eChem@WZU

工业电化学与膜过程实验室@WZU

用户工具

站点工具


wiki:pub:j.matdes.2016.10.019

差别

这里会显示出您选择的修订版和当前版本之间的差别。

到此差别页面的链接

两侧同时换到之前的修订记录 前一修订版
后一修订版
前一修订版
wiki:pub:j.matdes.2016.10.019 [2017/04/07 13:00]
张伟明
wiki:pub:j.matdes.2016.10.019 [2017/04/07 13:45] (当前版本)
张伟明
行 5: 行 5:
  
 {{ :​wiki:​pub:​1-s2.0-s0264127516313107-fx1.jpg ? |}} {{ :​wiki:​pub:​1-s2.0-s0264127516313107-fx1.jpg ? |}}
- 
-==== Highlights ==== 
-A novel complex membrane is designed and fabricated to improve the vanadium flow battery performance;​ 
-The complex membrane employs PES ultrafiltration membrane as support and graphene as proton-selection layer; 
-The proton selectivity of membrane is significantly enhanced and the overall battery efficiencies are improved by 5-10%. 
- 
-==== Abstract ==== 
  
 The vanadium flow battery (VFB) is one of the most promising technologies for large-scale energy storage, which has an enormous advantage in the stabilization and smooth output of renewable energy. As an essential separator in VFB, nanoporous membrane plays a key role in the final electrochemical performance,​ which requires both high H+ conductivity and low vanadium permeability. In this work, a novel graphene enabled porous membrane material has been successfully designed and fabricated by directly transferring several layers of graphene onto the surface of traditional polyethersulfone ultrafiltration membrane. The experimental results show that the graphene layers will impact the composite membranes performance in batteries. After three graphene single layers attached, the proton selectivity of membrane is significantly enhanced, and the overall battery efficiencies are improved by 10% at 20 mA cm− 2. Therefore, attaching graphene layers is a feasible and promising strategy to improve the performance of nanoporous membrane in VFB applications. The vanadium flow battery (VFB) is one of the most promising technologies for large-scale energy storage, which has an enormous advantage in the stabilization and smooth output of renewable energy. As an essential separator in VFB, nanoporous membrane plays a key role in the final electrochemical performance,​ which requires both high H+ conductivity and low vanadium permeability. In this work, a novel graphene enabled porous membrane material has been successfully designed and fabricated by directly transferring several layers of graphene onto the surface of traditional polyethersulfone ultrafiltration membrane. The experimental results show that the graphene layers will impact the composite membranes performance in batteries. After three graphene single layers attached, the proton selectivity of membrane is significantly enhanced, and the overall battery efficiencies are improved by 10% at 20 mA cm− 2. Therefore, attaching graphene layers is a feasible and promising strategy to improve the performance of nanoporous membrane in VFB applications.
wiki/pub/j.matdes.2016.10.019.1491541257.txt.gz · 最后更改: 2017/04/07 13:00 由 张伟明