The feasibility of hollow echinus-like NiCo2O4 nanocrystals for hybrid capacitive deionization

被引:20
作者
Liu, Zhenzhen [1 ]
Xi, Wen [1 ]
Li, Haibo [1 ]
机构
[1] Ningxia Univ, Ningxia Key Lab Photovolta Mat, Yinchuan 750021, Ningxia, Peoples R China
基金
中国国家自然科学基金;
关键词
DESALINATION; PERFORMANCE; COMPOSITE; BEHAVIOR; ANODE;
D O I
10.1039/c9ew00939f
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hybrid capacitive deionization (HCDI) has emerged to address the shortcomings of CDI in high-salinity solutions. Cathodes for HCDI with active Faradaic reaction ability are desirable. In this work, we propose a facile method to prepare hollow echinus-like NiCo2O4 nanocrystals as high-performance cathodes for HCDI. It was determined that the specific surface area of NiCo2O4 is similar to 70.74 m(2) g(-1) with the mean pore diameter of 20.72 nm. The electrochemical analysis demonstrated that NiCo2O4 possesses high specific capacity, remarkable capacitance retention and low impedance. As a cathode for HCDI, NiCo2O4 exhibited high salt removal capacity of 44.3 mg g(-1) with charge efficiency of 98.7% at 1.2 V in an NaCl solution with initial conductivity of 1000 mu S cm(-1). This is attributed to the definite redox reaction between NiCo2O4 and sodium ions during the charge/discharge process. Moreover, the HCDI behavior of NiCo2O4 in various solutions containing K+, Na+ and Mg2+ was explored, illustrating that the ionic radius has priority in HCDI. Furthermore, the salt removal capacity of the NiCo2O4 electrode after 20 cycles was still similar to 42.9 mg g(-1), which was 97.5% of the initial value, proving its prominent regeneration.
引用
收藏
页码:283 / 289
页数:7
相关论文
共 26 条
[1]   Tunnel structured manganese oxide nanowires as redox active electrodes for hybrid capacitive deionization [J].
Byles, Bryan W. ;
Cullen, David A. ;
More, Karren L. ;
Pomerantseva, Ekaterina .
NANO ENERGY, 2018, 44 :476-488
[2]   Complementary surface charge for enhanced capacitive deionization [J].
Gao, X. ;
Porada, S. ;
Omosebi, A. ;
Liu, K. -L. ;
Biesheuvel, P. M. ;
Landon, J. .
WATER RESEARCH, 2016, 92 :275-282
[3]   A Prussian blue anode for high performance electrochemical deionization promoted by the faradaic mechanism [J].
Guo, Lu ;
Mo, Runwei ;
Shi, Wenhui ;
Huang, Yinxi ;
Leong, Zhi Yi ;
Ding, Meng ;
Chen, Fuming ;
Yang, Hui Ying .
NANOSCALE, 2017, 9 (35) :13305-13312
[4]   Performance metrics for the objective assessment of capacitive deionization systems [J].
Hawks, Steven A. ;
Ramachandran, Ashwin ;
Porada, Slawomir ;
Campbell, Patrick G. ;
Suss, Matthew E. ;
Biesheuvel, P. M. ;
Santiago, Juan G. ;
Stadermann, Michael .
WATER RESEARCH, 2019, 152 :126-137
[5]   Graphene nanosheets reduced by a multi-step process as high-performance electrode material for capacitive deionisation [J].
Jia, Baoping ;
Zou, Linda .
CARBON, 2012, 50 (06) :2315-2321
[6]   Hybrid Electrochemical Desalination System Combined with an Oxidation Process [J].
Kim, Seonghwan ;
Kim, Choonsoo ;
Lee, Jaehan ;
Kim, Seoni ;
Lee, Jiho ;
Kim, Jiye ;
Yoon, Jeyong .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (02) :1620-1626
[7]   Na2FeP2O7 as a Novel Material for Hybrid Capacitive Deionization [J].
Kim, Seonghwan ;
Lee, Jaehan ;
Kim, Choonsoo ;
Yoon, Jeyong .
ELECTROCHIMICA ACTA, 2016, 203 :265-271
[8]   Nanocrystalline cellulose reinforced PVDF-HFP membranes for membrane distillation application [J].
Lalia, Boor Singh ;
Guillen, Elena ;
Arafat, Hassan A. ;
Hashaikeh, Raed .
DESALINATION, 2014, 332 (01) :134-141
[9]   Sodium ion removal by hydrated vanadyl phosphate for electrochemical water desalination supplementary information (ESI) available. See DOI: 10.1039/c8ta10087j [J].
Lee, Juhan ;
Srimuk, Pattarachai ;
Zwingelstein, Rose ;
Zornitta, Rafael Linzmeyer ;
Choi, Jaehoon ;
Kim, Choonsoo ;
Presser, Volker .
JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (08) :4175-4184
[10]   The capacitive deionization behaviour of a carbon nanotube and reduced graphene oxide composite [J].
Li, Haibo ;
Liang, Sen ;
Li, Jin ;
He, Lijun .
JOURNAL OF MATERIALS CHEMISTRY A, 2013, 1 (21) :6335-6341