Yang Dan, Chen Xu-Yong, Cao Li-Hui
Shaanxi Key Laboratory of Chemical Additives for Industry, College of Chemistry and Chemical Engineering, Shaanxi University of Science and Technology, Xi' an, 710021, China.
Chem Asian J. 2024 Dec 16;19(24):e202400870. doi: 10.1002/asia.202400870. Epub 2024 Nov 7.
Hydrogen-bonded organic frameworks (HOFs) are crystalline materials assembled by intermolecular hydrogen-bonding interactions, and their hydrogen-bonding structures are effective pathways for proton transport. Herein, we synthesize iHOF-45 using 4,4'-diaminodiphenylmethane and 1,3,6,8-pyrenetetrasulfonicacid sodium salt with 2D hydrogen-bonding networks. The stability of ionic HOFs (iHOFs) can be enhanced by introducing ionic bonds in addition to hydrogen-bonding forces. Thermal analyses demonstrated that iHOF-45 exhibited excellent thermal stability up to 332 °C. The proton conductivity of iHOF-45 was evaluated, demonstrating a notable increase with rising temperature and RH. At 100 °C and 98 % RH, the conductivity reached 5.25×10 S cm. The activation energy (E) of iHOF-45 was calculated to be 0.281 eV for 98 % RH, and the proton conduction was attributed to the Grotthuss mechanism, whereby the protons were transported in 2D hydrogen-bonding networks. Moreover, iHOF-45 was doped into SPEEK to prepare composite membranes, the proton conductivity of the 15 % iHOF-45/SPEEK membrane reached 9.52×10 S cm at 80 °C and 98 % RH, representing a 45.1 % increase over that of the SPEEK. This suggests that doping enhances the proton conductivity of SPEEK and providing a reference for the development of high proton conductivity materials.
氢键有机框架(HOFs)是通过分子间氢键相互作用组装而成的晶体材料,其氢键结构是质子传输的有效途径。在此,我们使用4,4'-二氨基二苯甲烷和1,3,6,8-芘四磺酸钠盐合成了具有二维氢键网络的iHOF-45。除了氢键作用力外,通过引入离子键可以提高离子型HOFs(iHOFs)的稳定性。热分析表明,iHOF-45在高达332°C时表现出优异的热稳定性。对iHOF-45的质子传导率进行了评估,结果表明其随温度和相对湿度(RH)的升高而显著增加。在100°C和98%RH条件下,传导率达到5.25×10 S cm。计算得出iHOF-45在98%RH时的活化能(E)为0.281 eV,质子传导归因于Grotthuss机制,即质子在二维氢键网络中传输。此外,将iHOF-45掺杂到磺化聚醚醚酮(SPEEK)中制备复合膜,在80°C和98%RH条件下,15% iHOF-45/SPEEK膜的质子传导率达到9.52×10 S cm,比SPEEK提高了45.1%。这表明掺杂提高了SPEEK的质子传导率,并为开发高质子传导率材料提供了参考。