Higher voltage plateau cubic Prussian White for Na-ion batteries

被引:90
作者
Jose Piernas-Munoz, Maria [1 ]
Castillo-Martinez, Elizabeth [1 ,3 ]
Bondarchuk, Oleksandr [1 ]
Armand, Michel [1 ]
Rojo, Teofilo [1 ,2 ]
机构
[1] CIC Energigune, Parque Tecnol Alava,Albert Einstein 48,ED CIC, Minano 01050, Spain
[2] Univ Basque Country, Dept Quim Inorgan, UPV EHU, POB 664, Bilbao 48080, Spain
[3] Univ Cambridge, Dept Chem, Lensfield Rd, Cambridge CB2 3ED, England
关键词
Electrochemical energy storage; Na-ion batteries; Prussian white; Prussian blue related; Hybrid battery; SUPERIOR CATHODE; BLUE; HEXACYANOFERRATE; FRAMEWORK; STORAGE; WATER; LI;
D O I
10.1016/j.jpowsour.2016.05.050
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Cubic sodium Prussian White, Na2-xFe2(CN)(6)center dot yH(2)O, and potassium Prussian White, K2-xFe2(CN)(6)center dot yH(2)O, are prepared following a mild synthetic methodology. While cubic symmetry is confirmed by XRD and TEM, IR and XPS show characteristic features different from Prussian Blue compositions. When investigated as cathode materials in sodium ion batteries, both compounds exhibit reversible capacities above 140 mAh g(-1) at 1C (ca. 80 mA g(-1)). While sodium Prussian White shows better high rate capability (10C/0.1C = 0.64), potassium Prussian White exhibits longer cycle stability, with up to 80% of capacity retention after 500 cycles. Interestingly, the potassium Prussian White phase also provides an increase of 0.35 V in the high voltage redox peak compared to the sodium Prussian White analogue ascribed to the preferential insertion of K+ ions instead of Na+, resulting in an increment of the gravimetric energy density. On the other hand, the insertion of Na+ seems to occur at the lower voltage plateau. This hybrid Na+ and K+ insertion in the framework of potassium Prussian White is most likely the responsible of the long cycle stability as a consequence of synergistic effects. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:766 / 773
页数:8
相关论文
共 39 条
[1]   Treatment of 137Cs contaminated water by selective adsorption [J].
Arnal, J. M. ;
Sancho, M. ;
Garcia-Fayos, B. .
DESALINATION, 2013, 321 :22-27
[2]   STRUCTURES AND SOLID-STATE REACTIONS OF PRUSSIAN BLUE ANALOGS CONTAINING CHROMIUM MANGANESE IRON AND COBALT [J].
BROWN, DB ;
SHRIVER, DF .
INORGANIC CHEMISTRY, 1969, 8 (01) :37-&
[3]   New-concept Batteries Based on Aqueous Li+/Na+ Mixed-ion Electrolytes [J].
Chen, Liang ;
Gu, Qingwen ;
Zhou, Xufeng ;
Lee, Saixi ;
Xia, Yonggao ;
Liu, Zhaoping .
SCIENTIFIC REPORTS, 2013, 3
[4]   INSITU FTIR AND XPS STUDIES OF THE HEXACYANOFERRATE REDOX SYSTEM [J].
DATTA, M ;
DATTA, A .
JOURNAL OF PHYSICAL CHEMISTRY, 1990, 94 (21) :8203-8207
[5]   X-Ray Photoelectron Spectroscopic Characterization of Chemically Modified Electrodes Used as Chemical Sensors and Biosensors: A Review [J].
Desimoni, Elio ;
Brunetti, Barbara .
CHEMOSENSORS, 2015, 3 (02) :70-117
[6]   Potassium secondary cell based on Prussian blue cathode [J].
Eftekhari, A .
JOURNAL OF POWER SOURCES, 2004, 126 (1-2) :221-228
[7]   Increasing the Gravimetric Energy Density of Organic Based Secondary Battery Cathodes Using Small Radius Cations (Li+ and Mg2+) [J].
Hernandez-Burgos, Kenneth ;
Rodriguez-Calero, Gabriel G. ;
Zhou, Weidong ;
Burkhardt, Stephen E. ;
Abruna, Hector D. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (39) :14532-14535
[8]   Facile synthesis of air-stable Prussian white microcubes via a hydrothermal method [J].
Hu, M. ;
Jiang, J. S. .
MATERIALS RESEARCH BULLETIN, 2011, 46 (05) :702-707
[9]   On the Comparative Stability of Li and Na Metal Anode Interfaces in Conventional Alkyl Carbonate Electrolytes [J].
Iermakova, D. I. ;
Dugas, R. ;
Palacin, M. R. ;
Ponrouch, A. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2015, 162 (13) :A7060-A7066
[10]   Optimizing the electrolyte and binder composition for Sodium Prussian Blue, Na1-xFex+(1/3)(CN)6•yH2O, as cathode in sodium ion batteries [J].
Jose Piernas-Munoz, M. ;
Castillo-Martinez, E. ;
Gomez-Camer, J. L. ;
Rojo, T. .
ELECTROCHIMICA ACTA, 2016, 200 :123-130