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磺化杂化聚芳醚酮膜中氨基-磺酸双官能化金属有机骨架的引入对直接甲醇燃料电池增强质子传导性能的影响。

Enhanced Proton Conductivity of Sulfonated Hybrid Poly(arylene ether ketone) Membranes by Incorporating an Amino-Sulfo Bifunctionalized Metal-Organic Framework for Direct Methanol Fuel Cells.

出版信息

ACS Appl Mater Interfaces. 2018 Mar 7;10(9):7963-7973. doi: 10.1021/acsami.7b17299. Epub 2018 Feb 23.

DOI:10.1021/acsami.7b17299
PMID:29439561
Abstract

Novel side-chain-type sulfonated poly(arylene ether ketone) (SNF-PAEK) containing naphthalene and fluorine moieties on the main chain was prepared in this work, and a new amino-sulfo-bifunctionalized metal-organic framework (MNS, short for MIL-101-NH-SOH) was synthesized via a hydrothermal technology and postmodification. Then, MNS was incorporated into a SNF-PAEK matrix as an inorganic nanofiller to prepare a series of organic-inorganic hybrid membranes (MNS@SNF-PAEK-XX). The mechanical property, methanol resistance, electrochemistry, and other properties of MNS@SNF-PAEK-XX hybrid membranes were characterized in detail. We found that the mechanical strength and methanol resistances of these hybrid membranes were improved by the formation of an ionic cross-linking structure between -NH of MNS and -SOH on the side chain of SNF-PAEK. Particularly, the proton conductivity of these hybrid membranes increased obviously after the addition of MNS. MNS@SNF-PAEK-3% exhibited the proton conductivity of 0.192 S·cm, which was much higher than those of the pristine membrane (0.145 S·cm) and recast Nafion (0.134 S·cm) at 80 °C. This result indicated that bifunctionalized MNS rearranged the microstructure of hybrid membranes, which could accelerate the transfer of protons. The hybrid membrane (MNS@SNF-PAEK-3%) showed a better direct methanol fuel cell performance with a higher peak power density of 125.7 mW/cm at 80 °C and a higher open-circuit voltage (0.839 V) than the pristine membrane.

摘要

本工作制备了一种新型的含萘基和氟基的主链型侧链磺化聚芳醚酮(SNF-PAEK),并通过水热技术和后修饰合成了一种新的氨基-磺酸双官能化的金属有机骨架(MNS,简称 MIL-101-NH-SOH)。然后,将 MNS 作为无机纳米填料掺入 SNF-PAEK 基质中,制备了一系列有机-无机杂化膜(MNS@SNF-PAEK-XX)。详细表征了 MNS@SNF-PAEK-XX 杂化膜的力学性能、甲醇抗性、电化学性能等。研究发现,MNS 中的-NH 与 SNF-PAEK 侧链上的-SOH 之间形成离子交联结构,提高了这些杂化膜的力学强度和甲醇抗性。特别是,添加 MNS 后,这些杂化膜的质子电导率明显提高。MNS@SNF-PAEK-3%的质子电导率为 0.192 S·cm,明显高于原始膜(0.145 S·cm)和再铸 Nafion(0.134 S·cm)在 80°C 时的电导率。这一结果表明,双官能化的 MNS 重新排列了杂化膜的微结构,从而加速了质子的传递。在 80°C 时,该杂化膜(MNS@SNF-PAEK-3%)的峰值功率密度为 125.7 mW/cm,开路电压(0.839 V)更高,表现出更好的直接甲醇燃料电池性能。

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