
FOLLOWUS
School of Chemical and Blasting Engineering, Anhui University of Science and Technology, Huainan 232001, China
Engineering Technology Research Center of Coal Resources Comprehensive Utilization, Huainan 232001, China
Corresponding authors. E-mail addresses: chlwu2@163.com(C. Wu)
maolirui123@163.com(L. Mao).
收稿:2025-07-03,
修回:2025-08-22,
录用:2025-09-03,
网络首发:2025-10-23,
纸质出版:2026-01
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Li Zhixiong, Wu Chengli, Yin ChengJie, 等. Dual-regulated Cu-doped MnO2nanowires confined in waste-derived carbon framework for high-performance aqueous zinc-ion batteries[J]. 中国化学工程学报(英文), 2026,89(1):102-111.
Li Zhixiong, Wu Chengli, Yin ChengJie, et al. Dual-regulated Cu-doped MnO2nanowires confined in waste-derived carbon framework for high-performance aqueous zinc-ion batteries[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 102-111.
Li Zhixiong, Wu Chengli, Yin ChengJie, 等. Dual-regulated Cu-doped MnO2nanowires confined in waste-derived carbon framework for high-performance aqueous zinc-ion batteries[J]. 中国化学工程学报(英文), 2026,89(1):102-111. DOI:
Li Zhixiong, Wu Chengli, Yin ChengJie, et al. Dual-regulated Cu-doped MnO2nanowires confined in waste-derived carbon framework for high-performance aqueous zinc-ion batteries[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 102-111. DOI:
MnO
2
stands out among cathode materials for aqueous zinc-ion batteries (AZIBs) high capacity and voltage
it has poor stability and slow Zn
2+
kinetics. Herein
we propose a dual-regulation strategy integrating copper doping and carbon-based confinement. Residual carbon (RC)
derived from acidwashed coal gasification fine slag (CGFS)
serves as a conductive and porous framework for the directional growth of Cu-doped MnO
2
nanowires (CMO@RC). The synergistic modulation of Cu-induced electronic structure tuning and carbon confinement induced mechanical/electrical stabilization significantly enhances Zn
2+
transport and electrochemical performance. CMO@RC achieves a high capacity of 563 mA·h·g
- 1
at 0.1 A·g
- 1
and maintains 106% after 1000 cycles at 1 A·g
- 1
. Kinetic analyses confirm the dual-path Zn
2+
diffusion and accelerated reaction kinetics
while DFT calculations reveal that Cu doping enhances Mn 3d orbital hybridization and electron interaction with carbon
elevating the density of states near the Fermi level and reducing charge transfer barriers. Furthermore
pouch cell testing demonstrates outstanding flexibility and mechanical resilience. This study provides a cost-effective and scalable strategy for high-performance AZIBs
leveraging both experimental and theoretical validations.
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