A Study on the Characteristics of Solid Capacitor According to the Pyrolysis Methods

열분해 방식에 따른 고체 커패시터의 특성연구

  • Received : 2005.11.24
  • Accepted : 2006.07.24
  • Published : 2006.12.31

Abstract

A Study on the characteristics of $Ta/Ta_2O_5/MnO_2$ capacitor applied $MnO_2$ by means of pyrolysis of manganese nitrate solution was carried out. Single phase of $MnO_2$ was obtained in the pyrolysis temperature range of 230 to $250^{\circ}C$ by TG/DSC analysis on manganese nitrate solution. Temperature of pyrolysis, concentration of manganese nitrate solution and the number of pyrolysis were selected for the basic parameters of embodying $MnO_2$ solid electrolyte and then the effects of these parameters on the characteristics of capacitor were estimated. The characteristics of capacitor pyrolyzed radiationally was superior to that of capacitor pyrolyzed convectionally on the basis of these optimized parameter conditions. It was verified that radiational pyrolysis formed smaller spherical $MnO_2$ particles than those of convectional one relatively and these facts resulted in forming uniform and dense solid electrolyte layer into the microporous sintered body of capacitor.

질산망간수용액의 열분해에 의한 이산화망간 적용 $Ta/Ta_2O_5/MnO_2$ 커패시터의 특성 연구를 수행하였다. 질산망간수용액의 TG/DSC 분석을 통해 약 $230{\sim}250^{\circ}C$ 범위에서 단일상의 이산화망간이 생성되었다. 열분해 온도, 질산망간수용액의 농도, 열분해 회수를 이산화망간 고체 전해질 생성의 기초 변수로 선정하고 이에 따른 커패시터 특성을 평가하였다. 최적 조성을 기준으로 복사열분해 방식이 대류열분해 방식에 비하여 우수한 특성을 발휘하였다. 이는 복사열분해에 의해 상대적으로 구형의 작은 입자 상태의 이산화망간 입자들이 생성되고 이를 통해 미세 다공성 구조의 커패시터 소결체 내부에 균일하고 치밀한 이산화망간 고체전해질 층이 생성되는 것에서 기인하는 결과임을 확인하였다.

Keywords

References

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