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Electroactive ZnO: Mechanisms, Conductivity, and Advances in Zn Alkaline Battery CyclingZinc oxide is of great interest for advanced energy devices because of its low cost, wide direct bandgap, non-toxicity, and facile electrochemistry. In zinc alkaline batteries, ZnO plays a critical role in electrode passivation, a process that hinders commercialization and remains poorly understood. Here, novel observations of an electroactive type of ZnO formed in Zn-metal alkaline electrodes are disclosed. The electrical conductivity of battery-formed ZnO is measured and found to vary by factors of up to 104, which provides a first-principles-based understanding of Zn passivation in industrial alkaline batteries. Simultaneous with this conductivity change, protons are inserted into the crystal structure and electrons are inserted into the conduction band in quantities up to ≈1020 cm−3 and ≈1 mAh gZnO−1. Electron insertion causes blue electrochromic coloration with efficiencies and rates competitive with leading electrochromic materials. The electroactivity of ZnO is evidently enabled by rapid crystal growth, which forms defects that complex with inserted cations, charge-balanced by the increase of conduction band electrons. This property distinguishes electroactive ZnO from inactive classical ZnO. Knowledge of this phenomenon is applied to improve cycling performance of industrial-design electrodes at 50% zinc utilization and the authors propose other uses for ZnO such as electrochromic devices.
Document ID
20230018585
Acquisition Source
2230 Support
Document Type
Accepted Manuscript (Version with final changes)
Authors
Brendan E. Hawkins ORCID
(City College of New York New York, New York, United States)
Damon E. Turney ORCID
(City College of New York New York, New York, United States)
Robert J. Messinger ORCID
(City College of New York New York, New York, United States)
Andrew M. Kiss ORCID
(National Synchrotron Light Source II Upton, United States)
Gautam G. Yadav
(City College of New York New York, New York, United States)
Sanjoy Banerjee
(City College of New York New York, New York, United States)
Timothy N. Lambert
(Sandia National Laboratories Albuquerque, United States)
Date Acquired
December 22, 2023
Publication Date
February 23, 2022
Publication Information
Publication: Advanced Energy Materials
Publisher: Wiley/Wiley-VCH Verlag
Volume: 12
Issue: 15
Issue Publication Date: April 21, 2022
ISSN: 1614-6832
e-ISSN: 1614-6840
Subject Category
Chemistry and Materials (General)
Funding Number(s)
CONTRACT_GRANT: 80NSSC19M0199
CONTRACT_GRANT: DE-NA-0003525
CONTRACT_GRANT: DE-SC0012704
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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