Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries
Abstract Precise control of the local electronic structure and properties of electrocatalysts is important for enhancing the multifunctionality and durability of electrocatalysts and for correlating the structure/chemistry with the catalytic properties. Herein, we report electronically coupled metal...
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doaj-65934cf07946483480168de46fb5a6582021-10-03T16:45:53ZengWileyInfoMat2567-31652021-10-013101134114410.1002/inf2.12226Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteriesXiaotong Han0Nannan Li1Peixun Xiong2Min Gyu Jung3Yingbo Kang4Qingyun Dou5Qing Liu6Jin Yong Lee7Ho Seok Park8School of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaDepartment of Chemistry, Institute of Basic Science Sungkyunkwan University Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaDepartment of Chemistry, Institute of Basic Science Sungkyunkwan University Suwon Republic of KoreaSchool of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of KoreaAbstract Precise control of the local electronic structure and properties of electrocatalysts is important for enhancing the multifunctionality and durability of electrocatalysts and for correlating the structure/chemistry with the catalytic properties. Herein, we report electronically coupled metallic hybrids of NiFe layered double hydroxide nanosheet/Ti3C2 MXene quantum dots deposited on a nitrogen‐doped graphene surface (LDH/MQD/NG) for high‐performance flexible Zn–air batteries (ZABs). As verified from the Mott–Schottky and Nyquist plots, as well as spectroscopic, electrochemical, and computational analyses, the electronic and chemical coupling of LDH/MQD/NG modulates the local electronic and surface structure of the active LDH to provide metallic conductivity and abundant active sites, leading to significantly improved bifunctional activity and electrocatalytic kinetics. The rechargeable ZABs with LDH/MQD/NG hybrids are superior to the previous LDH‐based ZABs, demonstrating a high power density (113.8 mW cm−2) and excellent cycle stability (150 h at 5 mA cm−2). Moreover, the corresponding quasi solid‐state ZABs are completely flexible and practical, affording a high power density of 57.6 mW cm−2 even in the bent state, and in real‐life operation of tandem cells for powering various electronic devices.https://doi.org/10.1002/inf2.122262D quantum dotsflexible batterymetallic hybridsoxygen electrochemistryZn–air battery |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiaotong Han Nannan Li Peixun Xiong Min Gyu Jung Yingbo Kang Qingyun Dou Qing Liu Jin Yong Lee Ho Seok Park |
spellingShingle |
Xiaotong Han Nannan Li Peixun Xiong Min Gyu Jung Yingbo Kang Qingyun Dou Qing Liu Jin Yong Lee Ho Seok Park Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries InfoMat 2D quantum dots flexible battery metallic hybrids oxygen electrochemistry Zn–air battery |
author_facet |
Xiaotong Han Nannan Li Peixun Xiong Min Gyu Jung Yingbo Kang Qingyun Dou Qing Liu Jin Yong Lee Ho Seok Park |
author_sort |
Xiaotong Han |
title |
Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
title_short |
Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
title_full |
Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
title_fullStr |
Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
title_full_unstemmed |
Electronically coupled layered double hydroxide/MXene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
title_sort |
electronically coupled layered double hydroxide/mxene quantum dot metallic hybrids for high‐performance flexible zinc–air batteries |
publisher |
Wiley |
series |
InfoMat |
issn |
2567-3165 |
publishDate |
2021-10-01 |
description |
Abstract Precise control of the local electronic structure and properties of electrocatalysts is important for enhancing the multifunctionality and durability of electrocatalysts and for correlating the structure/chemistry with the catalytic properties. Herein, we report electronically coupled metallic hybrids of NiFe layered double hydroxide nanosheet/Ti3C2 MXene quantum dots deposited on a nitrogen‐doped graphene surface (LDH/MQD/NG) for high‐performance flexible Zn–air batteries (ZABs). As verified from the Mott–Schottky and Nyquist plots, as well as spectroscopic, electrochemical, and computational analyses, the electronic and chemical coupling of LDH/MQD/NG modulates the local electronic and surface structure of the active LDH to provide metallic conductivity and abundant active sites, leading to significantly improved bifunctional activity and electrocatalytic kinetics. The rechargeable ZABs with LDH/MQD/NG hybrids are superior to the previous LDH‐based ZABs, demonstrating a high power density (113.8 mW cm−2) and excellent cycle stability (150 h at 5 mA cm−2). Moreover, the corresponding quasi solid‐state ZABs are completely flexible and practical, affording a high power density of 57.6 mW cm−2 even in the bent state, and in real‐life operation of tandem cells for powering various electronic devices. |
topic |
2D quantum dots flexible battery metallic hybrids oxygen electrochemistry Zn–air battery |
url |
https://doi.org/10.1002/inf2.12226 |
work_keys_str_mv |
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