Zhang Hong-Jie, Shang Xue-Bin, Wang Xu-Ran, Zhang Chen-Xi, Wang Qing-Lun
Key Laboratory of Brine Chemical Engineering and Resource Eco-utilization, College of Chemical Engineering and Materials Science, Tianjin University of Science and Technology, Tianjin 300457, P. R. China.
Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry, Nankai University, Tianjin 300071, P. R. China.
J Phys Chem B. 2024 Apr 11;128(14):3499-3507. doi: 10.1021/acs.jpcb.4c00185. Epub 2024 Mar 28.
SCPEEK@MOF proton exchange membranes, where SCPEEK is sulfinyl chloride polyether ether ketone and MOF is a metal-organic framework, were prepared by doping Fe-MIL-101-NH into polymers. The amino group in the MOF and the -SOCl group in thionyl chloride polyether ether ketone cross-link to form a covalent bond through the Hinsberg reaction, and the prepared composite membrane has stronger stability than other electrostatic interactions and simple physical doping composite membranes. The formation of covalent bonds improves the water absorption of the composite membrane, which makes it easy for water molecules to form hydrogen bonds. Moreover, SPEEK as a proton conductive polymer and the synergy of MOFs improve the proton conductivity of composite membranes. The composite membranes were characterized by Fourier transform infrared spectroscopy, powder X-ray diffraction, scanning electron microscopy, and atomic force microscopy. The swelling rate, water absorption, mechanical stability, ion exchange capacity, and proton conductivity of the pure sulfonated polyether ether ketone (SPEEK) membrane were compared with those of the mechanically doped SPEEK/MOF membrane and the composite membrane SCPEEK@MOF doped with different ratios of Fe-MIL-101-NH, and all of the SCPEEK@MOF showed superior performance. When the Fe-MIL-101-NH loading rate of the composite membrane is 2%, the proton conductivity of the composite membrane can reach 0.202 S cm at 363 K and a 98% relative humidity, which is much higher than that of the SPEEK/MOF membrane obtained by simple physical doping under the same conditions.
通过将Fe-MIL-101-NH掺杂到聚合物中制备了SCPEEK@MOF质子交换膜,其中SCPEEK是亚硫酰氯聚醚醚酮,MOF是金属有机框架。MOF中的氨基与亚硫酰氯聚醚醚酮中的-SOCl基团通过欣斯堡反应交联形成共价键,所制备的复合膜比其他通过静电相互作用和简单物理掺杂的复合膜具有更强的稳定性。共价键的形成提高了复合膜的吸水性,这使得水分子易于形成氢键。此外,作为质子传导聚合物的SPEEK与MOFs的协同作用提高了复合膜的质子传导率。通过傅里叶变换红外光谱、粉末X射线衍射、扫描电子显微镜和原子力显微镜对复合膜进行了表征。将纯磺化聚醚醚酮(SPEEK)膜的溶胀率、吸水率、机械稳定性、离子交换容量和质子传导率与机械掺杂的SPEEK/MOF膜以及掺杂不同比例Fe-MIL-101-NH的复合膜SCPEEK@MOF进行了比较,所有SCPEEK@MOF均表现出优异的性能。当复合膜的Fe-MIL-101-NH负载率为2%时,复合膜在温度363 K和相对湿度98%条件下的质子传导率可达0.202 S cm,远高于在相同条件下通过简单物理掺杂得到的SPEEK/MOF膜。