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논문 기본정보

유기금속 화학기상증착법을 이용한 TiO2 나노선 제조

논문 개요

기관명, 저널명, ISSN, ISBN 으로 구성된 논문 개요 표입니다.
기관명 NDSL
저널명 한국재료학회지 = Korean journal of materials research
ISSN 1225-0562,
ISBN

논문저자 및 소속기관 정보

저자, 소속기관, 출판인, 간행물 번호, 발행연도, 초록, 원문UR, 첨부파일 순으로 구성된 논문저자 및 소속기관 정보표입니다
저자(한글) 허훈회,웬티깅화,임재균,김길무,김의태
저자(영문)
소속기관
소속기관(영문)
출판인
간행물 번호
발행연도 2010-01-01
초록 $TiO_2$ nanowires were self-catalytically synthesized on bare Si(100) substrates using metallorganic chemical vapor deposition. The nanowire formation was critically affected by growth temperature. The $TiO_2$ nanowires were grown at a high density on Si(100) at $510^{ circ}C$ , which is near the complete decomposition temperature ( $527^{ circ}C$ ) of the Ti precursor $(Ti(O-iPr)_2(dpm)_2)$ . At $470^{ circ}C$ , only very thin ( $0.1{ mu}m$ ) $TiO_2$ film was formed because the Ti precursor was not completely decomposed. When growth temperature was increased to $550^{ circ}C$ and $670^{ circ}C$ , the nanowire formation was also significantly suppressed. A vaporsolid (V-S) growth mechanism excluding a liquid phase appeared to control the nanowire formation. The $TiO_2$ nanowire growth seemed to be activated by carbon, which was supplied by decomposition of the Ti precursor. The $TiO_2$ nanowire density was increased with increased growth pressure in the range of 1.2 to 10 torr. In addition, the nanowire formation was enhanced by using Au and Pt catalysts, which seem to act as catalysts for oxidation. The nanowires consisted of well-aligned ~20-30 nm size rutile and anatase nanocrystallines. This MOCVD synthesis technique is unique and efficient to self-catalytically grow $TiO_2$ nanowires, which hold significant promise for various photocatalysis and solar cell applications.
원문URL http://click.ndsl.kr/servlet/OpenAPIDetailView?keyValue=03553784&target=NART&cn=JAKO201007049674574
첨부파일

추가정보

과학기술표준분류, ICT 기술분류,DDC 분류,주제어 (키워드) 순으로 구성된 추가정보표입니다
과학기술표준분류
ICT 기술분류
DDC 분류
주제어 (키워드) lt,TEX gt,$TiO_2$ lt,/TEX gt,. nanowire,nanobelt,vapor-solid mechanism,chemical vapor deposition