||Fe - Co - Ni MOF超级电容器分别提供高达56.2 W h kg和42.2 kW kg的优异比能量和功率。这项工作不仅提供了一种制备LbL组装多金属MOF的新方法,还为用于水分解和锌空气电池的多功能电催化剂提供了一个基准。