TY - JOUR
T1 - The synergistic effect of triazine-N and secondary amine-N anchors iodine species with MXene composite cathode for stable aqueous Zn–I2 battery
AU - Ma, Jing
AU - Linghu, Yaoyao
AU - Yuan, Kai
AU - Zhou, Rui
AU - Gao, Hui
AU - Zhao, Peihua
AU - Guo, Shaohui
AU - Wang, Huiqi
AU - Qu, Yongping
AU - Shen, Chao
AU - Xie, Keyu
N1 - Publisher Copyright:
© 2025
PY - 2025/11/1
Y1 - 2025/11/1
N2 - Aqueous Zn–I2 battery (AZIBs) has attracted wide attention with its low cost, high capacity, low reduction potential and high safety. Iodine-based materials have the advantages of environmental protection, excellent cycle stability and low cost. However, there are some challenges, such as poor conductivity, slow kinetics and solubility of iodine species. Therefore, an innovative approach is proposed that exhibits excellent electrical conductivity and effectively anchors iodine species through physical trap with microporous structure and strong chemical adsorption with the synergistic effects of triazine and secondary amine-N. The dynamic transfer mechanism between them enhances catalytic conversion of iodine. The melamine-formaldehyde polymer and MXenes (Ti3C2Tx) composite (NC@TC) is prepared as host material of iodine by the electrostatic self-assembly. DFT calculation indicates thermodynamically favorable adsorption of iodine species, significantly accelerating the iodine redox reaction kinetics. Specifically, it reaches a discharge capacity of 183.07 mAh g−1 at 1.0C ever after 200 cycles (1.0C = 211 mAh g−1). Moreover, it also has excellent cycling performance, maintaining 81.33 % capacity after 5000 cycles. Additionally, NC@TC cathodes maintain good electrochemical performance under high current conditions and pouch cell structures. This work highlights the potential of MXene-based composites as promising iodine host materials for advanced Zn–I2 batteries.
AB - Aqueous Zn–I2 battery (AZIBs) has attracted wide attention with its low cost, high capacity, low reduction potential and high safety. Iodine-based materials have the advantages of environmental protection, excellent cycle stability and low cost. However, there are some challenges, such as poor conductivity, slow kinetics and solubility of iodine species. Therefore, an innovative approach is proposed that exhibits excellent electrical conductivity and effectively anchors iodine species through physical trap with microporous structure and strong chemical adsorption with the synergistic effects of triazine and secondary amine-N. The dynamic transfer mechanism between them enhances catalytic conversion of iodine. The melamine-formaldehyde polymer and MXenes (Ti3C2Tx) composite (NC@TC) is prepared as host material of iodine by the electrostatic self-assembly. DFT calculation indicates thermodynamically favorable adsorption of iodine species, significantly accelerating the iodine redox reaction kinetics. Specifically, it reaches a discharge capacity of 183.07 mAh g−1 at 1.0C ever after 200 cycles (1.0C = 211 mAh g−1). Moreover, it also has excellent cycling performance, maintaining 81.33 % capacity after 5000 cycles. Additionally, NC@TC cathodes maintain good electrochemical performance under high current conditions and pouch cell structures. This work highlights the potential of MXene-based composites as promising iodine host materials for advanced Zn–I2 batteries.
KW - Aqueous Zn–I
KW - MXene
KW - Polymer
KW - Synergistic effect
UR - https://www.scopus.com/pages/publications/105016317950
U2 - 10.1016/j.cej.2025.168594
DO - 10.1016/j.cej.2025.168594
M3 - 文章
AN - SCOPUS:105016317950
SN - 1385-8947
VL - 523
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 168594
ER -