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Theoretical pulse charge for the optimal inhibition of growing dendrites

Published online by Cambridge University Press:  23 January 2018

Asghar Aryanfar*
Affiliation:
Engineering Faculty, Bahçeşehir University, Istanbul, Turkey34349, Email: [email protected] Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA91125, USA
Daniel J. Brooks
Affiliation:
Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA91125, USA
William A. Goddard III
Affiliation:
Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA91125, USA
*
(Email: [email protected])
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Abstract

Dendritic growth during charging period is one of the main barriers for the rechargeablity of conventional batteries. Additionally this phenomenon hinders the utilization of high energy density metal candidates by limiting the safety and allowable operating condition for these devices. We address the role of square wave pulse on the growth dynamics of dendrites in the continuum scale and large time periods by formulating an analytical criterion. Our dimension-free analysis permits the application our results to a variety of electrochemical systems in diverse scales.

Type
Articles
Copyright
Copyright © Materials Research Society 2018 

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References

References:

Li, Z., Huang, J., Liaw, B.Y., Metzler, V., and Zhang, J.. J. Power Sources, 182 (2014).Google Scholar
Rahman, M.A., Wang, X., and Wen, C.. J of Appl Electrochem 44.1 (2014)Google Scholar
Xu, W., Wang, J. L., Ding, F., Chen, X. L., Nasybutin, E., Zhang, Y. H., and Zhang, J. G.. En & Env Sci, 7, 2 (2014).Google Scholar
Xu, Kang. Chemical Reviews, 104,10 (2004).CrossRefGoogle Scholar
Orsini, F. Pasquier, A.D., Beaudoin, B., Tarascon, J.M. et al. . J. Pow Sources, 76 (1998).Google Scholar
Monroe, C. and Newman, J.. J. Electrochem Soc 151, 6 (2004).CrossRefGoogle Scholar
Nielsen, C. P., Bruus, H.. arXiv:1505.07571, 2015.Google Scholar
Harry, K.J., Hallinan, D.T., Parkinson, D.Y., MacDowell, A.A., and Balsara, N.P., Nature materials, 13,1 (2014).CrossRefGoogle Scholar
Steiger, J., Kramer, D., and Monig, R.. J. Power Sources, 261 (2014).Google Scholar
Younesi, R., Veith, G. M., Johansson, P., Edstrom, K., and Vegge, T.: 8, 7 (2015).Google Scholar
Khurana, R., Schaefer, J., Archer, L.A., and Coates, G. W.. J. Am Chem Soc (2014).Google Scholar
Brissot, C., Rosso, M., Chazalviel, J. N., and Lascaud, S.. J Power Sources, 81 (1999).Google Scholar
Seong, I. W., Hong, C. H., Kim, B. K., and Yoon, W. Y.. Journal of Power Sources,178 , 2, (2008).CrossRefGoogle Scholar
Aryanfar, A., Brooks, D. J., Colussi, A. J., and Hoffmann, M. R.: Phys Chem Chem Phys, 16, 45, (2014).Google Scholar
Aryanfar, A., Brooks, D.J., Colussi, A. J., Merinov, B. V., Goddard, W. A. III, and Hoffmann, M.R.: Phys Chem Chem Phys, 17,12 (2015).Google Scholar
Xu, C., Ahmad, Z., Aryanfar, A., Viswanathan, V.S., and Greer, J. R.. PNAS, 114,1 (2017).Google Scholar
Bhattacharyya, R., Key, B., Chen, H. L., Best, A. S., Hollenkamp, A. F., and Grey, C. P.. Nature Mat, 9, 6 (2010).Google Scholar
Chandrashekar, S., Trease, N.M., Chang, H.J., Du, L.S., Grey, C.P., and Jerschow, A.: Nat Mat, 11, 4 (2012).Google Scholar
Chandrasekar, M. S., and Pushpavanam, M.: Electrochimica Acta 53.8: (2008)Google Scholar
Li, Q., Tan, S., Li, L., Lu, Y., and He, Y.: Sci Adv, 3, 7, (2017)Google Scholar
Aryanfar, A., Brooks, D., Merinov, B.V., Goddard, W.A. III, Colussi, A.J., and Hoffmann, M.R.: J Phys Chem Lett, 5,10, (2014)CrossRefGoogle Scholar
Bazant, M.Z., Storey, B.D., Kornyshev, A.A.: Phys Rev Lett, 106, 4, (2011).Google Scholar
Aurbach, D., Zinigrad, E., Cohen, Y., and Teller, H.: Solid State Ionics, 148, 3, (2002).Google Scholar
Ely, D.R., Jana, A., García, R.E.: J Pow Sources, 272, (2014)CrossRefGoogle Scholar
Mayers, M.Z., Kaminski, J.W., Miller, T.F. III.: J. Phys Chem C, 116, 50, (2012).Google Scholar
Bird, R.B., Stewart, W.E. and Lightfoot, E.N.. john wiley & sons, (1960).Google Scholar
Bard, A. J., Faulkner, L.R.: Wiley & Sons, (1980).Google Scholar
Bai, P., Li, J., Brushett, F.R. and Bazant, M.Z.. En & Env Sci, 9,10, (2016).Google Scholar
Brissot, C., Rosso, M., Chazalviel, J. N., and Lascaud, S. &: J Pow Sources, 81(1999).Google Scholar
Li, J., Murphy, E., Winnick, J., and Kohl, P.A.: J Pow Sources, 102,1, (2001).Google Scholar