• 제목/요약/키워드: Tantalum Solid Capacitor

검색결과 3건 처리시간 0.018초

자전연소합성법에 의한 콘덴서용 탄탈륨 분말 제조 (Preparation of Ta Powder for Capacitor by SHS Process)

  • 이승영;이상일;원창환
    • 대한금속재료학회지
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    • 제47권6호
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    • pp.338-343
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    • 2009
  • The purpose of this study is to make the tantalum powder for solid electrolyte capacitor with SHS (self-propagating high-temperature synthesis) process. Raw materials for manufacturing Ta powder were used $Ta_{2}O_{5}$, Mg and NaCl. While progressing SHS process, $Ta_{2}O_{5}$ powder was reduced by Mg powder. The combustion temperature and velocity were easily controled by the varying mole ratio of NaCl, Mg and initial reaction pressure. In the case of only using NaCl as an inorganic agent, the shape is unagglomerated and has high surface area. whereas we were given the powder which has good net structure by the addition of excessive Mg as a diluent.

열분해 방식에 따른 고체 커패시터의 특성연구 (A Study on the Characteristics of Solid Capacitor According to the Pyrolysis Methods)

  • 김재근;유형진;홍웅희
    • Korean Chemical Engineering Research
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    • 제44권6호
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    • pp.614-622
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    • 2006
  • 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.

고체 전해커패시터용 니오븀 분말제조 (Fabrication of Niobium Powder for Solid-electrolyte Capacitors)

  • 윤재식;황선호;김병일
    • 한국표면공학회지
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    • 제42권5호
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    • pp.227-231
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    • 2009
  • The niobium capacitor showed somewhat more unstable characteristics than the commercial tantalum capacitors, but is nonetheless considered applicable as a future substitute for tantalum capacitors. In this study, niobium powder was fabricated by metallothermic reduction process using $K_2NbF_7$ as the raw materials, KCl and KF as the diluents and Na as the reducing agent. The niobium particle size greatly decreased from 0.7um to 0.2 um as the amount of diluent increased. However if a higher surface area of powder is required, more diluents need to be used in the said method in order to produce niobium powder. The niobium powder morphology and particle size are very sensitive to a amount of sodium excess. The particle size of niobium powder increased with a increasing amount of sodium excess. When more diluent and sodium are used, the niobium powder will be contaminated with more impurities such as Fe, Cr, Ni so on.