• Title/Summary/Keyword: SiC nanotubes

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Improvement of Electron Emission Characteristics and Emission Stability from Metal-coated Carbon Nanotubes (금속 코팅된 탄소나노튜브의 전계 방출 특성 및 신뢰성 향상)

  • Uh, H.S.;Park, S.;Kim, B.
    • Journal of the Korean Vacuum Society
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    • v.20 no.6
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    • pp.436-441
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    • 2011
  • Metal coating with several nanometer thickness was applied on the carbon nanotubes (CNTs) in order to improve electron emission characteristics and emission reliability for the potential applications in the area of various electron sources and displays. CNTs were grown on the 2-nm thick Invar (52% Fe, 42% Ni, 6% Co alloy)-catalized Si substrate by using plasma-enhanced chemical vapor deposition at $450^{\circ}C$. In order to reduce the spatial density of densely packed CNTs, as-grown CNTs were partly etched back by $N_2$ plasma and subsequently coated with 5~150 nm thick Ti by a sputtering method. 5 nm thick Ti-coated CNTs produced four times higher emission current density at the electric field of 6 V/${\mu}m$ and much lower emission current fluctuation, compared with the as-grown CNTs. These improved emission properties are mainly due to not only the work function of Ti (4.3 eV) lower than that of pristine CNTs (5 eV), but also lower contact resistance and better adhesion between CNT emitters and substrate accomplished by Ti coating.

Effect of the catalyst deposition rates on the growth of carbon nanotubes

  • Ko, Jae-Sung;Choi, In-Sung;Lee, Nae-Sung
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2010.06a
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    • pp.264-264
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    • 2010
  • Single-walled carbon nanotubes (SWCNTs) were grown on a Si wafer by using thermal chemical vapor deposition (t-CVD). We investigated the effect of the catalyst deposition rate on the types of CNTs grown on the substrate. In general, smaller islands of catalyst occur by agglomeration of a catalyst layer upon annealing as the catalyst layer becomes thinner, which results in the growth of CNTs with smaller diameters. For the same thickness of catalyst, a slower deposition rate will cause a more uniformly thin catalyst layer, which will be agglomerated during annealing, producing smaller catalyst islands. Thus, we can expect that the smaller-diameter CNTs will grow on the catalyst deposited with a lower rate even for the same thickness of catalyst. The 0.5-nm-thick Fe served as a catalyst, underneath which Al was coated as a catalyst support as well as a diffusion barrier on the Si substrate. The catalyst layers were. coated by using thermal evaporation. The deposition rates of the Al and Fe layers varied to be 90, 180 sec/nm and 70, 140 sec/nm, respectively. We prepared the four different combinations of the deposition rates of the AI and Fe layers. CNTs were synthesized for 10 min by flowing 60 sccm of Ar and 60 sccm of $H_2$ as a carrier gas and 20 sccm of $C_2H_2$ as a feedstock at 95 torr and $810^{\circ}C$. The substrates were subject to annealing for 20 sec for every case to form small catalyst islands prior to CNT growth. As-grown CNTs were characterized by using field emission scanning electron microscopy, high resolution transmission electron microscopy, Raman spectroscopy, UV-Vis NIR spectroscopy, and atomic force microscopy. The fast deposition of both the Al and Fe layers gave rise to the growth of thin multiwalled CNTs with the height of ${\sim}680\;{\mu}m$ for 10 min while the slow deposition caused the growth of ${\sim}800\;{\mu}m$ high SWCNTs. Several radial breathing mode (RBM) peaks in the Raman spectra were observed at the Raman shifts of $113.3{\sim}281.3\;cm^{-1}$, implying the presence of SWCNTs (or double-walled CNTs) with the tube diameters 2.07~0.83 nm. The Raman spectra of the as-grown SWCNTs showed very low G/D peak intensity ratios, indicating their low defect concentrations.

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A Study on the Applicability of CNT/Aluminum Nanocomposites to Automotive Parts (CNT강화 알루미늄 나노복합재의 자동차용 부품 적용성 연구)

  • Min, Byung Ho;Nam, Dong Hoon;Park, Hoon Mo;Lee, Kyung Moon;Lee, Jong Kook
    • Composites Research
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    • v.28 no.4
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    • pp.226-231
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    • 2015
  • Various characteristics(thermal expansion, microstructure, etc.) and mechanical properties of CNT-aluminum nano composites manufactured by volume production system were evaluated. Also, formability and durability were evaluated for potential applications in automotive parts, via compared with high-elasticity material (A390) and the current commercial product. As a result, this composite has excellent mechanical properties and formability, therefore, to verity its potential for application as light and high strength materials in automobile part.

NO Gas Sensing Properties of ZnO-SWCNT Composites (산화아연-단일벽탄소나노튜브복합체의 일산화질소 감지 특성)

  • Jang, Dong-Mi;Ahn, Se-Yong;Jung, Hyuck;Kim, Do-Jin
    • Korean Journal of Materials Research
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    • v.20 no.11
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    • pp.623-627
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    • 2010
  • Semiconducting metal oxides have been frequently used as gas sensing materials. While zinc oxide is a popular material for such applications, structures such as nanowires, nanorods and nanotubes, due to their large surface area, are natural candidates for use as gas sensors of higher sensitivity. The compound ZnO has been studied, due to its chemical and thermal stability, for use as an n-type semiconducting gas sensor. ZnO has a large exciton binding energy and a large bandgap energy at room temperature. Also, ZnO is sensitive to toxic and combustible gases. The NO gas properties of zinc oxide-single wall carbon nanotube (ZnO-SWCNT) composites were investigated. Fabrication includes the deposition of porous SWCNTs on thermally oxidized $SiO_2$ substrates followed by sputter deposition of Zn and thermal oxidation at $400^{\circ}C$ in oxygen. The Zn films were controlled to 50 nm thicknesses. The effects of microstructure and gas sensing properties were studied for process optimization through comparison of ZnO-SWCNT composites with ZnO film. The basic sensor response behavior to 10 ppm NO gas were checked at different operation temperatures in the range of $150-300^{\circ}C$. The highest sensor responses were observed at $300^{\circ}C$ in ZnO film and $250^{\circ}C$ in ZnO-SWCNT composites. The ZnO-SWCNT composite sensor showed a sensor response (~1300%) five times higher than that of pure ZnO thin film sensors at an operation temperature of $250^{\circ}C$.

Surface Morphology of PEO-treated Ti-6Al-4V Alloy after Anodic Titanium Oxide Treatment (ATO 처리후, 플라즈마 전해 산화 처리된 Ti-6Al-4V 합금의 표면 형태)

  • Kim, Seung-Pyo;Choe, Han-Cheol
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2018.06a
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    • pp.75-75
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    • 2018
  • Commercially pure titanium (CP-Ti) and Ti-6Al-4V alloys have been widely used in implant materials such as dental and orthopedic implants due to their corrosion resistance, biocompatibility, and good mechanical properties. However, surface modification of titanium and titanium alloys is necessary to improve osseointegration between implant surface and bone. Especially, when titanium oxide nanotubes are formed on the surface of titanium alloy, cell adhesion is greatly improved. In addition, plasma electrolytic oxide (PEO) coatings have a good safety for osseointegration and can easily and quickly form coatings of uniform thickness with various pore sizes. Recently, the effects of bone element such as magnesium, zinc, strontium, silicon, and manganese for bone regeneration are researching in dental implant field. The purpose of this study was researched on the surface morphology of PEO-treated Ti-6Al-4V alloy after anodic titanium oxide treatmentusing various instruments. Ti-6Al-4V ELI disks were used as specimens for nanotube formation and PEO-treatment. The solution for the nanotube formation experiment was 1 M $H_3PO_4$ + 0.8 wt. % NaF electrolyte was used. The applied potential was 30V for 1 hours. The PEO treatment was performed after removing the nanotubes by ultrasonics for 10 minutes. The PEO treatment after removal of the nanotubes was carried out in the $Ca(CH_3)_2{\cdot}H_2O+(CH_3COO)_2Mg{\cdot}4H_2O+Mn(CH_3COO)_2{\cdot}4H_2O+Zn(CH_3CO_2)_2Zn{\cdot}2H_2O+Sr(CH_2COO)_2{\cdot}0.5H_2O+C_3H_7CaO_6P$ and $Na_2SiO_3{\cdot}9H_2O$ electrolytes. And the PEO-treatment time and potential were 3 minutes at 280V. The morphology changes of the coatings on Ti-6Al-4V alloy surface were observed using FE-SEM, EDS, XRD, AFM, and scratch tester. The morphology of PEO-treated surface in 5 ion coating solution after nanotube removal showed formation or nano-sized mesh and micro-sized pores.

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Electrochemical properties of heat-treated multi-walled carbon nanotubes (열처리된 탄소나노튜브 상대전극의 전기화학적 특성 연구)

  • Lee, S.K.;Moon, J.H.;Hwang, S.H.;Kim, G.C.;Lee, D.Y.;Kim, D.H.;Jeon, M.H.
    • Journal of the Korean Vacuum Society
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    • v.17 no.1
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    • pp.67-72
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    • 2008
  • We have studied the effect of heat treatment of multi-walled carbon nanotubes (MWNTs) as a counter electrode on the electro-chemical properties of dye-snsitized solar cells. MWNTs on the p-type Si substrate were synthesized by thermal chemical vapor deposition (CVD) using Fe catalysts. We prepared the two types of MWNTs samples with the different diameters. The rapid thermal annealing (RTA) treatment for the MWNTs was carried out at the growth temperature ($900^{\circ}C$) for 1 minute with $N_2$ gas atmosphere. The structural, electrical and electrochemical properties of MWNTs were investigated by field-emission scanning electron microscopy (FE-SEM), Raman spectroscopy, 2-point probe station and electrochemical impedance spectroscopy (EIS). The I(D)/I(G) ratio of heat-treated MWNTs in Raman spectra was considerably decreased. It was also found that the heat-treated MWNTs showed better redox reaction of iodide at the interface between MWNTs surface and electrolyte than that of as-grown MWNTs. The redox resistance value of heat-treated electrodes was measured to be much lower than that of as-grown electrode at the interface. As a result, the counter electrode using the heat-treated MWNTs showed better electrochemical properties.

Surface Treatment of Vertically Aligned CNTs Using Atmospheric Pressure Plasma Torch System

  • Lee, Byeong-Ju;Jeong, Gu-Hwan
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.293.1-293.1
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    • 2013
  • 탄소나노튜브(carbon nanotubes; CNTs)는 우수한 물성으로 인하여 전자소자, 에너지 저장매체, 투명전도막, 복합재료 등 매우 다양한 분야에 응용이 가능할 것으로 예측되고 있으며, 더욱이 이러한 특성은 구조변형, 화학적 도핑뿐만 아니라 표면처리를 통해서 제어가 가능하다고 알려져 있다. 이를 위해 기존에는 열처리를 통하여 CNTs를 표면처리한 결과들이 보고되었으나, 고온에서 장시간의 공정이 요구되는 열처리 공정의 단점을 보완하기 위하여 플라즈마 처리를 통해 상온에서 단시간의 공정으로 CNTs를 표면처리하는 방법이 제시되었다. 특히 최근에는, 향후 산업적 응용을 목적으로 종래의 진공 환경에서 벗어나 대기압 연속공정 개발을 위한 대기압 플라즈마 기반의 표면처리 공정에 대하여 관심이 집중되고 있는 상황이다. 본 연구에서는 대기압에서 플라즈마를 안정적으로 방전 및 유지 할 수 있는 플라즈마 토치 시스템을 구축하였고, 이를 이용하여 수직배향 CNTs를 표면 처리함으로써 그 영향을 살펴보았다. CNTs는 $SiO_2$ 웨이퍼 위에 증착한 철 촉매를 이용하여 $750^{\circ}C$에서 수직배향 합성하였으며, 원료가스로는 아세틸렌을 사용하였다. 대기압 플라즈마 장치의 경우 고전압 교류 전원장치를 이용하여 토치타입으로 제작하였다. 플라즈마는 아르곤과 질소가스를 시용하여 방전하고, 기판과의 거리 및 처리시간을 변수로 CNTs를 표면처리하였다. 플라즈마 처리 전후 접촉각 측정을 통하여 소수성이었던 CNTs 표면이 친수성으로 변화하는 것을 확인하였다. 또한 Raman 분석을 통하여 대기압 플라즈마의 처리조건에 따른 CNTs 의 구조적 결함 발생 정도를 정량화 시킬 수 있었다. 이를 통하여 대기압 플라즈마를 이용할 경우, CNTs의 구조적 손상을 최소화 하면서 효율적으로 표면특성을 변화시킬 수 있는 처리조건을 도출하였다.

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