TY - JOUR
T1 - Multiband Spectrum Method for Quantifying the Ionic Contribution of Volume Strategy and Filler Strategy
T2 - Enhancing the Ionic Transport Channels for Polymeric Solid-State Batteries
AU - Huang, Shanyan
AU - Zhang, Kai Lun
AU - Li, Na
AU - Song, Wei Li
AU - Zhu, Yan Li
AU - Jiao, Shuqiang
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/11/21
Y1 - 2024/11/21
N2 - As a promising solution for solid-state batteries with high energy density and safety, understanding the mechanism of fast ion conduction in polymer-ceramic composite solid-state electrolytes (CSEs) is still a challenging task. Herein, we understand the enhanced ion conduction in CSEs using a series of ionic spectra. Ionic insight is extended to ion conduction in CSEs, resolving the mechanism of fast ion migration. With the cooperation of enhanced interface and filler ion conduction, the CSE with a conductive filler exhibits ionic conductivity higher than that of CSEs with insulating fillers. Volume and filler strategies of CSE design are proposed based on volcanic maps of conductivity. An equivalent circuit is established to describe the conduction mechanism of CSEs. Specifically, Rinterface and Rfiller are in parallel to describe the cooperation of interface and filler conduction. They are in series with Rbulk, which represents a competition between the fundamental matrix and enhanced interface conduction. The proposed conduction model is verified though the energy storage performance of solid-state batteries; a fast dynamic process promises a better rate performance and cycling stability of solid-state batteries. These results provide deep insights into fast ion conduction in ceramic-polymer CSEs, which are indispensable to develop high-performance solid-state batteries.
AB - As a promising solution for solid-state batteries with high energy density and safety, understanding the mechanism of fast ion conduction in polymer-ceramic composite solid-state electrolytes (CSEs) is still a challenging task. Herein, we understand the enhanced ion conduction in CSEs using a series of ionic spectra. Ionic insight is extended to ion conduction in CSEs, resolving the mechanism of fast ion migration. With the cooperation of enhanced interface and filler ion conduction, the CSE with a conductive filler exhibits ionic conductivity higher than that of CSEs with insulating fillers. Volume and filler strategies of CSE design are proposed based on volcanic maps of conductivity. An equivalent circuit is established to describe the conduction mechanism of CSEs. Specifically, Rinterface and Rfiller are in parallel to describe the cooperation of interface and filler conduction. They are in series with Rbulk, which represents a competition between the fundamental matrix and enhanced interface conduction. The proposed conduction model is verified though the energy storage performance of solid-state batteries; a fast dynamic process promises a better rate performance and cycling stability of solid-state batteries. These results provide deep insights into fast ion conduction in ceramic-polymer CSEs, which are indispensable to develop high-performance solid-state batteries.
UR - http://www.scopus.com/inward/record.url?scp=85209562804&partnerID=8YFLogxK
U2 - 10.1021/acs.jpclett.4c02525
DO - 10.1021/acs.jpclett.4c02525
M3 - Article
C2 - 39535287
AN - SCOPUS:85209562804
SN - 1948-7185
VL - 15
SP - 11629
EP - 11636
JO - Journal of Physical Chemistry Letters
JF - Journal of Physical Chemistry Letters
IS - 46
ER -