Yue Xu, Jun-Yuan Tang, Shuai-Dong Li, Hao-Lin Hu, Ying-Jian He, Shao-Feng Wang, Zhao-Meng Wu, Samuel Jeong, Ze-Yun Cai, Xi Lin, Kai-Long Hu
{"title":"在柔性铝-空气电池中,共掺杂诱导纳米ZnS的电子重配置促进氧还原反应","authors":"Yue Xu, Jun-Yuan Tang, Shuai-Dong Li, Hao-Lin Hu, Ying-Jian He, Shao-Feng Wang, Zhao-Meng Wu, Samuel Jeong, Ze-Yun Cai, Xi Lin, Kai-Long Hu","doi":"10.1007/s12598-024-03056-2","DOIUrl":null,"url":null,"abstract":"<div><p>The development of high-performance and cost-efficient catalysts holds great significance in facilitating oxygen reduction reaction (ORR), which is a pivotal process in next-generation energy storage devices, such as aluminum–air batteries. Transition metal sulfides have been proposed as promising non-noble metal ORR catalysts. However, achieving platinum (Pt)-comparable activity remains a challenge. Herein, a Co-doping-triggered electronic reconfiguration strategy is reported to tune the charge distribution and coordination state of ZnS nanoparticles anchored on N, S co-doped carbon (ZnS/NSC), thereby optimizing the intermediate adsorption kinetics and promoting ORR activity. The half-wave potential of 0.87 V as well as 100-h continuous durability are obtained by Co-doped ZnS/NSC in alkaline media. In addition, the solid-state aluminum–air battery is further assembled by using Co-doped ZnS/NSC as a cathode catalyst, achieving a maximum peak density of 100 mW·cm<sup>−2</sup> and discharge duration over 55 h. Density functional theory (DFT) calculations reveal that high electronegative Co-doping is beneficial for the construct of charge-transfer avenue and optimization of intermediate adsorption procedure. This study presents an efficient approach for preparing metal sulfides with high catalytic activity toward ORR in flexible metal–air batteries.</p><h3>Graphical abstract</h3><div><figure><div><div><picture><source><img></source></picture></div></div></figure></div></div>","PeriodicalId":749,"journal":{"name":"Rare Metals","volume":"44 4","pages":"2352 - 2365"},"PeriodicalIF":9.6000,"publicationDate":"2025-01-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Co-doping-induced electronic reconfiguration of nanosized ZnS for facilitating oxygen reduction reaction in flexible aluminum–air batteries\",\"authors\":\"Yue Xu, Jun-Yuan Tang, Shuai-Dong Li, Hao-Lin Hu, Ying-Jian He, Shao-Feng Wang, Zhao-Meng Wu, Samuel Jeong, Ze-Yun Cai, Xi Lin, Kai-Long Hu\",\"doi\":\"10.1007/s12598-024-03056-2\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>The development of high-performance and cost-efficient catalysts holds great significance in facilitating oxygen reduction reaction (ORR), which is a pivotal process in next-generation energy storage devices, such as aluminum–air batteries. Transition metal sulfides have been proposed as promising non-noble metal ORR catalysts. However, achieving platinum (Pt)-comparable activity remains a challenge. Herein, a Co-doping-triggered electronic reconfiguration strategy is reported to tune the charge distribution and coordination state of ZnS nanoparticles anchored on N, S co-doped carbon (ZnS/NSC), thereby optimizing the intermediate adsorption kinetics and promoting ORR activity. The half-wave potential of 0.87 V as well as 100-h continuous durability are obtained by Co-doped ZnS/NSC in alkaline media. In addition, the solid-state aluminum–air battery is further assembled by using Co-doped ZnS/NSC as a cathode catalyst, achieving a maximum peak density of 100 mW·cm<sup>−2</sup> and discharge duration over 55 h. Density functional theory (DFT) calculations reveal that high electronegative Co-doping is beneficial for the construct of charge-transfer avenue and optimization of intermediate adsorption procedure. 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Co-doping-induced electronic reconfiguration of nanosized ZnS for facilitating oxygen reduction reaction in flexible aluminum–air batteries
The development of high-performance and cost-efficient catalysts holds great significance in facilitating oxygen reduction reaction (ORR), which is a pivotal process in next-generation energy storage devices, such as aluminum–air batteries. Transition metal sulfides have been proposed as promising non-noble metal ORR catalysts. However, achieving platinum (Pt)-comparable activity remains a challenge. Herein, a Co-doping-triggered electronic reconfiguration strategy is reported to tune the charge distribution and coordination state of ZnS nanoparticles anchored on N, S co-doped carbon (ZnS/NSC), thereby optimizing the intermediate adsorption kinetics and promoting ORR activity. The half-wave potential of 0.87 V as well as 100-h continuous durability are obtained by Co-doped ZnS/NSC in alkaline media. In addition, the solid-state aluminum–air battery is further assembled by using Co-doped ZnS/NSC as a cathode catalyst, achieving a maximum peak density of 100 mW·cm−2 and discharge duration over 55 h. Density functional theory (DFT) calculations reveal that high electronegative Co-doping is beneficial for the construct of charge-transfer avenue and optimization of intermediate adsorption procedure. This study presents an efficient approach for preparing metal sulfides with high catalytic activity toward ORR in flexible metal–air batteries.
期刊介绍:
Rare Metals is a monthly peer-reviewed journal published by the Nonferrous Metals Society of China. It serves as a platform for engineers and scientists to communicate and disseminate original research articles in the field of rare metals. The journal focuses on a wide range of topics including metallurgy, processing, and determination of rare metals. Additionally, it showcases the application of rare metals in advanced materials such as superconductors, semiconductors, composites, and ceramics.