GIST Researchers Develop Novel Electrode for Improving Flowless Zinc-Bromine Battery
A FLZBB consists of a positive electrode, a negative electrode, an electrolyte, and a separator to keep the electrodes apart. Unlike conventional zinc-bromine batteries, the electrolyte in FLZBB does not need to be pumped and is instead held in a gel-like container. Graphite felt (GF) is widely used as an electrode in many redox batteries due to its stability in acidic electrolytes. However, in FLZBBs, bromine and polybromide ions are formed within the GF-positive electrode during charging. These active materials can escape and diffuse uncontrollably to the negative electrode, causing self-discharge, which severely affects performance and lifespan. Many studies have explored approaches to suppress this crossover phenomenon, however, self-discharge remains a major issue for FLZBBs.
To address this issue, a team of researchers led by Professor
The researchers fabricated the NMC/GF electrodes using a simple, cost-effective evaporation-induced self-assembly method. In this method, a pristine GF felt was coated with precursor materials and mixed in a solvent, followed by drying and curing. When applied to an FLZBB, the new electrodes effectively suppressed the crossover of the active materials and prevented self-discharge. This success was attributed to the mesopores present on the GF fibers in the NMC/GF electrodes.
The FLZBB with NMC/GF electrodes demonstrated excellent Coulombic and energy efficiencies of 96% and 76%, respectively, at a current density of 20 mA cm-2, as well as a high-rate areal capacity of 2 mAh cm-2. Furthermore, the battery exhibited unprecedented durability, with charge/discharge cycling stability extended to over 10,000 cycles. Also, the thick GF electrode used can potentially reduce the overall price of the battery.
Highlighting the significance of this achievement,
Reference
Title of original paper: Achieving unprecedented cyclability of flowless zinc-bromine battery by nitrogen-doped mesoporous carbon on thick graphite felt electrode
Journal: Chemical Engineering Journal
DOI: https://doi.org/10.1016/j.cej.2024.151538
About the Gwangju Institute of Science and Technology (GIST)
http://www.gist.ac.kr/
Contact:
82 62 715 6253
[email protected]
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SOURCE Gwangju Institute of Science and Technology
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