TY - JOUR
T1 - Highly Reversible and Anticorrosive Zn Anode Enabled by a Ag Nanowires Layer
AU - Li, Zhe
AU - Wang, Hua
AU - Zhong, Yun
AU - Yuan, Lixia
AU - Huang, Yunhui
AU - Li, Zhen
N1 - Publisher Copyright:
© 2022 American Chemical Society
PY - 2022/2/23
Y1 - 2022/2/23
N2 - With the fast development of large-scale energy storage, aqueous Zn-based rechargeable batteries have attracted more and more attention because of their high-level safety, low cost, and environmental friendliness. The Zn metal anode is fascinating for aqueous Zn-based rechargeable batteries due to its high volume-specific capacity (5855 mA h cm-3), low negative potential (-0.762 V vs standard hydrogen electrode), and abundant resources. However, the practical application of the Zn metal anode is hindered by the challenge of serious dendrite growth. To address this, herein, we report a highly reversible and anticorrosive Zn anode enabled by a Ag nanowires (AgNWs) layer. By effectively lowering the nucleation overpotential and providing a high specific surface area to construct abundant sites inducing Zn uniform deposition, the designed Zn-AgNWs anode could ensure dendrite-free deposition to improve the reversibility (600 h at 2 mA h cm-2). During cycling, Zn deposition on the AgNWs surface drives the in situ formation of the AgZn3 alloy to constitute a natural protective layer, which can prevent the direct corrosion reaction between Zn and the electrolyte. Thus, the Zn-AgNWs|MnO2 full cell exhibits excellent electrochemical performance with large specific capacity and outstanding rate capability and retains a high capacity retention at 0.6 A g-1 even after 800 cycles.
AB - With the fast development of large-scale energy storage, aqueous Zn-based rechargeable batteries have attracted more and more attention because of their high-level safety, low cost, and environmental friendliness. The Zn metal anode is fascinating for aqueous Zn-based rechargeable batteries due to its high volume-specific capacity (5855 mA h cm-3), low negative potential (-0.762 V vs standard hydrogen electrode), and abundant resources. However, the practical application of the Zn metal anode is hindered by the challenge of serious dendrite growth. To address this, herein, we report a highly reversible and anticorrosive Zn anode enabled by a Ag nanowires (AgNWs) layer. By effectively lowering the nucleation overpotential and providing a high specific surface area to construct abundant sites inducing Zn uniform deposition, the designed Zn-AgNWs anode could ensure dendrite-free deposition to improve the reversibility (600 h at 2 mA h cm-2). During cycling, Zn deposition on the AgNWs surface drives the in situ formation of the AgZn3 alloy to constitute a natural protective layer, which can prevent the direct corrosion reaction between Zn and the electrolyte. Thus, the Zn-AgNWs|MnO2 full cell exhibits excellent electrochemical performance with large specific capacity and outstanding rate capability and retains a high capacity retention at 0.6 A g-1 even after 800 cycles.
KW - Agnws layer
KW - Agznalloy
KW - Aqueous rechargeable batteries
KW - Interface modification
KW - Zn metal anode
UR - http://www.scopus.com/inward/record.url?scp=85125051395&partnerID=8YFLogxK
U2 - 10.1021/acsami.1c22873
DO - 10.1021/acsami.1c22873
M3 - 文章
C2 - 35133120
AN - SCOPUS:85125051395
SN - 1944-8244
VL - 14
SP - 9097
EP - 9105
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 7
ER -