Utilization of Hyper-Dendritic Zinc during High Rate Discharge in Alkaline Electrolytes

被引:13
作者
Davies, Greg [1 ,2 ]
Hsieh, Andrew G. [1 ,2 ]
Hultmark, Marcus [1 ]
Mueller, Michael E. [1 ]
Steingart, Daniel A. [1 ,2 ]
机构
[1] Princeton Univ, Dept Mech & Aerosp Engn, Princeton, NJ 08544 USA
[2] Princeton Univ, Andlinger Ctr Energy & Environm, Princeton, NJ 08544 USA
基金
美国国家科学基金会;
关键词
CELLS; PASSIVATION; BATTERY; CAPACITY; ANODES;
D O I
10.1149/2.0891607jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Zinc is a low cost and abundant material, and its strong reducing potential combined with stability in aqueous solutions give it high energy density and safety. It is, therefore, known to be an excellent choice of anode for a wide range of battery designs. However, this material presents some challenges for use in a secondary battery, including morphology changes and dendrite growth during charge (Zn deposition), and low utilization during discharge (Zn dissolution). Low utilization is related to a combination of corrosion and passivation effects. In this paper, we demonstrate a hyper-dendritic (HD) zinc morphology that has a high surface area and allows for rapid discharge in a completely freestanding system with no binders or conductive additives, while still maintaining significantly higher utilization than typical zinc morphologies. At rates of 2.5 A/g, the HD zinc has a utilization level approximately 50% higher than typical zinc granules or dust. Furthermore, we demonstrate that, through tuning of the electrolyte with specific additives, we are able to further increase the utilization of the material at high rate discharge by up to 30%. (C) The Author(s) 2016. Published by ECS. All rights reserved.
引用
收藏
页码:A1340 / A1347
页数:8
相关论文
共 23 条
[1]   METHODS FOR THE REDUCTION OF SHAPE CHANGE AND DENDRITIC GROWTH IN ZINC-BASED SECONDARY CELLS [J].
BASS, K ;
MITCHELL, PJ ;
WILCOX, GD ;
SMITH, J .
JOURNAL OF POWER SOURCES, 1991, 35 (03) :333-351
[2]   Hyper-dendritic nanoporous zinc foam anodes [J].
Chamoun, Mylad ;
Hertzberg, Benjamin J. ;
Gupta, Tanya ;
Davies, Daniel ;
Bhadra, Shoham ;
Van Tassell, Barry ;
Erdonmez, Can ;
Steingart, Daniel A. .
NPG ASIA MATERIALS, 2015, 7 :e178-e178
[3]   Electrical Energy Storage for the Grid: A Battery of Choices [J].
Dunn, Bruce ;
Kamath, Haresh ;
Tarascon, Jean-Marie .
SCIENCE, 2011, 334 (6058) :928-935
[4]  
Ehrlich G.M., 2002, HDB BATTERIES
[5]   A flexible high potential printed battery for powering printed electronics [J].
Gaikwad, Abhinav M. ;
Steingart, Daniel A. ;
Ng, Tse Nga ;
Schwartz, David E. ;
Whiting, Gregory L. .
APPLIED PHYSICS LETTERS, 2013, 102 (23)
[6]   An In Situ Synchrotron Study of Zinc Anode Planarization by a Bismuth Additive [J].
Gallaway, Joshua W. ;
Gaikwad, Abhinav M. ;
Hertzberg, Benjamin ;
Erdonmez, Can K. ;
Chen-Wiegart, Yu-Chen Karen ;
Sviridov, Lev A. ;
Evans-Lutterodt, Kenneth ;
Wang, Jun ;
Banerjee, Sanjoy ;
Steingart, Daniel A. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2014, 161 (03) :A275-A284
[7]   Graphene/zinc nano-composites by electrochemical co-deposition [J].
Hilder, Matthias ;
Winther-Jensen, Orawan ;
Winther-Jensen, Bjorn ;
MacFarlane, Douglas R. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2012, 14 (40) :14034-14040
[8]   Zinc morphology in zinc-nickel flow assisted batteries and impact on performance [J].
Ito, Yasumasa ;
Nyce, Michael ;
Plivelich, Robert ;
Klein, Martin ;
Steingart, Daniel ;
Banerjee, Sanjoy .
JOURNAL OF POWER SOURCES, 2011, 196 (04) :2340-2345
[9]   Silver-zinc: status of technology and applications [J].
Karpinski, AP ;
Makovetski, B ;
Russell, SJ ;
Serenyi, JR ;
Williams, DC .
JOURNAL OF POWER SOURCES, 1999, 80 (1-2) :53-60
[10]  
Linden D., 2010, Linden's Handbook of Batteries, V4th