TY - JOUR
T1 - Hetero-Packing Nanostructures of Iron (III) Fluoride Nanocomposite Cathode for High-Rate and Long-Life Rechargeable Lithium-Ion Batteries
AU - Guan, Tuxiang
AU - Zhao, Lei
AU - Zhou, Yu
AU - Qiu, Xinming
AU - Wu, Jian
AU - Wu, Guan
AU - Bao, Ningzhong
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/9/8
Y1 - 2023/9/8
N2 - High-performance metal fluoride cathodes are crucial to design ultrahigh-capacity lithium metal batteries for taking part in the next-generation energy storage market. However, their insulating nature and sluggish reaction kinetics result in voltage hysteresis, low-rate capability, and rapid capacity degradation. Herein, a generalizable one-step melt synthesis approach is reported to construct hetero-packing nanostructures of FeF3@C-Asphalt nanocomposites, where ultrafine FeF3 nanoparticles are homogeneously covered by a high conductive carbon framework. By the electrochemical kinetics calculation and multiphysics simulations, this FeF3@C-Asphalt nanocomposites consist of ultrafine nanoparticles and a constrained carbon framework, offering a high tap density (1.8 g cm−3), significantly improved conductivity, and enhanced charge pathways, and thereby enabling the fast electron transport, rapid ion migration, depressed electrode internal stress, and mitigated volume expansion. As a result, the optimized FeF3@C-Asphalt cathode delivers a high capacity of 517 mAh g−1, high cyclic stability of 87.5% after 1000 cycles under 5 A g−1 (10 C), and excellent capacity retention of 77% from 0.5 A g−1 to 10 A g−1 (20 C, 250 mAh g−1). The work provides an easy-to-operate and low-cost approach to accomplish high cyclic stability metal fluoride-lithium batteries, which will guide the development of fast-charging ultrahigh-capacity cathode materials for the new energy industry.
AB - High-performance metal fluoride cathodes are crucial to design ultrahigh-capacity lithium metal batteries for taking part in the next-generation energy storage market. However, their insulating nature and sluggish reaction kinetics result in voltage hysteresis, low-rate capability, and rapid capacity degradation. Herein, a generalizable one-step melt synthesis approach is reported to construct hetero-packing nanostructures of FeF3@C-Asphalt nanocomposites, where ultrafine FeF3 nanoparticles are homogeneously covered by a high conductive carbon framework. By the electrochemical kinetics calculation and multiphysics simulations, this FeF3@C-Asphalt nanocomposites consist of ultrafine nanoparticles and a constrained carbon framework, offering a high tap density (1.8 g cm−3), significantly improved conductivity, and enhanced charge pathways, and thereby enabling the fast electron transport, rapid ion migration, depressed electrode internal stress, and mitigated volume expansion. As a result, the optimized FeF3@C-Asphalt cathode delivers a high capacity of 517 mAh g−1, high cyclic stability of 87.5% after 1000 cycles under 5 A g−1 (10 C), and excellent capacity retention of 77% from 0.5 A g−1 to 10 A g−1 (20 C, 250 mAh g−1). The work provides an easy-to-operate and low-cost approach to accomplish high cyclic stability metal fluoride-lithium batteries, which will guide the development of fast-charging ultrahigh-capacity cathode materials for the new energy industry.
KW - asphalt-based carbon materials
KW - high cyclic stability
KW - high rate
KW - iron fluoride
KW - lithium-ion batteries
UR - http://www.scopus.com/inward/record.url?scp=85164784284&partnerID=8YFLogxK
U2 - 10.1002/aenm.202301680
DO - 10.1002/aenm.202301680
M3 - 文章
AN - SCOPUS:85164784284
SN - 1614-6832
VL - 13
JO - Advanced Energy Materials
JF - Advanced Energy Materials
IS - 34
M1 - 2301680
ER -