Heterojunction-Coated Graphite Anode Enables Fast Charging via Built-In Electric Field-Regulated Interfacial Li-Ion Transport

Гетеропереходное покрытие графитового анода обеспечивает быструю зарядку за счёт регулирования межфазного транспорта Li‑ионов встроенным электрополем
Luoyi Ding, Zheng Liang, Yeliang Sheng, Xinyang Yue, Wei Hao, Jiyi Zhu
2025-09-24

Nb2O5/Zr6Nb2O17 heterojunctionbuilt-in electric fieldfast charginggraphite anodeinterfacial Li-ion transport
The sluggish Li-ion transport kinetics across anode interfaces remain a critical bottleneck limiting the fast-charging capability of lithium-ion batteries (LIBs). Herein, we design a lithiophilic Nb 2 O 5 /Zr 6 Nb 2 O 17 (N/ZN) heterojunction to regulate the Li-ion transport behavior across the graphite anode interface. The tailored work function difference between Nb 2 O 5 and Zr 6 Nb 2 O 17 components establishes an internal built-in electric field that synergistically addresses the challenges: (i) accelerating interfacial Li ion (Li + ) diffusion; (ii) optimizing Li intercalation/deintercalation kinetics; (iii) lowering the desolvation energy barrier. Therefore, the graphite anode with the N/ZN coating achieves 80.9% capacity retention at 6C-rate charging while effectively suppressing Li plating. This work demonstrates a heterojunction engineering strategy that concurrently enhances ionic transport and interfacial stability, offering a pathway for developing fast-charging anodes.
1
A lithiophilic Nb2O5/Zr6Nb2O17 (N/ZN) heterojunction coating is designed to regulate Li-ion transport at the graphite anode interface.
2
Graphite anode with the N/ZN coating achieves 80.9% capacity retention under 6C-rate charging while effectively suppressing Li plating.
3
Heterojunction engineering concurrently enhances ionic transport and interfacial stability, enabling a pathway for fast-charging anodes.
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The N/ZN heterojunction coating optimizes Li intercalation/deintercalation kinetics and lowers the desolvation energy barrier at the interface.
5
Work function difference between Nb2O5 and Zr6Nb2O17 creates an internal built-in electric field that accelerates interfacial Li+ diffusion.

Graphite anode coated with a lithiophilic Nb2O5/Zr6Nb2O17 (N/ZN) heterojunction

Interfacial Li-ion transport and related kinetics (Li+ diffusion, intercalation/deintercalation, desolvation) regulated by the built-in electric field of the N/ZN heterojunction to enable fast charging and suppress Li plating

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2025-09-24
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Authors
Luoyi Ding
Zheng Liang
Yeliang Sheng
Xinyang Yue
Wei Hao
Jiyi Zhu
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