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Photo-assisted chemical self-rechargeable zinc ion batteries with high charging and discharging efficiency.
Du, Xing-Yuan; Song, Li-Na; Liang, Shuang; Wang, Yi-Feng; Wang, Yue; Wang, Huan-Feng; Xu, Ji-Jing.
Affiliation
  • Du XY; Jilin University, College of Chemistry, 2699, Qianjin Street, 130012, 130012, Changchun, CHINA.
  • Song LN; Jilin University, College of Chemistry, 2699, Qianjin Street, 130012, 130021, Changchun, CHINA.
  • Liang S; Jilin University, College of Chemistry, 2699, Qianjin Street, 130012, Chuangchun, CHINA.
  • Wang YF; Jilin University, College of Chemistry, 2699, Qianjin Street, 130012, 130021, Changchun, CHINA.
  • Wang Y; Jilin University, College of Chemistry, 2699, Qianjin Street, 130012, 130021, Changchun, CHINA.
  • Wang HF; Zhengzhou University of Technology, College of Chemical and Food, Zhengzhou, 450052, Zhengzhou, CHINA.
  • Xu JJ; Jilin University, College of Chemistry, 2699 qianjin street, 130022, Changchun, CHINA.
Angew Chem Int Ed Engl ; : e202411845, 2024 Jul 19.
Article in En | MEDLINE | ID: mdl-39031481
ABSTRACT
Chemically self-recharging zinc ion batteries (ZIBs), which are capable of auto-recharging in ambient air, are promising in self-powered battery systems. Nevertheless, the exclusive reliance on chemical energy from oxygen for ZIBs charging often would bring some obstacles in charging efficiency. Herein, we develop photo-assisted chemically self-recharging aqueous ZIBs with a heterojunction of MoS2/SnO2 cathode, which are favorable to enhancing both the charging and discharging efficiency as well as the chemical self-charging capabilities under illumination. The photo-assisted process promotes the electron transfer from MoS2/SnO2 to oxygen, accelerating the occurrence of the oxidation reaction during chemical self-charging. Furthermore, the electrons within the MoS2/SnO2 cathode exhibit a low transfer impedance under illumination, which is beneficial to reducing the migration barrier of Zn2+ within the cathode and thereby facilitating the uniform inserting of Zn2+ into MoS2/SnO2 cathode during discharging. This photo-assisted chemical self-recharging mechanism enables ZIBs to attain a maximum self-charging potential of 0.95 V within 3 hours, a considerable self-charging capacity of 202.5 mAh g-1 and excellent cycling performance in a self-charging mode. This work not only provides a route for optimizing chemical self-charging energy storage, but also broadens the potential application of aqueous ZIBs.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Angew Chem Int Ed Engl / Angew. Chem. (Int. ed., Internet) / Angewandte Chemie (International ed. Internet) Year: 2024 Document type: Article Affiliation country: China Country of publication: Alemania

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Angew Chem Int Ed Engl / Angew. Chem. (Int. ed., Internet) / Angewandte Chemie (International ed. Internet) Year: 2024 Document type: Article Affiliation country: China Country of publication: Alemania