Tiwari Anand P, Chandra Priyanshu, Rahman Md Saifur, Mirica Katherine A, Scheideler William J
Thayer School of Engineering, Dartmouth College, Hanover, NH 03755, USA.
Department of Chemistry, Burke Laboratory, Dartmouth College, Hanover, New Hampshire 03755, USA.
Nanoscale. 2025 May 2;17(17):11028-11036. doi: 10.1039/d5nr00550g.
Metal-organic frameworks (MOFs) are promising electrocatalysts due to their large surface areas and abundant metal sites, but their efficacy is limited by poor exposure of active metal atoms to the electrolyte. To address this issue, we report an innovative approach that integrates a conductive layered MXene (TiCT) with a 2-dimensional (2D) Ni(2,3,6,7,10,11-hexaiminotriphenylene)-MOF through synthesis of the MOF on the MXene, maximizing the accessible exposure of active sites for electrocatalytic hydrogen evolution reaction (HER) activity. XPS analysis confirms that the MOF is chemically bonded with the MXene layers, while SEM analysis shows complete overlapping, intercalation, and surface growth of the MOF on the MXene layers. The optimized chemically bonded MOF on MXene exhibits superior electrocatalytic activity, with an overpotential of 180 mV in alkaline media-four times better than that of the pristine MOF-and an overpotential of 240 mV in acidic media, three times better than that of the pristine MOF. The enhanced electrocatalytic activity is attributed to the bond formation between Ti atoms from the MXene and N atoms from the MOF, which facilitates charge transfer and improves both the kinetics and active electrocatalytic area for the HER. This method offers a simple, pioneering approach to fabricate noble metal-free, nanostructured electrocatalysts, enhancing water electrolysis efficiency and extending applicability to other conductive MOFs.
金属有机框架材料(MOFs)因其较大的表面积和丰富的金属位点而有望成为电催化剂,但其功效受到活性金属原子与电解质接触不良的限制。为了解决这个问题,我们报告了一种创新方法,即通过在MXene上合成MOF,将导电层状MXene(TiCT)与二维(2D)镍(2,3,6,7,10,11-六亚氨基三亚苯)-MOF集成,最大限度地提高活性位点对电催化析氢反应(HER)活性的可及暴露。XPS分析证实MOF与MXene层化学键合,而SEM分析表明MOF在MXene层上完全重叠、插层和表面生长。在MXene上优化的化学键合MOF表现出优异的电催化活性,在碱性介质中的过电位为180 mV,是原始MOF的四倍,在酸性介质中的过电位为240 mV,是原始MOF的三倍。电催化活性的增强归因于MXene中的Ti原子与MOF中的N原子之间形成的键,这促进了电荷转移,并改善了HER的动力学和活性电催化面积。该方法提供了一种简单、开创性的方法来制备无贵金属的纳米结构电催化剂,提高水电解效率并将适用性扩展到其他导电MOF。