Ribeiro Catarina, Tan Bowen, Figueira Flávio, Mendes Ricardo F, Calbo Joaquín, Valente Gonçalo, Escamilla Paula, Paz Filipe A Almeida, Rocha João, Dincă Mircea, Souto Manuel
Department of Chemistry, CICECO-Aveiro Institute of Materials, University of Aveiro, 3810-393 Aveiro, Portugal.
Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts02139, United States.
J Am Chem Soc. 2025 Jan 8;147(1):63-68. doi: 10.1021/jacs.4c13792. Epub 2024 Dec 19.
Mixed ionic-electronic conductors have great potential as materials for energy storage applications. However, despite their promising properties, only a handful of metal-organic frameworks (MOFs) provide efficient pathways for both ion and electron transport. This work reports a proton-electron dual-conductive MOF based on tetrathiafulvalene(TTF)-phosphonate linkers and lanthanum ions. The formation of regular, partially oxidized TTF stacks with short S···S interactions facilitates electron transport via a hopping mechanism, reporting a room-temperature conductivity of 7.2 × 10 S cm. Additionally, the material exhibits a proton conductivity of 4.9 × 10 S cm at 95% relative humidity conditions due to the presence of free -POH groups, enabling efficient proton transport pathways. These results demonstrate the potential of integrating electroactive building blocks along with phosphonate groups toward the development of mixed ionic-electronic conductors.
混合离子-电子导体作为储能应用材料具有巨大潜力。然而,尽管它们具有令人期待的性能,但只有少数金属有机框架(MOF)能为离子和电子传输提供有效途径。这项工作报道了一种基于四硫富瓦烯(TTF)-膦酸盐连接体和镧离子的质子-电子双导电MOF。具有短S···S相互作用的规则、部分氧化的TTF堆栈的形成通过跳跃机制促进了电子传输,室温电导率为7.2×10 S cm。此外,由于存在游离-POH基团,该材料在95%相对湿度条件下表现出4.9×10 S cm的质子传导率,从而实现了高效的质子传输途径。这些结果证明了将电活性结构单元与膦酸盐基团相结合对于开发混合离子-电子导体的潜力。