Login / Signup

Boosting Zn 2+ Diffusion via Tunnel-Type Hydrogen Vanadium Bronze for High-Performance Zinc Ion Batteries.

Jin CaoDongdong ZhangYilei YueTeerachote PakornchoteThiti BovornratanaraksXinyu ZhangZhiyuan ZengJiaqian QinYangyang Huang
Published in: ACS applied materials & interfaces (2022)
Aqueous zinc ion batteries (ZIBs) are emerging as a promising candidate in the post-lithium ion battery era, while the limited choice of cathode materials plagues their further development, especially the tunnel-type cathode materials with high electrochemical performance. Here, a tunnel-type vanadium-based compound based on hydrogen vanadium bronze (H x V 2 O 5 ) microspheres has been fabricated and employed as the cathode for fast Zn 2+ ions' intercalation/deintercalation, which delivers an excellent capacity (425 mAh g -1 at 0.1 A g -1 ), a remarkable cyclability (91.3% after 5000 cycles at 20 A g -1 ), and a sufficient energy density (311.5 Wh kg -1 ). As revealed by the experimental and theoretical results, such excellent electrochemical performance is confirmed to result from the fast ions/electrons diffusion kinetics promoted by the unique tunnel structure (3.7 × 4.22 Å 2 , along the c direction), which accomplishes a low Zn 2+ ion diffusion barrier and the superior electron-transfer capability of H x V 2 O 5 . These results shed light on designing tunnel-type vanadium-based compounds to boost the prosperous development of Zn 2+ ion storage cathodes.
Keyphrases
  • ion batteries
  • heavy metals
  • electron transfer
  • anterior cruciate ligament reconstruction
  • ionic liquid
  • gold nanoparticles
  • quantum dots
  • molecularly imprinted
  • risk assessment
  • reduced graphene oxide
  • mass spectrometry