journal article Open Access May 21, 2013

Amorphous nickel hydroxide nanospheres with ultrahigh capacitance and energy density as electrochemical pseudocapacitor materials

View at Publisher Save 10.1038/ncomms2932
Topics

No keywords indexed for this article. Browse by subject →

References
31
[1]
Winter, M. & Brodd, R. J. What are batteries, fuel cells, and supercapacitors. Chem. Rev. 104, 4245–4269 (2004). 10.1021/cr020730k
[2]
Liu, D. et al. Hydrous manganese dioxide nanowall arrays growth and their Li+ ions intercalation electrochemical properties. Chem. Mater. 20, 1376–1380 (2008). 10.1021/cm702033z
[3]
Miller, J. R. & Simon, P. Electrochemical capacitors for energy management. Science 321, 651–652 (2008). 10.1126/science.1158736
[4]
Wang, H. L. Casalongue, H. S. Liang, Y. Y. & Dai, H. J. Ni(OH)2 Nanoplates grown on graphene as advanced electrochemical pseudocapacitor materials. J. Am. Chem. Soc. 132, 7472–7477 (2010). 10.1021/ja102267j
[5]
Ramesh, T. N. Jayashree, R. S. Kamath, P. V. Rodrigues, S. & Shukla, A. K. Effect of lightweight supports on specific discharge capacity of nickel hydroxide. J. Power Sources 104, 295–298 (2002). 10.1016/s0378-7753(01)00919-3
[6]
Yan, J. et al. Advanced asymmetric supercapacitors based on Ni(OH)2/graphene and porous graphene electrodes with high energy density. Adv. Funct. Mater. 22, 2632–2641 (2012). 10.1002/adfm.201102839
[7]
Lee, J. W. Ahn, T. Soundararajan, D. Koc, J. M. & Kim, J. Non-aqueous approach to the preparation of reduced graphene oxide α-Ni(OH)2 hybrid composites and their high capacitance behavior. Chem. Commun. 47, 6305–6307 (2011). 10.1039/c1cc11566a
[8]
Yang, G. W. Xu, C. L. & Li, H. L. Electrodeposited nickel hydroxide on nickel foam with ultrahigh capacitance. Chem. Commun. 0, 6537–6539 (2008). 10.1039/b815647f
[9]
Yuan, Y. F. et al. Nickel foam-supported porous Ni(OH)2/NiOOH composite film as advanced pseudocapacitor material. Electrochim. Acta 56, 2627–2632 (2011). 10.1016/j.electacta.2010.12.001
[10]
Patil, U. M. Gurav, K. V. Fulari, V. J. Lokhande, C. D. & Joo, O. S. Characterization of honeycomb-like “β-Ni(OH)2” thin films synthesized by chemical bath deposition method and their supercapacitor application, chemical bath deposition method and their supercapacitor application. J. Power Sources 188, 338–342 (2009). 10.1016/j.jpowsour.2008.11.136
[11]
Li, H. L. et al. Characterization and supercapacitor application of coin-like β-nickel hydroxide nanoplates. Electrochim. Acta 58, 89–94 (2011). 10.1016/j.electacta.2011.08.120
[12]
Lang, J. W. Kong, L. B. Liu, M. Luo, Y. C. & Kang, L. Asymmetric supercapacitors based on stabilized α-Ni(OH)2 and activated carbon. J. Solid State Electrochem. 14, 1533–1539 (2010). 10.1007/s10008-009-0984-1
[13]
Tao, F. F. et al. Fabrication of nickel hydroxide microtubes with micro- and nano-scale composite structure and improving electrochemical performance. Crystal Growth Design 8, 2157–2162 (2008). 10.1021/cg7012123
[14]
Liu, C. J. & Li, Y. W. Synthesis and characterization of amorphous α-nickel hydroxide. J. Alloys Compounds 478, 415–418 (2009). 10.1016/j.jallcom.2008.11.049
[15]
Zhang, H. et al. Growth of manganese oxide nanoflowers on vertically-aligned carbon nanotube arrays for high-rate electrochemical capacitive energy storage. Nano Lett. 8, 2664–2668 (2008). 10.1021/nl800925j
[16]
Devaraj, S. & Munichandraiah, N. Effect of crystallographic structure of MnO2 on its electrochemical capacitance properties. J. Phys. Chem. C 112, 4406–4417 (2008). 10.1021/jp7108785
[17]
Mao, L. Zhang, K. Chan, H. S. O. & Wu, J. S. Nanostructured MnO2/graphene composites for supercapacitor electrodes: the effect of morphology, crystallinity and composition. J. Mater. Chem. 22, 1845–1851 (2012). 10.1039/c1jm14503g
[18]
Li, H. B. Liu, P. Liang, Y. Xiao, J. & Yang, G. W. Super-SERS-active and highly effective antimicrobial Ag nanodendrites. Nanoscale 4, 5082–5091 (2012). 10.1039/c2nr30761h
[19]
Kong, D. S. Wang, J. M. Shao, H. B. Zhang, J. Q. & Cao, C. N. Electrochemical fabrication of a porous nanostructured nickel hydroxide film electrode with superior pseudocapacitive performance. J. Alloys Compounds 509, 5611–5616 (2011). 10.1016/j.jallcom.2011.02.086
[20]
Biesinger, M. C. Lau, L. W. M. Gersonb, A. R. & Smartb, R. S. The role of the Auger parameter in XPS studies of nickel metal, halides and oxides. Phys. Chem. Chem. Phys. 14, 2434–2442 (2012). 10.1039/c2cp22419d
[21]
Payne, B. P. Biesinger, M. C. & McIntyrea, N. S. Use of oxygen/nickel ratios in the XPS characterisation of oxide phases on nickel metal and nickel alloy surfaces. J. Electron Spectrosc. Relat. Phenomena 185, 159–166 (2012). 10.1016/j.elspec.2012.06.008
[22]
Lo, Y. L. & Hwang, B. J. In situ Raman Studies on cathodically deposited nickel hydroxide films and electroless Ni-P electrodes in 1 M KOH solution. Langmuir 14, 944–950 (1998). 10.1021/la9600255
[23]
Hermet, P. et al. Dielectric, magnetic, and phonon properties of nickel hydroxide. Phys. Rev. B 84, 235211 (2011). 10.1103/physrevb.84.235211
[24]
Bantignies, J. L. et al. New insight into the vibrational behavior of nickel hydroxide and oxyhydroxide using Inelastic Neutron scattering, far/mid-Infrared and Raman spectroscopies. J. Phys. Chem. C 112, 2193–2201 (2008). 10.1021/jp075819e
[25]
Kim, S. J. et al. Investigations into the electrochemical characteristics of nickel oxide hydroxide/multi-walled carbon nanotube nanocomposites for use as supercapacitor electrodes. Synth. Met. 161, 2641–2646 (2012). 10.1016/j.synthmet.2011.09.034
[26]
Srinivasan, V. & Weidner, J. W. Capacitance studies of cobalt oxide films formed via electrochemical precipitation. J. Power Sources 108, 15–20 (2002). 10.1016/s0378-7753(01)01012-6
[27]
Wang, X. F. Ruan, D. B. & Zheng, Y. Application of spherical Ni(OH)2/CNTs composite electrode in asymmetric supercapacitor. Trans. Nonferrous Met. Soc. China 16, 1129–1134 (2006). 10.1016/s1003-6326(06)60389-0
[28]
Tang, Z. Tang, C. H. & Gong, H. A high energy density asymmetric supercapacitor from nano-architectured Ni(OH)2/carbon nanotube electrodes. Adv. Funct. Mater. 22, 1272–1278 (2012). 10.1002/adfm.201102796
[29]
Wang, H. L. et al. Advanced asymmetrical supercapacitors based on graphene hybrid materials. Nano Res. 4, 729–736 (2011). 10.1007/s12274-011-0129-6
[30]
Wang, Y. G. et al. High performance hybrid supercapacitor based on graphene-supported Ni(OH)2-nanowires and ordered mesoporous carbon CMK-5. J Electrochem. Soc. 160, A98–A104 (2013). 10.1149/2.012302jes
[31]
Bernard, M. C. et al. Structural defects and electrochemical reactivity of P-Ni(OH)2 . J. Power Sources 63, 247–254 (1996). 10.1016/s0378-7753(96)02482-2
Cited By
1,136
Separation and Purification Technol...
Chemical Reviews
Journal of Materials Chemistry A
Materials Chemistry Frontiers
Journal of Energy Storage
Metrics
1,136
Citations
31
References
Details
Published
May 21, 2013
Vol/Issue
4(1)
License
View
Cite This Article
H. B. Li, M. H. Yu, F. X. Wang, et al. (2013). Amorphous nickel hydroxide nanospheres with ultrahigh capacitance and energy density as electrochemical pseudocapacitor materials. Nature Communications, 4(1). https://doi.org/10.1038/ncomms2932
Related

You May Also Like

Inferring tumour purity and stromal and immune cell admixture from expression data

Kosuke Yoshihara, Maria Shahmoradgoli · 2013

7,687 citations

Inference and analysis of cell-cell communication using CellChat

Suoqin Jin, Christian F. Guerrero-Juarez · 2021

6,760 citations

In situ click chemistry generation of cyclooxygenase-2 inhibitors

Atul Bhardwaj, Jatinder Kaur · 2017

6,689 citations