TY - JOUR
T1 - Taming Transport Gradients
T2 - Engineered Microstructures for Fast-Charging Thick Electrodes
AU - Niu, Xinya
AU - Lu, Yuyang
AU - Chen, Pengcheng
AU - Cao, Chengcheng
AU - Chang, Lige
AU - Liao, Xiangbiao
AU - He, Linghui
AU - Ni, Yong
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Pursuing higher energy density via thick electrodes inevitably intensifies lithium transport limitations and mechanical degradation, critical barriers to fast charging. The root cause lies in intrinsic gradient fluxes–ionic, electronic, and reaction-driven–along the electrode thickness due to heterogeneous electrochemical environment. This review proposes the “Match Principle” as a unifying design framework. It creates structural gradients (e.g., porosity, conductivity, particle size) along the thickness direction that align with these inherent flux gradients. Such matching optimizes local charge-transport kinetics and mitigates damage heterogeneity. In this review, the principle's theoretical foundation is first stated. Recent advances in fabricating thick electrodes that implement such gradient designs to improve performance are then summarized. Concluding perspectives further highlight advanced electrode structure manufacturing processes, advanced characterization methods, and AI-assisted design, as essential tools for the principled design and industrialization of next-generation thick electrodes.
AB - Pursuing higher energy density via thick electrodes inevitably intensifies lithium transport limitations and mechanical degradation, critical barriers to fast charging. The root cause lies in intrinsic gradient fluxes–ionic, electronic, and reaction-driven–along the electrode thickness due to heterogeneous electrochemical environment. This review proposes the “Match Principle” as a unifying design framework. It creates structural gradients (e.g., porosity, conductivity, particle size) along the thickness direction that align with these inherent flux gradients. Such matching optimizes local charge-transport kinetics and mitigates damage heterogeneity. In this review, the principle's theoretical foundation is first stated. Recent advances in fabricating thick electrodes that implement such gradient designs to improve performance are then summarized. Concluding perspectives further highlight advanced electrode structure manufacturing processes, advanced characterization methods, and AI-assisted design, as essential tools for the principled design and industrialization of next-generation thick electrodes.
KW - charge-transport kinetics
KW - match principles
KW - mechanical damage heterogeneity
KW - structural design
KW - thick electrodes
UR - https://www.scopus.com/pages/publications/105039953991
U2 - 10.1002/smll.202514943
DO - 10.1002/smll.202514943
M3 - Review article
AN - SCOPUS:105039953991
SN - 1613-6810
JO - Small
JF - Small
ER -