TY - JOUR
T1 - Enabling All-Solid-State Lithium-Carbon Dioxide Battery Operation in a Wide Temperature Range
AU - Zhao, Jianyun
AU - Wang, Yang
AU - Zhao, Hongyang
AU - Liu, Limin
AU - Li, Shengtao
AU - Hu, Xiaofei
AU - Ding, Shujiang
N1 - Publisher Copyright:
© 2024 American Chemical Society
PY - 2024/2/13
Y1 - 2024/2/13
N2 - Flexible all-solid-state lithium-carbon dioxide batteries (FASSLCBs) are recognized as a next-generation energy storage technology by solving safety and shuttle effect problems. However, the present FASSLCBs rely heavily on high-temperature operation due to sluggish solid-solid-gas multiphase mass transfer and unclear capacity degradation mechanism. Herein, we designed bicontinuous hierarchical porous structures (BCHPSs) for both solid polymer electrolyte and cathode for FASSLCBs to facilitate the mass transfer in all connected directions. The formed large Lewis acidic surface effectively promotes the lithium salt dissociation and the CO2 conversion. Furthermore, it is unraveled that the battery capacity degradation originates from the “dead Li2CO3” formation, which is inhibited by the fast decomposition of Li2CO3. Accordingly, the assembled FASSLCBs exhibit an excellent cycling stability of 133 cycles at 60 °C, which is 2.7 times longer than that without BCHPSs, and the FASSLCBs can be operated repeatedly even at room temperature. This BCHPS method and fundamental deactivation mechanism provide a perspective for designing FASSLCBs with long cycling life.
AB - Flexible all-solid-state lithium-carbon dioxide batteries (FASSLCBs) are recognized as a next-generation energy storage technology by solving safety and shuttle effect problems. However, the present FASSLCBs rely heavily on high-temperature operation due to sluggish solid-solid-gas multiphase mass transfer and unclear capacity degradation mechanism. Herein, we designed bicontinuous hierarchical porous structures (BCHPSs) for both solid polymer electrolyte and cathode for FASSLCBs to facilitate the mass transfer in all connected directions. The formed large Lewis acidic surface effectively promotes the lithium salt dissociation and the CO2 conversion. Furthermore, it is unraveled that the battery capacity degradation originates from the “dead Li2CO3” formation, which is inhibited by the fast decomposition of Li2CO3. Accordingly, the assembled FASSLCBs exhibit an excellent cycling stability of 133 cycles at 60 °C, which is 2.7 times longer than that without BCHPSs, and the FASSLCBs can be operated repeatedly even at room temperature. This BCHPS method and fundamental deactivation mechanism provide a perspective for designing FASSLCBs with long cycling life.
KW - bicontinuous hierarchical porous structures
KW - flexible energy storage technology
KW - lithium−carbon dioxide battery
KW - solid polymer electrolyte
KW - wide temperature range battery
UR - https://www.scopus.com/pages/publications/85185002765
U2 - 10.1021/acsnano.3c12522
DO - 10.1021/acsnano.3c12522
M3 - 文章
C2 - 38311845
AN - SCOPUS:85185002765
SN - 1936-0851
VL - 18
SP - 5132
EP - 5140
JO - ACS Nano
JF - ACS Nano
IS - 6
ER -