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Graphene oxide based nanohybrid proton exchange membranes for fuel cell applications: An overview

质子交换膜燃料电池 材料科学 石墨烯 纳米技术 聚合物 氧化物 表面改性 背景(考古学) 燃料电池 化学工程 复合材料 化学 古生物学 生物化学 工程类 冶金 生物
作者
Ravi P. Pandey,Geetanjali Shukla,Murli Manohar,Vinod K. Shahi
出处
期刊:Advances in Colloid and Interface Science [Elsevier BV]
卷期号:240: 15-30 被引量:124
标识
DOI:10.1016/j.cis.2016.12.003
摘要

In the context of many applications, such as polymer composites, energy-related materials, sensors, ‘paper’-like materials, field-effect transistors (FET), and biomedical applications, chemically modified graphene was broadly studied during the last decade, due to its excellent electrical, mechanical, and thermal properties. The presence of reactive oxygen functional groups in the grapheme oxide (GO) responsible for chemical functionalization makes it a good candidate for diversified applications. The main objectives for developing a GO based nanohybrid proton exchange membrane (PEM) include: improved self-humidification (water retention ability), reduced fuel crossover (electro-osmotic drag), improved stabilities (mechanical, thermal, and chemical), enhanced proton conductivity, and processability for the preparation of membrane-electrode assembly. Research carried on this topic may be divided into protocols for covalent grafting of functional groups on GO matrix, preparation of free-standing PEM or choice of suitable polymer matrix, covalent or hydrogen bonding between GO and polymer matrix etc. Herein, we present a brief literature survey on GO based nano-hybrid PEM for fuel cell applications. Different protocols were adopted to produce functionalized GO based materials and prepare their free-standing film or disperse these materials in various polymer matrices with suitable interactions. This review article critically discussed the suitability of these PEMs for fuel cell applications in terms of the dependency of the intrinsic properties of nanohybrid PEMs. Potential applications of these nanohybrid PEMs, and current challenges are also provided along with future guidelines for developing GO based nanohybrid PEMs as promising materials for fuel cell applications.

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