| Literature DB >> 28585367 |
Guangwei He1,2, Mingzhao Xu1,2, Jing Zhao1,2, Shengtao Jiang3, Shaofei Wang1,2, Zhen Li1,2, Xueyi He1,2, Tong Huang1,2, Moyuan Cao1, Hong Wu1,2, Michael D Guiver2,4, Zhongyi Jiang1,2.
Abstract
Solid electrolytes have attracted much attention due to their great prospects in a number of energy- and environment-related applications including fuel cells. Fast ion transport and superior mechanical properties of solid electrolytes are both of critical significance for these devices to operate with high efficiency and long-term stability. To address a common tradeoff relationship between ionic conductivity and mechanical properties, electrolyte membranes with proton-conducting 2D channels and nacre-inspired architecture are reported. An unprecedented combination of high proton conductivity (326 mS cm-1 at 80 °C) and superior mechanical properties (tensile strength of 250 MPa) are achieved due to the integration of exceptionally continuous 2D channels and nacre-inspired brick-and-mortar architecture into one materials system. Moreover, the membrane exhibits higher power density than Nafion 212 membrane, but with a comparative weight of only ≈0.1, indicating potential savings in system weight and cost. Considering the extraordinary properties and independent tunability of ion conduction and mechanical properties, this bioinspired approach may pave the way for the design of next-generation high-performance solid electrolytes with nacre-like architecture.Entities:
Keywords: 2D channels; graphene composite; nacre structures; proton conduction; solid electrolyte membranes
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Year: 2017 PMID: 28585367 DOI: 10.1002/adma.201605898
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849