Wang Hongfei, Zhao Yujie, Shao Zhichao, Xu Wenjuan, Wu Qiong, Ding Xiaolin, Hou Hongwei
The College of Chemistry and Green Catalysis Center, Zhengzhou University, Zhengzhou, Henan 450001, P. R. China.
Center for Advanced Materials Research, Zhongyuan University of Technology, Zhengzhou, Henan 450007, P. R. China.
ACS Appl Mater Interfaces. 2021 Feb 17;13(6):7485-7497. doi: 10.1021/acsami.0c21840. Epub 2021 Feb 5.
It is of great significance to develop creative proton exchange membrane materials for proton exchange membrane fuel cells (PEMFCs). The strategy of doping metal-organic frameworks (MOFs) with guest molecules into the Nafion matrix is adopted to improve the electrochemical performance of Nafion hybrid membranes. Various and abundant hydrogen bonds can make a tremendous contribution to the proton conduction of hybrid membranes. In this work, we used high proton-conducting Zn-MOFs with the characteristics of host-guest collaborative hydrogen bonds as the filler to prepare Zn-MOF/Nafion hybrid membranes. Alternating current (AC) impedance tests show that when the doping amount of Zn-MOF is 5%, the proton conductivity reaches 7.29 × 10 S·cm, being 1.87 times that of the pure Nafion membrane at 58% relative humidity (RH) and 80 °C. In an attempt to prove the promotion effect of guest NH on proton conductivity of Nafion hybrid membranes, Zn-MOF-NH was filled into the Nafion matrix. Under the same conditions, its proton conductivity reaches the maximum value of 2.13 × 10 S·cm, which is 5.47 times that of the pure Nafion membrane. Zn-MOF-NH/Nafion-5 was used to fabricate a proton exchange membrane for application in H/O fuel cells. The maximum power density of 212 mW cm and a current density of 630 mA cm reveal a respectable single cell performance. This study provides a promising method for optimizing the structure of MOF proton conductors and inspires the preparation of high-performance Nafion hybrid membranes.
开发用于质子交换膜燃料电池(PEMFC)的新型质子交换膜材料具有重要意义。采用将客体分子掺杂到Nafion基体中的金属有机框架(MOF)策略来提高Nafion复合膜的电化学性能。各种丰富的氢键可为复合膜的质子传导做出巨大贡献。在这项工作中,我们使用具有主客体协同氢键特征的高质子传导性Zn-MOF作为填料来制备Zn-MOF/Nafion复合膜。交流(AC)阻抗测试表明,当Zn-MOF的掺杂量为5%时,在58%相对湿度(RH)和80°C条件下,质子电导率达到7.29×10 S·cm,是纯Nafion膜的1.87倍。为了证明客体NH对Nafion复合膜质子传导率的促进作用,将Zn-MOF-NH填充到Nafion基体中。在相同条件下,其质子传导率达到最大值2.13×10 S·cm,是纯Nafion膜的5.47倍。Zn-MOF-NH/Nafion-5被用于制备应用于H/O燃料电池的质子交换膜。212 mW cm的最大功率密度和630 mA cm的电流密度显示出可观的单电池性能。本研究为优化MOF质子导体结构提供了一种有前景的方法,并为制备高性能Nafion复合膜提供了思路。