Zhu Liyu, Yang Hongbin, Xu Ting, Shen Feng, Si Chuanling
State Key Laboratory of Biobased Fiber Manufacturing Technology, Tianjin Key Laboratory of Pulp and Paper, Tianjin University of Science and Technology, 300457, Tianjin, People's Republic of China.
State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, 510640, Guangzhou, People's Republic of China.
Nanomicro Lett. 2024 Dec 11;17(1):87. doi: 10.1007/s40820-024-01558-3.
Proton-conducting materials have attracted considerable interest because of their extensive application in energy storage and conversion devices. Among them, metal-organic frameworks (MOFs) present tremendous development potential and possibilities for constructing novel advanced proton conductors due to their special advantages in crystallinity, designability, and porosity. In particular, several special design strategies for the structure of MOFs have opened new doors for the advancement of MOF proton conductors, such as charged network construction, ligand functionalization, metal-center manipulation, defective engineering, guest molecule incorporation, and pore-space manipulation. With the implementation of these strategies, proton-conducting MOFs have developed significantly and profoundly within the last decade. Therefore, in this review, we critically discuss and analyze the fundamental principles, design strategies, and implementation methods targeted at improving the proton conductivity of MOFs through representative examples. Besides, the structural features, the proton conduction mechanism and the behavior of MOFs are discussed thoroughly and meticulously. Future endeavors are also proposed to address the challenges of proton-conducting MOFs in practical research. We sincerely expect that this review will bring guidance and inspiration for the design of proton-conducting MOFs and further motivate the research enthusiasm for novel proton-conducting materials.
质子传导材料因其在能量存储和转换设备中的广泛应用而备受关注。其中,金属有机框架材料(MOFs)由于其在结晶性、可设计性和孔隙率方面的特殊优势,在构建新型先进质子导体方面展现出巨大的发展潜力和可能性。特别是,针对MOFs结构的几种特殊设计策略为MOF质子导体的发展开辟了新途径,如带电网络构建、配体功能化、金属中心调控、缺陷工程、客体分子引入和孔空间调控。随着这些策略的实施,质子传导MOFs在过去十年中取得了显著而深入的发展。因此,在本综述中,我们通过代表性实例批判性地讨论和分析了旨在提高MOFs质子传导率的基本原理、设计策略和实施方法。此外,还对MOFs的结构特征、质子传导机制和行为进行了全面细致的讨论。针对质子传导MOFs在实际研究中面临的挑战,我们也提出了未来的努力方向。我们真诚地希望本综述能为质子传导MOFs的设计带来指导和启发,并进一步激发对新型质子传导材料的研究热情。