Rapid Temperature Shock Suppresses Graphitized Stacking: Guiding Quasi-Ionic-Bonding Na Storage in Hard Carbon

Conventional coal pyrolysis tends to drive aromatic condensation and graphitic stacking, which limits closed-pore formation and leads to sluggish Na + transport, low plateau capacity and poor initial Coulombic efficiency (ICE) in coal-derived hard carbon. Here we develop a rapid temperature shock (RTS) strategy to redirect coal carbonization through a kinetically constrained thermal pathway. The rapid heating restrains graphitic rearrangement and secondary condensation, while promoting cross-linked disordered carbon reconstruction. The resulting RTS-HC exhibits an enlarged d 002 spacing of 0.392 nm, abundant closed nanopores and a turbostratic carbon framework. These structural features lower the Na + migration barrier to 0.38 eV and facilitate reversible low-potential Na storage. Density functional theory calculations further indicate that confined Na-carbon interactions with partial ionic character stabilize Na storage within closed pores. As a result, RTS-HC delivers a reversible capacity of 303.6 mAh g -1 at 30 mA g -1 , a high ICE of 89% and a plateau contribution of 67%. It also retains 80.4% of its capacity after 1000 cycles at 500 mA g -1 , outperforming the conventionally pyrolyzed counterpart. This work provides a kinetic carbonization strategy for converting coal into high-performance hard carbon anodes for sodium-ion batteries.

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Publication Details

Journal
Green Energy & Environment
Published
2026-09-01
DOI
https://doi.org/10.1016/j.gee.2026.08.007
Primary Topic
Fiber-reinforced polymer composites
Type
article
Field-Weighted Citation Impact
0.00

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article

Rapid Temperature Shock Suppresses Graphitized Stacking: Guiding Quasi-Ionic-Bonding Na Storage in Hard Carbon

Kai-Yang Zhang, Xing‐Long Wu, Zhen‐Yi Gu, Rong‐Jie Zhe et al.
Green Energy & Environment
Fiber-reinforced polymer composites
article

Rapid Temperature Shock Suppresses Graphitized Stacking: Guiding Quasi-Ionic-Bonding Na Storage in Hard Carbon

Kai-Yang Zhang, Xing‐Long Wu, Zhen‐Yi Gu, Rong‐Jie Zhe, Shuo-Hang Zheng, Xiao-Tong Wang, Xin-Yu Wang, Ben-Jian Xin
article en

Abstract

Conventional coal pyrolysis tends to drive aromatic condensation and graphitic stacking, which limits closed-pore formation and leads to sluggish Na + transport, low plateau capacity and poor initial Coulombic efficiency (ICE) in coal-derived hard carbon. Here we develop a rapid temperature shock (RTS) strategy to redirect coal carbonization through a kinetically constrained thermal pathway. The rapid heating restrains graphitic rearrangement and secondary condensation, while promoting cross-linked disordered carbon reconstruction. The resulting RTS-HC exhibits an enlarged d 002 spacing of 0.392 nm, abundant closed nanopores and a turbostratic carbon framework. These structural features lower the Na + migration barrier to 0.38 eV and facilitate reversible low-potential Na storage. Density functional theory calculations further indicate that confined Na-carbon interactions with partial ionic character stabilize Na storage within closed pores. As a result, RTS-HC delivers a reversible capacity of 303.6 mAh g -1 at 30 mA g -1 , a high ICE of 89% and a plateau contribution of 67%. It also retains 80.4% of its capacity after 1000 cycles at 500 mA g -1 , outperforming the conventionally pyrolyzed counterpart. This work provides a kinetic carbonization strategy for converting coal into high-performance hard carbon anodes for sodium-ion batteries.

Green Energy & Environment
Northeast Normal University (CN)
Jilin Province Development and Reform Commission, National Natural Science Foundation of China, People's Government of Jilin Province, National Postdoctoral Program for Innovative Talents, National Key Research and Development Program of China, Chongqing Municipality Key Research and Development Program of China
Openalex Percentile: Top 19%
Fiber-reinforced polymer composites
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