Impact of nanofluidic electrolyte on the energy storage capacity in vanadium redox flow battery

被引:26
作者
Kim, Jungmyung [1 ]
Park, Heesung [1 ]
机构
[1] Changwon Natl Univ, Dept Mech Engn, 20 Changwondaehak Ro, Chang Won 51140, South Korea
基金
新加坡国家研究基金会;
关键词
Active area; Electrochemical performance; Energy storage capacity; Nanofluidic electrolyte; Vanadium redox flow battery; RESEARCH-AND-DEVELOPMENT; GRAPHITE FELT; PERFORMANCE; TECHNOLOGIES; NANOFIBERS; PROGRESS;
D O I
10.1016/j.energy.2018.06.221
中图分类号
O414.1 [热力学];
学科分类号
摘要
The limitation of energy storage capacity in vanadium redox flow battery impedes further commercialization of the battery. The concept proposed in this study is to overcome the limit by using nanofluidic electrolytes. Multi-walled carbon nanotubes (MWCNTs) are chosen to disperse in electrolytes due to their high surfaces to volume ratio. Nanofluid electrolytes with three electrolyte weight percent MWCNT (0.05, 0.1, 0.2 wt%) were tested and compared with the pristine electrolyte. Half-cell test with cyclic voltammetry has shown that electrochemical reaction performance is proportional to the content of MWCNT in nanofluidic electrolytes. The redox reaction of nanofluidic electrolytes are enhanced by the increased electrochemical activity and reversibility in addition to the lower polarization effect. Meanwhile, single-cell test reveals that the optimum weight percent of nanofluidic electrolytes is 0.1% of MWCNT because the electrolyte containing 0.2% of MWCNT induces the unwanted precipitation at the electrodes during the electrochemical reaction. After completion of 62 charge/discharge cyclings, nanofluidic electrolyte with 0.1% MWCNT retains specific discharge capacity of 31.7 Ah L-1 while pristine electrolyte does 26.0 Ah L-1. This corresponds to 22% enhancement of energy storage by using the nanofluidic electrolytes. We conclude that nanofluidic electrolytes can considerably improve the energy storage capacity with optimized content of MWCNT. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:192 / 199
页数:8
相关论文
共 31 条
[1]   Review of energy storage technologies for sustainable power networks [J].
Akinyele, D. O. ;
Rayudu, R. K. .
SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2014, 8 :74-91
[2]   Mathematical and experimental evaluation of thermal and electrical efficiency of PV/T collector using different water based nano-fluids [J].
Al-Shamani, Ali Najah ;
Alghoul, M. A. ;
Elbreki, A. M. ;
Ammar, A. A. ;
Abed, Azher M. ;
Sopian, K. .
ENERGY, 2018, 145 :770-792
[3]   Modelling and control of vanadium redox flow battery for profile based charging applications [J].
Badrinarayanan, Rajagopalan ;
Tseng, King Jet ;
Soong, Boon Hee ;
Wei, Zhongbao .
ENERGY, 2017, 141 :1479-1488
[4]   Assessment of the use of vanadium redox flow batteries for energy storage and fast charging of electric vehicles in gas stations [J].
Cunha, Alvaro ;
Brito, F. P. ;
Martins, Jorge ;
Rodrigues, Nuno ;
Monteiro, Vitor ;
Afonso, Joao L. ;
Ferreira, Paula .
ENERGY, 2016, 115 :1478-1494
[5]   Synthesis of flexible electrodes based on electrospun carbon nanofibers with Mn3O4 nanoparticles for vanadium redox flow battery application [J].
Di Blasi, A. ;
Busaccaa, C. ;
Di Blasia, O. ;
Briguglioa, N. ;
Squadritoa, G. ;
Antonuccia, V. .
APPLIED ENERGY, 2017, 190 :165-171
[6]   Electroactive graphene nanofluids for fast energy storage [J].
Dubal, Deepak P. ;
Gomez-Romero, Pedro .
2D MATERIALS, 2016, 3 (03)
[7]   Electrical Energy Storage for the Grid: A Battery of Choices [J].
Dunn, Bruce ;
Kamath, Haresh ;
Tarascon, Jean-Marie .
SCIENCE, 2011, 334 (6058) :928-935
[8]  
EI-Seesy AI, 2017, ENERG CONVERS MANAGE, V135, P373
[9]   Characterisation of electrical energy storage technologies [J].
Ferreira, Helder Lopes ;
Garde, Raquel ;
Fulli, Gianluca ;
Kling, Wil ;
Lopes, Joao Pecas .
ENERGY, 2013, 53 :288-298
[10]  
Kabtamu DM, 2017, J POWER SOURCES, V4, P11472