TY - JOUR
T1 - All-solid-state electrochromic Li-ion hybrid supercapacitors for intelligent and wide-temperature energy storage
AU - Liu, Lei
AU - Wang, Tao
AU - He, Zhibing
AU - Yi, Yong
AU - Wang, Mengying
AU - Luo, Zhihui
AU - Liu, Qirong
AU - Huang, Jinglin
AU - Zhong, Xiaolan
AU - Du, Kai
AU - Diao, Xungang
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/6/15
Y1 - 2021/6/15
N2 - Newly proposed electrochromic Li-ions hybrid supercapacitors (ELHSs), incorporating energy storage and electrochromic functions into one hybrid system, provide huge potential for next-generation portable and intelligent electron devices. The critical next step in the future implementation is to explore a high-rate and stable battery-type electrochromic positive electrode to match the capacitive electrochromic negative electrode even under harsher environments. Herein, spinel LiMn2O4 electrodes coating with LiNbO3 thin layer (namely LMO@LNO) possess interconnected microstructures and multipores are successfully fabricated and severed as high-performance battery-type electrochromic positive electrode for ELHSs. The resulting LMO@LNO electrode exhibits remarkable electrochromic and energy storage performances, including large optical modulation (∼42.1%), high specific capacity (127.6 mAh g−1) and robust long-term electrochemical stability (over 1000 cycles). The Li-ion migration kinetics and electrochromic mechanism of the positive electrode are further comprehensively analyzed through experimental characterizations and density functional theory (DFT) calculations. By pairing with a transparent WO3 electrochromic capacitor-type negative electrode, an all-solid-state ELHS with a maximum working voltage of 2.3 V is assembled, delivering an impressive energy/power density (106.1 Wh kg−1/574.7 W kg−1) and admirable capacity retention of 83.5% after 3000 cycles. Significantly, the as-obtained ELHS with excellent environmental compatibility and reversible electrochromic performance even operate at progressively varying temperatures (RT ∼ 60 °C). This work provides a new opportunity to design next-generation safe and intelligent hybrid energy storage system for consumer electronics.
AB - Newly proposed electrochromic Li-ions hybrid supercapacitors (ELHSs), incorporating energy storage and electrochromic functions into one hybrid system, provide huge potential for next-generation portable and intelligent electron devices. The critical next step in the future implementation is to explore a high-rate and stable battery-type electrochromic positive electrode to match the capacitive electrochromic negative electrode even under harsher environments. Herein, spinel LiMn2O4 electrodes coating with LiNbO3 thin layer (namely LMO@LNO) possess interconnected microstructures and multipores are successfully fabricated and severed as high-performance battery-type electrochromic positive electrode for ELHSs. The resulting LMO@LNO electrode exhibits remarkable electrochromic and energy storage performances, including large optical modulation (∼42.1%), high specific capacity (127.6 mAh g−1) and robust long-term electrochemical stability (over 1000 cycles). The Li-ion migration kinetics and electrochromic mechanism of the positive electrode are further comprehensively analyzed through experimental characterizations and density functional theory (DFT) calculations. By pairing with a transparent WO3 electrochromic capacitor-type negative electrode, an all-solid-state ELHS with a maximum working voltage of 2.3 V is assembled, delivering an impressive energy/power density (106.1 Wh kg−1/574.7 W kg−1) and admirable capacity retention of 83.5% after 3000 cycles. Significantly, the as-obtained ELHS with excellent environmental compatibility and reversible electrochromic performance even operate at progressively varying temperatures (RT ∼ 60 °C). This work provides a new opportunity to design next-generation safe and intelligent hybrid energy storage system for consumer electronics.
KW - Electrochromic mechanism
KW - Environment compatibility
KW - Li-ions hybrid supercapacitors
KW - LiMnO electrode
KW - Safe and intelligent
UR - https://www.scopus.com/pages/publications/85101059506
U2 - 10.1016/j.cej.2021.128892
DO - 10.1016/j.cej.2021.128892
M3 - 文章
AN - SCOPUS:85101059506
SN - 1385-8947
VL - 414
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 128892
ER -