Synthesized nanosphere ZnSe and reduced graphene oxide as anode materials for sodium-ion batteries: Analysis on phase transition and storage mechanism

  • Jin, Youngho
  • Seong, Honggyu
  • Moon, Joon Ha
  • Kim, Geongil
  • Yoo, Hyerin
  • ... Choi, Jaewon
  • 외 3명
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초록

Zinc selenide (ZnSe), a metal chalcogenide, is an attractive anode material for sodium-ion batteries, exhibiting high theoretical capacity (371.4 mAhg-1) and numerous redox sites. However, volume expansion and low stability during the charge/discharge processes present challenges. This study aimed to solve these inherent problems and synthesize a high-performance anode material by growing nano sized ZnSe on surface of reduced graphene oxide (rGO). ZnSe has two crystal structures, namely zinc-blende and wurtzite, and undergoes a transformation from wurtzite to the zinc-blende phase during sodium ion storage. This study conducted X-ray diffraction analysis of the electrode after the galvanostatic charge/discharge test and performed cyclic voltammetry analysis to investigate the transformation process. In addition, real-time monitoring of Nyquist plot and phase transition was performed to investigate the mechanisms of sodium ion storage. The ZnSe-rGO, exhibiting conversion reactions, shows cycle performance of 316.14 mAhg- 1 at a current density of 0.5 Ag- 1 after 1000 cycles. The evaluation of anode materials and analysis of their storage mechanism can facilitate sodium-ion batteries research.

키워드

Zinc selenideReduced graphene oxideAnodeElectrochemical reaction kineticsSodiation mechanismENERGY-STORAGEELECTROCHEMICAL PROPERTIESLITHIUMCARBONNANOPARTICLESELECTRODE
제목
Synthesized nanosphere ZnSe and reduced graphene oxide as anode materials for sodium-ion batteries: Analysis on phase transition and storage mechanism
저자
Jin, YounghoSeong, HonggyuMoon, Joon HaKim, GeongilYoo, HyerinJung, TaejungKim, Sung KukCho, Se YounChoi, Jaewon
DOI
10.1016/j.apsusc.2024.160606
발행일
2024-10
유형
Article
저널명
Applied Surface Science
670