TY - JOUR
T1 - Toward Self-Supported Bifunctional Air Electrodes for Flexible Solid-State Zn–Air Batteries
AU - Wang, Xixi
AU - Xu, Lei
AU - Zhou, Chuan
AU - Wong, Ngie Hing
AU - Sunarso, Jaka
AU - Ran, Ran
AU - Zhou, Wei
AU - Shao, Zongping
N1 - Publisher Copyright:
© 2023 The Authors. Small Science published by Wiley-VCH GmbH.
PY - 2023/10
Y1 - 2023/10
N2 - The demand for flexibility and rechargeability in tandem with high energy density, reliability, and safety in energy-storage devices to power wearable electronics has translated to significant advances in flexible solid-state Zn–air batteries (FSZABs) technology. FSZABs using self-supported bifunctional air electrodes are currently one of the most attractive alternatives to Li-ion battery technology for next-generation wearable electronics. Unlike the conventional powder-based air electrodes, self-supported bifunctional air electrodes offer higher electron-transfer rate, larger specific surface area (and catalyst–reactant–product interfacial contact area), mechanical flexibility, and better operational robustness. To realize their potential nonetheless, self-supported bifunctional air electrodes should have high and stable bifunctional catalytic activity, low cost, and environmental compatibility. This review first summarizes the three typical configurations and working principles of FSZABs. Then, significant development of self-supported bifunctional air electrodes for FSZABs and efficient synthesis strategies are emphasized. The review concludes by providing perspectives on how to further improve the electrochemical performance of FSZABs and their suitability for next-generation wearable electronic devices.
AB - The demand for flexibility and rechargeability in tandem with high energy density, reliability, and safety in energy-storage devices to power wearable electronics has translated to significant advances in flexible solid-state Zn–air batteries (FSZABs) technology. FSZABs using self-supported bifunctional air electrodes are currently one of the most attractive alternatives to Li-ion battery technology for next-generation wearable electronics. Unlike the conventional powder-based air electrodes, self-supported bifunctional air electrodes offer higher electron-transfer rate, larger specific surface area (and catalyst–reactant–product interfacial contact area), mechanical flexibility, and better operational robustness. To realize their potential nonetheless, self-supported bifunctional air electrodes should have high and stable bifunctional catalytic activity, low cost, and environmental compatibility. This review first summarizes the three typical configurations and working principles of FSZABs. Then, significant development of self-supported bifunctional air electrodes for FSZABs and efficient synthesis strategies are emphasized. The review concludes by providing perspectives on how to further improve the electrochemical performance of FSZABs and their suitability for next-generation wearable electronic devices.
KW - flexible solid-state Zn–air batteries
KW - oxygen reduction and evolution reaction
KW - self-supported bifunctional air electrodes
KW - synthesis strategies
KW - wearable electronic devices
UR - http://www.scopus.com/inward/record.url?scp=85171276825&partnerID=8YFLogxK
U2 - 10.1002/smsc.202300066
DO - 10.1002/smsc.202300066
M3 - 文献综述
AN - SCOPUS:85171276825
SN - 2688-4046
VL - 3
JO - Small Science
JF - Small Science
IS - 10
M1 - 2300066
ER -