TY - JOUR
T1 - Functional binders in lithium batteries
T2 - From molecular structure design to practical applications
AU - Lin, Caitian
AU - Ajdari, Farshad Boorboor
AU - Mao, Caiwang
AU - Abbasi, Fereshteh
AU - Pu, Aijing
AU - Cao, Guoqiang
AU - Luo, Ying
AU - Wang, Yingche
AU - Sun, Baoyu
AU - Xie, Jingying
AU - Song, Jiangxuan
N1 - Publisher Copyright:
© 2025 Published by Elsevier B.V.
PY - 2026/1
Y1 - 2026/1
N2 - Lithium batteries (LBs) are pivotal for meeting the escalating global need for high-performance energy storage devices. Despite their critical role in electrode and solid electrolyte fabrication, binders remain under-investigated compared to active materials, creating a significant knowledge-to-application gap. This review summarizes recent developments in binder design, focusing on their structure-property relationships. It starts with elucidating the operation and failure mechanisms of binders, underscoring their crucial roles and ideal properties in practical applications. Building on this foundation, it further elucidates molecular design strategies to impart multifunctionality to binders, including adhesion, mechanical properties, ionic/electronic conductivity, self-healing capabilities, interfacial stabilization and other functional attributes. Also, industrial application challenges and scale-up considerations for advanced binders are critically evaluated across three key aspects: ultra-thick electrodes, ultra-thin electrolytes and sustainability requirements, filling the gap between molecular design and practical applications of binders. This review outlines pathways for future development of functional binders, with the aim of providing new insights into the design of binders for next-generation high-energy-density LBs.
AB - Lithium batteries (LBs) are pivotal for meeting the escalating global need for high-performance energy storage devices. Despite their critical role in electrode and solid electrolyte fabrication, binders remain under-investigated compared to active materials, creating a significant knowledge-to-application gap. This review summarizes recent developments in binder design, focusing on their structure-property relationships. It starts with elucidating the operation and failure mechanisms of binders, underscoring their crucial roles and ideal properties in practical applications. Building on this foundation, it further elucidates molecular design strategies to impart multifunctionality to binders, including adhesion, mechanical properties, ionic/electronic conductivity, self-healing capabilities, interfacial stabilization and other functional attributes. Also, industrial application challenges and scale-up considerations for advanced binders are critically evaluated across three key aspects: ultra-thick electrodes, ultra-thin electrolytes and sustainability requirements, filling the gap between molecular design and practical applications of binders. This review outlines pathways for future development of functional binders, with the aim of providing new insights into the design of binders for next-generation high-energy-density LBs.
KW - binder
KW - electrode
KW - electrolyte
KW - lithium battery
KW - molecular design
UR - https://www.scopus.com/pages/publications/105030112868
U2 - 10.1016/j.mser.2025.101142
DO - 10.1016/j.mser.2025.101142
M3 - 文献综述
AN - SCOPUS:105030112868
SN - 0927-796X
VL - 168
JO - Materials Science and Engineering R: Reports
JF - Materials Science and Engineering R: Reports
M1 - 101142
ER -