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电排列功能化碳纳米管/磺化聚醚醚酮纳米杂化质子交换膜的保水性和质子传导率显著提高。

Dramatic improvement in water retention and proton conductivity in electrically aligned functionalized CNT/SPEEK nanohybrid PEM.

作者信息

Gahlot Swati, Kulshrestha Vaibhav

机构信息

CSIR-Central Salt and Marine Chemicals Research Institute (CSIR-CSMCRI), Council of Scientific & Industrial Research (CSIR) , Gijubhai Badheka Marg, Bhavnagar- 364 002, Gujarat, India.

出版信息

ACS Appl Mater Interfaces. 2015 Jan 14;7(1):264-72. doi: 10.1021/am506033c. Epub 2014 Dec 30.

Abstract

Nanohybrid membranes of electrically aligned functionalized carbon nanotube f CNT with sulfonated poly ether ether ketone (SPEEK) have been successfully prepared by solution casting. Functionalization of CNTs was done through a carboxylation and sulfonation route. Further, a constant electric field (500 V·cm(-2)) has been applied to align CNTs in the same direction during the membrane drying process. All the membranes are characterized chemically, thermally, and mechanically by the means of FTIR, DSC, DMA, UTM, SEM, TEM, and AFM techniques. Intermolecular interactions between the components in hybrid membranes are established by FTIR. Physicochemical measurements were done to analyze membrane stability. Membranes are evaluated for proton conductivity (30-90 °C) and methanol crossover resistance to reveal their potential for direct methanol fuel cell application. Incorporation of f CNT reasonably increases the ion-exchange capacity, water retention, and proton conductivity while it reduces the methanol permeability. The maximum proton conductivity has been found in the S-sCNT-5 nanohybrid PEM with higher methanol crossover resistance. The prepared membranes can be also used for electrode material for fuel cells and batteries.

摘要

通过溶液浇铸成功制备了电取向功能化碳纳米管(f CNT)与磺化聚醚醚酮(SPEEK)的纳米杂化膜。碳纳米管的功能化通过羧基化和磺化途径实现。此外,在膜干燥过程中施加了恒定电场(500 V·cm⁻²)以使碳纳米管沿同一方向排列。所有膜均通过傅里叶变换红外光谱(FTIR)、差示扫描量热法(DSC)、动态热机械分析(DMA)、万能材料试验机(UTM)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)和原子力显微镜(AFM)技术进行化学、热学和力学表征。通过FTIR确定了杂化膜中各组分之间的分子间相互作用。进行了物理化学测量以分析膜的稳定性。对膜进行了质子传导率(30 - 90°C)和甲醇渗透阻力评估,以揭示其在直接甲醇燃料电池应用中的潜力。f CNT的掺入合理地提高了离子交换容量、保水性和质子传导率,同时降低了甲醇渗透率。在具有较高甲醇渗透阻力的S - sCNT - 5纳米杂化质子交换膜中发现了最大质子传导率。所制备的膜还可用于燃料电池和电池的电极材料。

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