Vacancy-rich Al-doped MnO cathodes break the trade-off between kinetics and stability for high-performance aqueous Zn-ion batteries
Rechargeable aqueous zinc ion batteries (RAZIBs) have the potential for large scale energy storage due to their environmental friendliness, high safety and low cost. The trade-off between charging/discharging kinetics and stability has been the bottleneck of most cathode materials, which impedes the...
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creator | Zhao, Yajun Zhang, Shuoxiao Zhang, Yangyang Liang, Jinrui Ren, Longtao Fan, Hong Jin Liu, Wen Sun, Xiaoming |
description | Rechargeable aqueous zinc ion batteries (RAZIBs) have the potential for large scale energy storage due to their environmental friendliness, high safety and low cost. The trade-off between charging/discharging kinetics and stability has been the bottleneck of most cathode materials, which impedes the rate performance and cycle life of RAZIBs. Here we break the trade-off by designing vacancy-rich and Al-doped birnessite-type MnO
2
nanosheet (Al
x
-MnO
2
) electrodes, which are synthesized by electrochemically oxidizing manganese based layered double hydroxides (MnAl-LDHs). Rich Al cation vacancies formed during the process of electrochemical oxidation provide three-dimensional diffusion channels for the storage of Zn ions, and the remaining Al atoms benefit the structural stability by suppressing the Jahn-Teller distortion of Mn(
iii
)O
6
polyhedra during battery cycling. As a result, by employing the optimized cathode (Al
0.1
-MnO
2
), the rate capability and stability of the RAZIBs are spontaneously enhanced. Specifically, the battery exhibits a large specific capacity (327.9 mA h g
−1
at 0.2 A g
−1
), superior rate performance (135.8 mA h g
−1
at 8 A g
−1
) and high capacity retention (87% after 1000 cycles at 1 A g
−1
) that exceeds that of most of the reported manganese and vanadium based cathode materials.
A novel vacancy-rich, Al-doped MnO
2
cathode is proposed for AZIBs, showcasing 3D ion diffusion channels and excellent structural stability. It overcomes the trade-off between electrode kinetics and stability, delivering impressive rate performance and outstanding capacity retention. |
doi_str_mv | 10.1039/d3ee01659e |
format | Article |
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2
nanosheet (Al
x
-MnO
2
) electrodes, which are synthesized by electrochemically oxidizing manganese based layered double hydroxides (MnAl-LDHs). Rich Al cation vacancies formed during the process of electrochemical oxidation provide three-dimensional diffusion channels for the storage of Zn ions, and the remaining Al atoms benefit the structural stability by suppressing the Jahn-Teller distortion of Mn(
iii
)O
6
polyhedra during battery cycling. As a result, by employing the optimized cathode (Al
0.1
-MnO
2
), the rate capability and stability of the RAZIBs are spontaneously enhanced. Specifically, the battery exhibits a large specific capacity (327.9 mA h g
−1
at 0.2 A g
−1
), superior rate performance (135.8 mA h g
−1
at 8 A g
−1
) and high capacity retention (87% after 1000 cycles at 1 A g
−1
) that exceeds that of most of the reported manganese and vanadium based cathode materials.
A novel vacancy-rich, Al-doped MnO
2
cathode is proposed for AZIBs, showcasing 3D ion diffusion channels and excellent structural stability. It overcomes the trade-off between electrode kinetics and stability, delivering impressive rate performance and outstanding capacity retention.</description><identifier>ISSN: 1754-5692</identifier><identifier>EISSN: 1754-5706</identifier><identifier>DOI: 10.1039/d3ee01659e</identifier><ispartof>Energy & environmental science, 2024-02, Vol.17 (3), p.1279-129</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,27901,27902</link.rule.ids></links><search><creatorcontrib>Zhao, Yajun</creatorcontrib><creatorcontrib>Zhang, Shuoxiao</creatorcontrib><creatorcontrib>Zhang, Yangyang</creatorcontrib><creatorcontrib>Liang, Jinrui</creatorcontrib><creatorcontrib>Ren, Longtao</creatorcontrib><creatorcontrib>Fan, Hong Jin</creatorcontrib><creatorcontrib>Liu, Wen</creatorcontrib><creatorcontrib>Sun, Xiaoming</creatorcontrib><title>Vacancy-rich Al-doped MnO cathodes break the trade-off between kinetics and stability for high-performance aqueous Zn-ion batteries</title><title>Energy & environmental science</title><description>Rechargeable aqueous zinc ion batteries (RAZIBs) have the potential for large scale energy storage due to their environmental friendliness, high safety and low cost. The trade-off between charging/discharging kinetics and stability has been the bottleneck of most cathode materials, which impedes the rate performance and cycle life of RAZIBs. Here we break the trade-off by designing vacancy-rich and Al-doped birnessite-type MnO
2
nanosheet (Al
x
-MnO
2
) electrodes, which are synthesized by electrochemically oxidizing manganese based layered double hydroxides (MnAl-LDHs). Rich Al cation vacancies formed during the process of electrochemical oxidation provide three-dimensional diffusion channels for the storage of Zn ions, and the remaining Al atoms benefit the structural stability by suppressing the Jahn-Teller distortion of Mn(
iii
)O
6
polyhedra during battery cycling. As a result, by employing the optimized cathode (Al
0.1
-MnO
2
), the rate capability and stability of the RAZIBs are spontaneously enhanced. Specifically, the battery exhibits a large specific capacity (327.9 mA h g
−1
at 0.2 A g
−1
), superior rate performance (135.8 mA h g
−1
at 8 A g
−1
) and high capacity retention (87% after 1000 cycles at 1 A g
−1
) that exceeds that of most of the reported manganese and vanadium based cathode materials.
A novel vacancy-rich, Al-doped MnO
2
cathode is proposed for AZIBs, showcasing 3D ion diffusion channels and excellent structural stability. It overcomes the trade-off between electrode kinetics and stability, delivering impressive rate performance and outstanding capacity retention.</description><issn>1754-5692</issn><issn>1754-5706</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><sourceid/><recordid>eNqFjzFPwzAQRq0KpBbowo50f8DgNE2ijAiBWFAXxMBSXewLPprawb4KZeaP0wHEyPSe9IZPn1KXhbkuTNneuJLIFHXV0kwtiqZa66ox9cmv1-1qrs5yfjemXpmmXaivF7QY7KQTWw-3g3ZxJAdPYQMWxUdHGbpEuAPxBJLQkY59Dx3JJ1GAHQcSthkwOMiCHQ8sE_Qxgec3r0dKR98fJwjw40DxkOE1aI4BOhShxJQv1GmPQ6blD8_V1cP9892jTtlux8R7TNP271n5X_8GzrlTpg</recordid><startdate>20240206</startdate><enddate>20240206</enddate><creator>Zhao, Yajun</creator><creator>Zhang, Shuoxiao</creator><creator>Zhang, Yangyang</creator><creator>Liang, Jinrui</creator><creator>Ren, Longtao</creator><creator>Fan, Hong Jin</creator><creator>Liu, Wen</creator><creator>Sun, Xiaoming</creator><scope/></search><sort><creationdate>20240206</creationdate><title>Vacancy-rich Al-doped MnO cathodes break the trade-off between kinetics and stability for high-performance aqueous Zn-ion batteries</title><author>Zhao, Yajun ; Zhang, Shuoxiao ; Zhang, Yangyang ; Liang, Jinrui ; Ren, Longtao ; Fan, Hong Jin ; Liu, Wen ; Sun, Xiaoming</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-rsc_primary_d3ee01659e3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><creationdate>2024</creationdate><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Zhao, Yajun</creatorcontrib><creatorcontrib>Zhang, Shuoxiao</creatorcontrib><creatorcontrib>Zhang, Yangyang</creatorcontrib><creatorcontrib>Liang, Jinrui</creatorcontrib><creatorcontrib>Ren, Longtao</creatorcontrib><creatorcontrib>Fan, Hong Jin</creatorcontrib><creatorcontrib>Liu, Wen</creatorcontrib><creatorcontrib>Sun, Xiaoming</creatorcontrib><jtitle>Energy & environmental science</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Zhao, Yajun</au><au>Zhang, Shuoxiao</au><au>Zhang, Yangyang</au><au>Liang, Jinrui</au><au>Ren, Longtao</au><au>Fan, Hong Jin</au><au>Liu, Wen</au><au>Sun, Xiaoming</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Vacancy-rich Al-doped MnO cathodes break the trade-off between kinetics and stability for high-performance aqueous Zn-ion batteries</atitle><jtitle>Energy & environmental science</jtitle><date>2024-02-06</date><risdate>2024</risdate><volume>17</volume><issue>3</issue><spage>1279</spage><epage>129</epage><pages>1279-129</pages><issn>1754-5692</issn><eissn>1754-5706</eissn><abstract>Rechargeable aqueous zinc ion batteries (RAZIBs) have the potential for large scale energy storage due to their environmental friendliness, high safety and low cost. The trade-off between charging/discharging kinetics and stability has been the bottleneck of most cathode materials, which impedes the rate performance and cycle life of RAZIBs. Here we break the trade-off by designing vacancy-rich and Al-doped birnessite-type MnO
2
nanosheet (Al
x
-MnO
2
) electrodes, which are synthesized by electrochemically oxidizing manganese based layered double hydroxides (MnAl-LDHs). Rich Al cation vacancies formed during the process of electrochemical oxidation provide three-dimensional diffusion channels for the storage of Zn ions, and the remaining Al atoms benefit the structural stability by suppressing the Jahn-Teller distortion of Mn(
iii
)O
6
polyhedra during battery cycling. As a result, by employing the optimized cathode (Al
0.1
-MnO
2
), the rate capability and stability of the RAZIBs are spontaneously enhanced. Specifically, the battery exhibits a large specific capacity (327.9 mA h g
−1
at 0.2 A g
−1
), superior rate performance (135.8 mA h g
−1
at 8 A g
−1
) and high capacity retention (87% after 1000 cycles at 1 A g
−1
) that exceeds that of most of the reported manganese and vanadium based cathode materials.
A novel vacancy-rich, Al-doped MnO
2
cathode is proposed for AZIBs, showcasing 3D ion diffusion channels and excellent structural stability. It overcomes the trade-off between electrode kinetics and stability, delivering impressive rate performance and outstanding capacity retention.</abstract><doi>10.1039/d3ee01659e</doi><tpages>12</tpages></addata></record> |
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source | Royal Society Of Chemistry Journals 2008- |
title | Vacancy-rich Al-doped MnO cathodes break the trade-off between kinetics and stability for high-performance aqueous Zn-ion batteries |
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