TY - JOUR
T1 - Mechanistic investigation of interfacial stability in composite cathode for all-solid-state batteries
AU - Pan, Hongkun
AU - Zhao, Bosheng
AU - Lai, Haoyuan
AU - Huang, Qiqiang
AU - Xiao, Zuoguo
AU - Liu, Hao
AU - Chen, Xinman
AU - Ren, Dongsheng
AU - Lu, Languang
AU - Liu, Xiang
AU - Ouyang, Minggao
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/15
Y1 - 2025/11/15
N2 - In all-solid-state batteries (ASSBs), the solid-solid interfaces (SSIs) between active particles and solid electrolyte (SE) undergo instability and debonding due to cyclic swelling and contraction of active particles, impairing Li transport within the composite cathode and exacerbating intergranular cracks. However, the mechanistic role of coupled electrochemical–mechanical fields in driving interfacial decohesion and particle rupture remains unresolved. Here, we present an interface collaborative model to investigate the effects of operational pressure, internal pores, open-pore cracks, Young's modulus (E), and Poisson's ratio (v) on the composite cathode. Our simulations reveal a dynamically synergistic evolution of interface debonding and intragranular cracking. Results show that interfacial debonding starts during charging, hindering Li transport between particles and SE. Meanwhile, concentration gradient polarization triggers and exacerbates intergranular cracks in anisotropic primary particles. The synergistic interaction between interfacial debonding and intergranular fracture accelerates battery performance degradation and leads to failure. Quantitative comparisons further indicate that operational pressure and controlled internal defects preserve interface integrity and mitigate stress, while exploring varied combinations of mechanical properties provides valuable guidance for composite cathode material design. This work provides theoretical guidance for elucidating the electrochemical-mechanical failure mechanisms in ASSBs composite cathode and supports the development of more robust composite cathode.
AB - In all-solid-state batteries (ASSBs), the solid-solid interfaces (SSIs) between active particles and solid electrolyte (SE) undergo instability and debonding due to cyclic swelling and contraction of active particles, impairing Li transport within the composite cathode and exacerbating intergranular cracks. However, the mechanistic role of coupled electrochemical–mechanical fields in driving interfacial decohesion and particle rupture remains unresolved. Here, we present an interface collaborative model to investigate the effects of operational pressure, internal pores, open-pore cracks, Young's modulus (E), and Poisson's ratio (v) on the composite cathode. Our simulations reveal a dynamically synergistic evolution of interface debonding and intragranular cracking. Results show that interfacial debonding starts during charging, hindering Li transport between particles and SE. Meanwhile, concentration gradient polarization triggers and exacerbates intergranular cracks in anisotropic primary particles. The synergistic interaction between interfacial debonding and intergranular fracture accelerates battery performance degradation and leads to failure. Quantitative comparisons further indicate that operational pressure and controlled internal defects preserve interface integrity and mitigate stress, while exploring varied combinations of mechanical properties provides valuable guidance for composite cathode material design. This work provides theoretical guidance for elucidating the electrochemical-mechanical failure mechanisms in ASSBs composite cathode and supports the development of more robust composite cathode.
KW - Composite cathode
KW - Interfacial debonding
KW - Intergranular cracks
KW - Parameter sensitivity
UR - https://www.scopus.com/pages/publications/105018671220
U2 - 10.1016/j.cej.2025.169639
DO - 10.1016/j.cej.2025.169639
M3 - 文章
AN - SCOPUS:105018671220
SN - 1385-8947
VL - 524
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 169639
ER -