4.7 Article

Achieving Fast Proton Transport and High Vanadium Ion Rejection with Uniformly Mesoporous Composite Membranes for High-Efficiency Vanadium Redox Flow Batteries

期刊

ACS APPLIED ENERGY MATERIALS
卷 3, 期 6, 页码 5874-5881

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.0c00804

关键词

nanoporous membrane; vanadium redox flow battery; permselectivity; composite; block copolymer self-assembly; polymerization-induced microphase separation

资金

  1. Advanced Battery Research Center at KAIST Institute for the Nanocentury
  2. Nano-Material Technology Development Program through the National Research Foundation of Korea (NRF) - Ministry of Science and ICT (MSICT) [2009-0082580]
  3. MSICT
  4. POSTECH

向作者/读者索取更多资源

We developed a block polymer-based synthetic route to sulfonated porous composites (SPCs) with precisely controlled nanopore size. By reducing the pore size to <4 nm and introducing a high density of surface sulfonic acid, the permeation of vanadium ions was effectively suppressed. We employed a polymerization-induced microphase separation (PIMS) process, in which a polyethylene fiber mat impregnated with a liquid polymerization mixture was spontaneously transformed into a fiber-reinforced and cross-linked block polymer membrane. Selective etching and sulfonation then produced the target composite membrane. In a vanadium redox flow battery (VRFB) cell, an SPC with 3.6 nm-sized mesopores, 109 m(2) g(-1) of specific surface area, and 0.3 mL g(-1) of mesoporosity outperformed a Nafion 212 membrane of similar thickness, providing higher proton conductivity and much lower vanadium permeability. Thanks to the composite reinforcement, the membrane demonstrated remarkably enhanced mechanical stability. The SPC membrane could be successfully operated up to 300 cycles. Compared with Nafion 212, the SPC exhibited higher energy efficiencies (EEs) and higher discharge capacity retention. These results suggest the promise of block polymer-based permselective membranes in advanced battery applications.

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