TY - JOUR
T1 - Spontaneous and field-induced crystallographic reorientation of metal electrodeposits at battery anodes
AU - Zheng, Jingxu
AU - Yin, Jiefu
AU - Zhang, Duhan
AU - Li, Gaojin
AU - Bock, David C.
AU - Tang, Tian
AU - Zhao, Qing
AU - Liu, Xiaotun
AU - Warren, Alexander
AU - Deng, Yue
AU - Jin, Shuo
AU - Marschilok, Amy C.
AU - Takeuchi, Esther S.
AU - Takeuchi, Kenneth J.
AU - Rahn, Christopher D.
AU - Archer, Lynden A.
N1 - Publisher Copyright:
© 2020 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC).
PY - 2020/6
Y1 - 2020/6
N2 - The propensity of metal anodes of contemporary interest (e.g., Li, Al, Na, and Zn) to form non-planar, dendritic morphologies during battery charging is a fundamental barrier to achievement of full reversibility. We experimentally investigate the origins of dendritic electrodeposition of Zn, Cu, and Li in a three-electrode electrochemical cell bounded at one end by a rotating disc electrode. We find that the classical picture of ion depletion-induced growth of dendrites is valid in dilute electrolytes but is essentially irrelevant in the concentrated (≥1 M) electrolytes typically used in rechargeable batteries. Using Zn as an example, we find that ion depletion at the mass transport limit may be overcome by spontaneous reorientation of Zn crystallites from orientations parallel to the electrode surface to dominantly homeotropic orientations, which appear to facilitate contact with cations outside the depletion layer. This chemotaxis-like process causes obvious texturing and increases the porosity of metal electrodeposits.
AB - The propensity of metal anodes of contemporary interest (e.g., Li, Al, Na, and Zn) to form non-planar, dendritic morphologies during battery charging is a fundamental barrier to achievement of full reversibility. We experimentally investigate the origins of dendritic electrodeposition of Zn, Cu, and Li in a three-electrode electrochemical cell bounded at one end by a rotating disc electrode. We find that the classical picture of ion depletion-induced growth of dendrites is valid in dilute electrolytes but is essentially irrelevant in the concentrated (≥1 M) electrolytes typically used in rechargeable batteries. Using Zn as an example, we find that ion depletion at the mass transport limit may be overcome by spontaneous reorientation of Zn crystallites from orientations parallel to the electrode surface to dominantly homeotropic orientations, which appear to facilitate contact with cations outside the depletion layer. This chemotaxis-like process causes obvious texturing and increases the porosity of metal electrodeposits.
UR - https://www.scopus.com/pages/publications/85086805882
U2 - 10.1126/sciadv.abb1122
DO - 10.1126/sciadv.abb1122
M3 - Article
C2 - 32596468
AN - SCOPUS:85086805882
SN - 2375-2548
VL - 6
JO - Science Advances
JF - Science Advances
IS - 25
M1 - eabb1122
ER -