TY - JOUR
T1 - Wood-Derived Continuously Oriented Three-Phase Interfacial Channels for High-Performance Quasi-Solid-State Alkaline Zinc Batteries
AU - Li, Lanze
AU - Cao, Qinghe
AU - Wu, Yitian
AU - Zheng, Yu
AU - Tang, Hongxuan
AU - Ge, Jiujiu
AU - Liang, Mengdi
AU - Zhou, Bao
AU - Jiang, Baiyu
AU - Wu, Sai
AU - Wang, Fan
AU - Pang, Yajun
AU - Shen, Zhehong
AU - Guan, Cao
AU - Chen, Hao
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/6/28
Y1 - 2023/6/28
N2 - Although recently developed hybrid zinc (Zn) batteries integrate the benefits of both alkaline Zn and Zn–air batteries, the kinetics of the electrocatalytic oxygen reaction and mass transfer of the electrolyte, which are limited by the mismatched and disordered multiphase reaction's interfacial transfer channels, considerably inhibit the performance of hybrid Zn batteries. In this work, novel, continuously oriented three-phase interfacial channels at the cathode derived from the natural structure of pine wood are developed to address these challenges. A pine wood chip is carbonized and asymmetrically loaded with a hydrophilic active material to achieve the creation of a wood-derived cathode that integrates the active material, current collector, and continuously oriented three-phase reaction interfacial channels, which allows the reaction dynamics to be accelerated. Consequently, the assembled quasi-solid-state hybrid battery performs an extra charge–discharge process beyond that performed by a typical nickel (Ni)–Zn battery, resulting in a wide operating voltage range of 0.6–2.0 V and a superior specific capacity of 656.5 mAh g–1, in addition to an excellent energy density (644.7 Wh kg–1) and good durability. The ≈370% capacity improvement relative to the Ni–Zn battery alone makes the hybrid battery one of the best-performing alkaline Zn batteries.
AB - Although recently developed hybrid zinc (Zn) batteries integrate the benefits of both alkaline Zn and Zn–air batteries, the kinetics of the electrocatalytic oxygen reaction and mass transfer of the electrolyte, which are limited by the mismatched and disordered multiphase reaction's interfacial transfer channels, considerably inhibit the performance of hybrid Zn batteries. In this work, novel, continuously oriented three-phase interfacial channels at the cathode derived from the natural structure of pine wood are developed to address these challenges. A pine wood chip is carbonized and asymmetrically loaded with a hydrophilic active material to achieve the creation of a wood-derived cathode that integrates the active material, current collector, and continuously oriented three-phase reaction interfacial channels, which allows the reaction dynamics to be accelerated. Consequently, the assembled quasi-solid-state hybrid battery performs an extra charge–discharge process beyond that performed by a typical nickel (Ni)–Zn battery, resulting in a wide operating voltage range of 0.6–2.0 V and a superior specific capacity of 656.5 mAh g–1, in addition to an excellent energy density (644.7 Wh kg–1) and good durability. The ≈370% capacity improvement relative to the Ni–Zn battery alone makes the hybrid battery one of the best-performing alkaline Zn batteries.
KW - alkaline zinc batteries
KW - asymmetric wettability
KW - quasi-solid-state
KW - three-phase interfacial channels
KW - wood
UR - http://www.scopus.com/inward/record.url?scp=85159136046&partnerID=8YFLogxK
U2 - 10.1002/adma.202300132
DO - 10.1002/adma.202300132
M3 - 文章
C2 - 36964945
AN - SCOPUS:85159136046
SN - 0935-9648
VL - 35
JO - Advanced Materials
JF - Advanced Materials
IS - 26
M1 - 2300132
ER -