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Enhancement on the Charge-discharge Property of Carbon Anode by the Addition of Metal Oxides in Li-ion Secondary Batteries

금속산화물 첨가방법에 의한 리튬이차전지 부극재료의 충방전 특성 개선

  • 김정식 (서울시립대학교 신소재공학과)
  • Published : 2003.11.01

Abstract

In the present study effects of SnO$_2$-impregnation on the cell performance of Mesocarbon Microbeads (MCMB) electrode in the Li-ion battery have been investigated. Sn element was impreganted into MCMB powders by the chemical titration, and then post annealed at 250$^{\circ}C$ for 1 h in ambient atmosphere to be transformed as tin-oxide. From the measurement for the cell performance with the half cell in which the SnO$_2$-impregnated MCMB was used as an anode, the SnO$_2$-impregnated MCMB showed higher charge/discharge capacities, higher reversible specific charge capacity and better cycleability than a raw MCMB. As the amount of impregnated SnO$_2$ increased, both reversible and irreversible capacities increased.

본 연구에서는 리튬이차전지의 음극재료로서 사용되고 있는 Mesocarbon Microbeads (MCMB) 카본 분말에 제2상 첨가물로서 소량의 주석산화물 (SnO$_2$) 을 균일하게 분산 첨가시킴으로써 카본전극 표면을 개질시켰으며, 이에 따른 전극의 전기화학적 특성 변화에 관하여 고찰하였다. 주석산화물 첨가 방법는 전하적정법을 사용하여 Sn 을 MCMB 분말에 삽입시키고, 다시 삽입된 Sn이 산화되도록 대기 중에서 25$0^{\circ}C$로 l 시간동안 후열처리를 하였다. 주석산화물이 첨가된 MCMB 카본분말로 Li/MCMB 전지 cell을 만들어 충방전시험을 수행한 결과, raw MCMB로 만든 전극보다 더 우수한 충방전 용량과 싸이클 특성을 나타내었다. 즉, 주석산화물 삽입에 의해 표면개질된 MCMB 카본 분말은 기존의 MCMB에 비해 높은 초기 방전용량과 충전용량을 나타내었고, 또한 높은 가역특성과 좋은 cycleability를 보였다. 삽입된 SnO$_2$의 양이 증가할수록 높은 가역용량을 나타내었고 비가역용량 역시 높은 값을 나타내었다.

Keywords

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