TY - JOUR
T1 - Boosting Zn-Ion Storage Performance of Bronze-Type VO2via Ni-Mediated Electronic Structure Engineering
AU - Cai, Yi
AU - Chua, Rodney
AU - Kou, Zongkui
AU - Ren, Hao
AU - Yuan, Du
AU - Huang, Shaozhuan
AU - Kumar, Sonal
AU - Verma, Vivek
AU - Amonpattaratkit, Penphitcha
AU - Srinivasan, Madhavi
N1 - Publisher Copyright:
Copyright © 2020 American Chemical Society.
PY - 2020/8/12
Y1 - 2020/8/12
N2 - Aqueous rechargeable zinc-ion batteries are emerging as attractive alternatives for post-lithium-ion batteries. However, their electrochemical performances are restricted by the narrow working window of materials in aqueous electrolytes. Herein, a Ni-mediated VO2-B nanobelt [(Ni)VO2] has been designed to optimize the intrinsic electronic structure of VO2-B and thus achieve much more enhanced zinc-ion storage. Specifically, the Zn/(Ni)VO2 battery yields a good rate capability (182.0 mA h g-1 at 5 A g-1) with a superior cycling stability (130.6 mA h g-1 at 10 A g-1 after 2000 cycles). Experimental and theoretical methods reveal that the introduction of Ni2+ in the VO2 tunnel structure can effectively provide high surface reactivity and improve the intrinsic electronic configurations, thus resulting in good kinetics. Furthermore, H+ and Zn2+ cointercalation processes are determined via in situ X-ray diffraction and supported by ex situ characterizations. Additionally, quasi-solid-state Zn/(Ni)VO2 soft-packaged batteries are assembled and provide flexibility in battery design for practical applications. The results provide insights into the interrelationships between the intrinsic electronic structure of the cathode and the overall electrochemical performance.
AB - Aqueous rechargeable zinc-ion batteries are emerging as attractive alternatives for post-lithium-ion batteries. However, their electrochemical performances are restricted by the narrow working window of materials in aqueous electrolytes. Herein, a Ni-mediated VO2-B nanobelt [(Ni)VO2] has been designed to optimize the intrinsic electronic structure of VO2-B and thus achieve much more enhanced zinc-ion storage. Specifically, the Zn/(Ni)VO2 battery yields a good rate capability (182.0 mA h g-1 at 5 A g-1) with a superior cycling stability (130.6 mA h g-1 at 10 A g-1 after 2000 cycles). Experimental and theoretical methods reveal that the introduction of Ni2+ in the VO2 tunnel structure can effectively provide high surface reactivity and improve the intrinsic electronic configurations, thus resulting in good kinetics. Furthermore, H+ and Zn2+ cointercalation processes are determined via in situ X-ray diffraction and supported by ex situ characterizations. Additionally, quasi-solid-state Zn/(Ni)VO2 soft-packaged batteries are assembled and provide flexibility in battery design for practical applications. The results provide insights into the interrelationships between the intrinsic electronic structure of the cathode and the overall electrochemical performance.
KW - aqueous
KW - electronic structure
KW - rate capability
KW - VO-B
KW - Zn-ion battery
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U2 - 10.1021/acsami.0c09061
DO - 10.1021/acsami.0c09061
M3 - Article
C2 - 32701255
AN - SCOPUS:85089710797
SN - 1944-8244
VL - 12
SP - 36110
EP - 36118
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 32
ER -