Title:
Understanding and Improving Zinc Anodes for High-Energy Rechargeable Alkaline Batteries

dc.contributor.advisor Liu, Nian
dc.contributor.author Zhang, Yamin
dc.contributor.committeeMember Jones, Christopher
dc.contributor.committeeMember Hess, Dennis
dc.contributor.committeeMember Reichmanis, Elsa
dc.contributor.committeeMember McDowell, Matthew
dc.contributor.department Chemical and Biomolecular Engineering
dc.date.accessioned 2021-02-04T14:09:17Z
dc.date.available 2021-12-01T12:20:00Z
dc.date.created 2020-12
dc.date.issued 2020-10-12
dc.date.submitted December 2020
dc.date.updated 2021-02-04T14:09:18Z
dc.description.abstract Batteries with aqueous electrolytes generally feature better intrinsic safety, higher ionic conductivity and lower cost compared with flammable organic electrolytes. Metallic zinc as a rechargeable anode material for aqueous batteries has gained tremendous attention with merits of intrinsic safety, low cost, and high theoretical volumetric capacity (5,854 mAh cm-3). Among zinc-based batteries, Zn-air batteries are promising with high theoretical gravimetric and volumetric energy densities (1,093 Wh kg-1 and 6,134 Wh L-1, respectively). Rechargeable zinc anode has achieved big progress in neutral electrolytes, yet developed slowly in alkaline electrolytes, which are kinetically favorable for air cathodes. Passivation, dissolution, hydrogen evolution reaction (HER), and dendrite formation are four reasons for irreversibility of zinc anodes in alkaline electrolytes. This thesis comprises three parts: material, mechanism, and device. From the aspect of material, four types of zinc anodes were designed and synthesized to overcome above issues and improve their reversibility. These anodes include graphene oxide-modified (Zn@GO), lasagna-inspired (ZnO@GO), sealed (ZnO@TiNxOy), and hydrogen-evolution-suppressing (ZnO@TiO2) anodes, which improve the deep cycling performance when cycled at lean electrolyte. From the aspect of mechanism, the underlying mechanism of the spatial control of zinc deposition on zinc alloy anodes has been elucidated for the first time. The spatially controlled Zn deposition was visualized for the first time by operando optical microscopy. From the aspect of device, it was discovered that the testing device material has a clear effect on the hydrogen evolution. Specifically, stainless-steel coin cell cases, as widely used devices in research laboratories, accelerate the HER. Plastic devices were successfully constructed to minimize the HER. Future research on rechargeable Zn-air batteries is discussed.
dc.description.degree Ph.D.
dc.embargo.terms 2021-12-01
dc.format.mimetype application/pdf
dc.identifier.uri https://smartech.gatech.edu/handle/1853/64247
dc.language.iso en_US
dc.publisher Georgia Institute of Technology
dc.subject Zinc battery
dc.subject Passivation
dc.subject Dissolution
dc.subject Hydrogen evolution
dc.subject Dendrite formation
dc.subject Mechanism
dc.subject Device
dc.subject Operando optical microscopy
dc.title Understanding and Improving Zinc Anodes for High-Energy Rechargeable Alkaline Batteries
dc.type Text
dc.type.genre Dissertation
dspace.entity.type Publication
local.contributor.advisor Liu, Nian
local.contributor.corporatename School of Chemical and Biomolecular Engineering
local.contributor.corporatename College of Engineering
relation.isAdvisorOfPublication 0de88760-a0dc-43c6-af8f-f0b570aec759
relation.isOrgUnitOfPublication 6cfa2dc6-c5bf-4f6b-99a2-57105d8f7a6f
relation.isOrgUnitOfPublication 7c022d60-21d5-497c-b552-95e489a06569
thesis.degree.level Doctoral
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