TY - JOUR
T1 - Intrinsic carbon fiber electrodes for load-bearing aluminum-ion structural battery composites
T2 - Multifunctional performance and intercalation mechanism
AU - Feng, Zhanlin
AU - Ye, Jinrui
AU - Liu, Kai
AU - Tian, Lei
AU - Yu, Chunting
AU - Li, Dan
AU - Ji, Xiaolong
AU - Jiang, Zhongqing
N1 - Publisher Copyright:
© 2026 Published by Elsevier Ltd.
PY - 2026/12/1
Y1 - 2026/12/1
N2 - The development of aluminum-ion structural battery composites (Al-SBCs) is currently hindered by the trade-off between electrochemical activity and mechanical integrity. Conventional surface modification strategies often introduce weak boundary layers, leading to premature structural failure. Herein, we propose an intrinsic aluminum storage strategy utilizing pristine mesophase pitch-based carbon fiber (TC600) to achieve a synergistic enhancement of both mechanical and electrochemical performance. Benefiting from the high degree of graphitization and highly ordered microstructure, the pristine fiber delivers a substantial specific capacity of 62.7 mAh/g without extrinsic activation. Crucially, this intrinsic approach significantly bolsters interfacial mechanical properties: the composite interface achieves a maximum lap-shear load of 3413 N and a lap-shear strength of 5.46 MPa, representing a 156.3% improvement over the coated counterpart, and retains 91.6% of the pristine single-fiber tensile strength after cycling. Operando characterizations coupled with theoretical simulations elucidate the underlying storage mechanism: in situ XRD and Raman spectroscopy reveal a bulk intercalation process governed by the Daumas-Hérold model, characterized by the dynamic evolution of Stage4 graphite intercalation compounds and a structural transition from ordered AB stacking to a turbostratic texture. Furthermore, simulations uncover a novel “rotation-assisted translation” diffusion mechanism for bulky AlCl4− anions within the confined gallery. This mechanism exhibits an ultra-low migration barrier (0.15–0.25 eV), enabling rapid diffusion kinetics. This work not only identifies the critical microstructural determinants for intrinsic aluminum storage but also provides a theoretical foundation for designing next-generation high-performance structural batteries.
AB - The development of aluminum-ion structural battery composites (Al-SBCs) is currently hindered by the trade-off between electrochemical activity and mechanical integrity. Conventional surface modification strategies often introduce weak boundary layers, leading to premature structural failure. Herein, we propose an intrinsic aluminum storage strategy utilizing pristine mesophase pitch-based carbon fiber (TC600) to achieve a synergistic enhancement of both mechanical and electrochemical performance. Benefiting from the high degree of graphitization and highly ordered microstructure, the pristine fiber delivers a substantial specific capacity of 62.7 mAh/g without extrinsic activation. Crucially, this intrinsic approach significantly bolsters interfacial mechanical properties: the composite interface achieves a maximum lap-shear load of 3413 N and a lap-shear strength of 5.46 MPa, representing a 156.3% improvement over the coated counterpart, and retains 91.6% of the pristine single-fiber tensile strength after cycling. Operando characterizations coupled with theoretical simulations elucidate the underlying storage mechanism: in situ XRD and Raman spectroscopy reveal a bulk intercalation process governed by the Daumas-Hérold model, characterized by the dynamic evolution of Stage4 graphite intercalation compounds and a structural transition from ordered AB stacking to a turbostratic texture. Furthermore, simulations uncover a novel “rotation-assisted translation” diffusion mechanism for bulky AlCl4− anions within the confined gallery. This mechanism exhibits an ultra-low migration barrier (0.15–0.25 eV), enabling rapid diffusion kinetics. This work not only identifies the critical microstructural determinants for intrinsic aluminum storage but also provides a theoretical foundation for designing next-generation high-performance structural batteries.
KW - Aluminum-ion structural battery composites
KW - Daumas-Hérold model
KW - Diffusion kinetics
KW - Intercalation mechanism
KW - Intrinsic electrochemical capability
KW - Mesophase pitch-based carbon fiber
UR - https://www.scopus.com/pages/publications/105047894876
U2 - 10.1016/j.est.2026.124283
DO - 10.1016/j.est.2026.124283
M3 - Article
AN - SCOPUS:105047894876
SN - 2352-152X
VL - 180
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 124283
ER -