1 |
Boosting the thermal stability of electrolytes in vanadium redox flow batteries via 1-hydroxyethane-1,1-diphosphonic acid Zhang YN, Xi JY, Liu L, Wu ZH Journal of Applied Electrochemistry, 50(2), 255, 2020 |
2 |
Battery assembly optimization: Tailoring the electrode compression ratio based on the polarization analysis in vanadium flow batteries Yue M, Lv ZQ, Zheng Q, Li XF, Zhang HM Applied Energy, 235, 495, 2019 |
3 |
Achieving efficient and inexpensive vanadium flow battery by combining CexZr1-xO2 electrocatalyst and hydrocarbon membrane Yu LH, Un F, Xiao WD, Xu L, Xi JY Chemical Engineering Journal, 356, 622, 2019 |
4 |
Stable positive electrolyte containing high-concentration Fe-2(SO4)(3) for vanadium flow battery at 50 degrees C Li ZH, Lin YQ, Wan L, Wang BG Electrochimica Acta, 309, 148, 2019 |
5 |
Revealing sulfuric acid concentration impact on comprehensive performance of vanadium electrolytes and flow batteries Zhao Y, Liu L, Qiu XP, Xi JY Electrochimica Acta, 303, 21, 2019 |
6 |
Optimization of local porosity in the electrode as an advanced channel for all-vanadium redox flow battery Yoon SJ, Kim S, Kim DK Energy, 172, 26, 2019 |
7 |
Aliphatic/aromatic sulfonated polyimide membranes with cross-linked structures for vanadium flow batteries Yu LH, Wang L, Yu LW, Mu D, Wang L, Xi JY Journal of Membrane Science, 572, 119, 2019 |
8 |
Cyclodextrin templated nanoporous anion exchange membrane for vanadium flow battery application Ma YJ, Li L, Ma LL, Qaisrani NA, Gong ST, Li PY, Zhang FX, He GH Journal of Membrane Science, 586, 98, 2019 |
9 |
Polybenzimidazole membrane with dual proton transport channels for vanadium flow battery applications Chen DJ, Qi HN, Sun TT, Yan C, He YY, Kang CZ, Yuan ZZ, Li XF Journal of Membrane Science, 586, 202, 2019 |
10 |
A novel polybenzimidazole membrane containing bulky naphthalene group for vanadium flow battery Geng K, Li Y, Xing Y, Wang LH, Li NW Journal of Membrane Science, 586, 231, 2019 |