TY - JOUR
T1 - Kinetic analysis and alloy designs for metal/metal fluorides toward high rate capability for all-solid-state fluoride-ion batteries
AU - Yoshinari, Takahiro
AU - Zhang, Datong
AU - Yamamoto, Kentaro
AU - Kitaguchi, Yuya
AU - Ochi, Aika
AU - Nakanishi, Koji
AU - Miki, Hidenori
AU - Nakanishi, Shinji
AU - Iba, Hideki
AU - Uchiyama, Tomoki
AU - Watanabe, Toshiki
AU - Matsunaga, Toshiyuki
AU - Amezawa, Koji
AU - Uchimoto, Yoshiharu
N1 - Funding Information:
This work was supported by JST-Mirai Program Grant Number JPMJMI18E2, Japan. Synchrotron radiation experiments were performed at beamlines BL37XU and BL01B1 of SPring-8 with the approval of the Japan Synchrotron Radiation Research Institute (JASRI) (Proposal number 2016B1021, 2017B1038, 2019B1014 and 2019B1016).
Publisher Copyright:
© The Royal Society of Chemistry 2021.
PY - 2021/3/21
Y1 - 2021/3/21
N2 - New concepts for electrochemical energy storage devices are required to handle the physicochemical energy density limit that Li-ion batteries are approaching. All-solid-state fluoride-ion batteries (FIBs), in which monovalent fluoride anions are employed as charge carriers, are regarded as attractive options, and metallic Cu has been proved to be a promising cathode material. However, the rate capability is currently low and kinetic factors associated with the Cu/CuF2reaction are not clearly understood, and the rate-determining step has not yet been identified. Herein, we present the kinetic analyses of a Cu thin-film cathode with a phase-boundary-controlled one-dimensional phase transition processviathe Kolmogorov-Johnson-Mehl-Avrami equation. Concerning the capacity fading caused by the repeated volume expansion/contraction and the consequent interfacial contact loss, a Cu-Au alloy with a reduced lattice mismatch was designed and verified to be efficient to enable fast phase-transition kinetics along with stable cyclabilities, which opens new possibilities in cathode design for all-solid-state FIBs.
AB - New concepts for electrochemical energy storage devices are required to handle the physicochemical energy density limit that Li-ion batteries are approaching. All-solid-state fluoride-ion batteries (FIBs), in which monovalent fluoride anions are employed as charge carriers, are regarded as attractive options, and metallic Cu has been proved to be a promising cathode material. However, the rate capability is currently low and kinetic factors associated with the Cu/CuF2reaction are not clearly understood, and the rate-determining step has not yet been identified. Herein, we present the kinetic analyses of a Cu thin-film cathode with a phase-boundary-controlled one-dimensional phase transition processviathe Kolmogorov-Johnson-Mehl-Avrami equation. Concerning the capacity fading caused by the repeated volume expansion/contraction and the consequent interfacial contact loss, a Cu-Au alloy with a reduced lattice mismatch was designed and verified to be efficient to enable fast phase-transition kinetics along with stable cyclabilities, which opens new possibilities in cathode design for all-solid-state FIBs.
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U2 - 10.1039/d0ta12055c
DO - 10.1039/d0ta12055c
M3 - Article
AN - SCOPUS:85102983208
SN - 2050-7488
VL - 9
SP - 7018
EP - 7024
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 11
ER -