Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/139702
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Type: Journal article
Title: Single atom catalysts for triiodide adsorption and fast conversion to boost the performance of aqueous zinc–iodine batteries
Author: Yang, F.
Long, J.
Yuwono, J.A.
Fei, H.
Fan, Y.
Li, P.
Zou, J.
Hao, J.
Liu, S.
Liang, G.
Lyu, Y.
Zheng, X.
Zhao, S.
Davey, K.
Guo, Z.
Citation: Energy and Environmental Science, 2023; 16(10):4630-4640
Publisher: Royal Society of Chemistry
Issue Date: 2023
ISSN: 1754-5692
1754-5706
Statement of
Responsibility: 
Fuhua Yang, Jun Long, Jodie A. Yuwono, Huifang Fei, Yameng Fan, Peng Li, Jinshuo Zou, Junnan Hao, Sailin Liu, Gemeng Liang, Yanqiu Lyu, Xiaobo Zheng, Shiyong Zhao, Kenneth Davey and Zaiping Guo
Abstract: Zinc–iodine (Zn–I2) batteries are promising for energy storage because of their low cost, environmental friendliness, and attractive energy density. However, triiodide dissolution and poor conversion kinetics hinder their application. Herein, we demonstrated that the ‘shuttle effect’ in Zn–I2 batteries can be suppressed via single atom catalyst (SAC) cathodes because of efficient catalytic activity in I2/I3 /I reactions and their ability to adsorb I3 . Based on DFT computations, an I poisoning mechanism was proposed for SAC selection to suppress the shuttle effect in Zn–I2 batteries. I formation and desorption are crucial to maintaining the catalytic and adsorption role of metallic elements. SACu favours the reduction of I2 to I and exhibits a low energy barrier to release I from the surface, thus allowing more rapid conversion kinetics, while at the same time suppressing the shuttle effect of I3 in Zn–I2 batteries. In contrast, without sufficient energy, the final product of I will remain adsorbed at the metal site of SAFe, SAMn, SAV, and SATi, thus killing the catalytic activity of SACs to facilitate the iodine reduction reaction (IRR). To confirm practicality, single-atom Cu-embedded nitrogen-doped Ketjen black (SACu@NKB), together with SACo@NKB and NKB, were synthesized and electrochemically assessed. The asprepared SACu@NKB outperformed the SACo@NKB and NKB cathodes in terms of reversible capacity and cycle life. In addition, a rate-limiting step in these redox reactions was identified, and overpotential was estimated, and these were found to be dependent on the d-band centre of SACs. A lower d-band centre can be associated with more optimal catalytic performance in SACs. This work reveals that the superior cycle life of Zn–I2 batteries is underpinned by the catalytic and adsorption role of metallic catalysts, and we report an in-depth understanding of how this boosts the performance of Zn–I2 batteries, with implications for future long-life battery design.
Keywords: Zinc–iodine (Zn–I2) batteries
triiodide dissolution
Rights: © The Royal Society of Chemistry 2023
DOI: 10.1039/d3ee01453c
Grant ID: http://purl.org/au-research/grants/arc/FL210100050
http://purl.org/au-research/grants/arc/LP160101629
http://purl.org/au-research/grants/arc/DP210101486
http://purl.org/au-research/grants/arc/DP200101862
http://purl.org/au-research/grants/arc/LE180100141
Published version: http://dx.doi.org/10.1039/d3ee01453c
Appears in Collections:Chemical Engineering publications

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