Abstract

니켈촉매 막을 증착시킨 산화규산 기판위에 아세틸렌기체와 수소기체를 원료로 육불화황기체를 첨가기체로 탄소코일을 증착하였다. 육불화황이 투입되는 단계에 따라 성장된 탄소코일의 특성(형성 밀도, 형상)을 조사하였다. 육불화황을 연속적으로 주입하였을 경우 선형, 마이크로크기 코일, 나노크기 코일, 그리고 파동형 나노크기 코일 등 다양한 형태의 탄소코일들이 성장하였다. 하지만, 탄소코일 초기 증착단계에서 1분정도의 짧은시간 동안 육불화황을 주입한 경우 나노크기의 탄소코일 형상만을 대부분 얻을 수 있었다. 탄소코일 합성반응시간이 1분 정도 지체된 후의 단계에서 짧은시간 동안의 육불화황 주입은 코일형상 제어를 저해하였다. 따라서, 육불화황의 주입 시간과 주입단계가 탄소 코일의 형상을 결정하는 중요한 요인임을 알 수 있었다. Carbon coils could be synthesized on nickel catalyst layer-deposited silicon oxide substrate using <TEX>$C_2H_2$</TEX> and <TEX>$H_2$</TEX> as source gases and <TEX>$SF_6$</TEX> as an additive gas under thermal chemical vapor deposition system. The characteristics (formation density and morphology) of as-grown carbon coils according to the injection stage of <TEX>$SF_6$</TEX> gas incorporation were investigated. A continuous injecting of <TEX>$SF_6$</TEX> gas flow could give rise to many types of carbon coils-related geometries, namely linear tub, micro-sized coil, nano-sized coil, and wave-like nano-sized coil. However, the limitation of the geometry as the nano-sized geometries of carbon coils could be achieved by the incorporation of <TEX>$SF_6$</TEX> in a short time (1 min) during the initial deposition stage. A delayed injection of a short time <TEX>$SF_6$</TEX> gas flow can deteriorate the limitation of the geometries. It confirms that the injection time and its starting point of <TEX>$SF_6$</TEX> gas flow would be very important to determine the geometries of carbon coils.

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