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Updated: Sep 16, 2025

Non-aqueous Electrode Processing and Construction of Lithium-ion Coin Cells
Published on: February 1, 2016
Highly textured metal anodes for stable aqueous batteries: Fabrication and characterization
Shifeng Hong1, Mingjia Fang1, Samuel Baffour2
1Materials Science and Engineering, Bard Hall, Cornell University, Ithaca, NY 14853, USA.
Abstract:
We report a purely mechanical "cold-compression flow" method for fabricating Zn, Sn, and In substrates with tunable crystallographic textures. Using textured Zn as a model system, we investigate Zn electrocrystallization and demonstrate correlated growth of crystalline films with correlation lengths from tens to hundreds of micrometers. At 5 milliamperes per square centimeter (mA/cm2), capacities between 20 and 82 milliampere hours per square centimeter (mA·hour/cm2) are achieved depending on substrate texture level. At higher currents (40 mA/cm2), capacities reach up to 604 mA·hour/cm2. Rotating disk electrode studies show that dominantly (002) textured Zn substrates exhibit enhanced corrosion resistance and reduced interphase passivation. We introduce an effective Damköhler number (Da*) to concisely describe morphological evolution during electrocrystallization across substrates with different textures. High-texture (002) Zn substrates substantially enhance performance in high-capacity (~20 mA·hour/cm2) symmetric Zn||Zn cells and full cells (Zn||δ-MnO2 and Zn||I2), enabling fast-charging and prolonged energy storage in coin and pouch rechargeable Zn battery formats.

