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Title: Realizing wide-temperature Zn metal anodes through concurrent interface stability regulation and solvation structure modulation
Authors: Hou, Z 
Lu, Z
Chen, Q
Zhang, B 
Issue Date: Nov-2021
Source: Energy storage materials, Nov. 2021, v. 42, p. 517-525
Abstract: Stable cycling of Zn metal anodes under thermal extremes remains a grand challenge with the corresponding failure mechanisms largely unexplored. Here, we unravel the origin of thermal instability during Zn plating/stripping. The low temperature renders deteriorative dendrites growth, while a high temperature causes aggravating parasitic reactions. Zn metal/electrolyte interface and electrolyte solvation chemistry are then regulated via the introduction of oligomer poly(ethylene glycol) dimethyl ether as a competitive-solvent into the aqueous electrolyte to circumvent these issues. Complementary experimental and theoretical studies demonstrate that the competitive-solvent shifts water-occupied interface into oligomer one through preferential Zn surface adsorption, enabling dendrite-free Zn morphologies. Furthermore, such solvent alters the electrolyte interaction by re-constructing oligomer/water hydrogen bonds and participating in the solvation sheath of Zn ions, which highly alleviates parasitic reactions. Consequently, Zn metal anodes deliver more than 1600 h Zn cyclic lifetime at all the tested temperatures of 0, 25 and 50 °C, over 10-fold enhancement than in pristine electrolytes. Application-wise, competitive-solvent suppresses the fast cathode dissolution because of highly reduced water activities and realizes the stable Zn/V2O5 full cells over a wide temperature range from -15 to 65 °C.
Keywords: Competitive-solvent
Dendrites growth
Parasitic reactions
Thermal instability
Wide-temperature
Zn metal anodes
Publisher: Elsevier
Journal: Energy storage materials 
ISSN: 2405-8297
EISSN: 2405-8289
DOI: 10.1016/j.ensm.2021.08.011
Rights: © 2021 Elsevier B.V. All rights reserved.
The following publication Hou, Z., Lu, Z., Chen, Q., & Zhang, B. (2021). Realizing wide-temperature Zn metal anodes through concurrent interface stability regulation and solvation structure modulation. Energy Storage Materials, 42, 517-525 is available at https://dx.doi.org/10.1016/j.ensm.2021.08.011.
© 2021. This manuscript version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/.
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