• Title/Summary/Keyword: 나노벽

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Effect of Ni Catalyst Thickness on Carbon Nanotube Growth Synthesized by Hot-filament PECVD (Ni 촉매층의 두께가 탄소나노튜브의 성장 형태에 미치는 영향)

  • Kim, Jung-Tae;Park, Yong-Seob;Kim, Hyung-Jin;Choi, Eun-Chang;Hong, Byung-You
    • Journal of the Korean Vacuum Society
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    • v.16 no.2
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    • pp.128-133
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    • 2007
  • In this study, we observed the shapes of CNTs formed with the thinckness of catalyst. Catalyst layer was grown by magnetron sputtering method and the thickness of Ni catalyst is the range from 20 to 80 nm. Also, the synthesis of CNT with Ni catalyst thickness was grown by hot-filament PECVD method. And, we investigated the composition of CNTs by using EDS measurement, also observed the shapes of CNTs by using HRTEM and FESEM measurements. In the result, through the TEM analysis, we observed the empty inside of CNTs and the multiwall CNTs, also confirmed the tip of CNT containing Ni. The composition of CNTs are consisted of an element of C, Ti, and Ni. As you shown the growth shapes of CNTs, the pretreatment of the catalyst before te growth of CNTs changed the particle size of the catalysts and grown the CNTs of the different shapes. Consequently, the best vertically alined and well-arranged CNTs exhibited from the substrate deposited at the catalyst thickness of 40 nm.

Manufacturing/Material Property Characterization of Polymer Nano-composites with Chemically Functionalized Carbon Nanotubes (화학적으로 기능화된 탄소나노튜브를 사용한 고분자 복합재료의 제조 및 물성 평가에 대한 연구)

  • Kim Taegoo;Goak Jeungchoon;Lee Naesung;Lee Jongwhi;Park Joohyuk
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.28 no.10
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    • pp.1534-1540
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    • 2004
  • This study aims to obtain fundamental understandings involving the manufacturing processes of nano-composites with chemically surface-modified multi-walled carbon nanotubes(MWCNTs), and explore the role of functionalized MWCNTs in the epoxy/MWCNT composites. For this purpose, MWCNTs were purified by the thermo-chemical oxidation process, and incorporated into an epoxy matrix by in situ polymerization process, the surface of MWCNTs were functionalized with carboxyl functions which were demonstrated by an infrared spectroscopy. The mechanical properties of epoxy/MWCNT nano-composites were measured to investigate the role of a chemically functionalized carbon nanotubes. To improve the dispersion quality of MWCNTs in the epoxy matrix, methanol and acetone were exploited as dispersion media with sonification. The epoxy/MWCNT nano-composites with 1 or 2 wt.% addition of functionalized carbon nanotubes show an improved tensile strength and wear resistance in comparison with pure epoxy, which shows the mechanical load transfer improves through chemical bonds between epoxy and functionalized MWCNTs. The tensile strength with 7 wt.% functionalized MWCNTs increases by 28% and the wear resistance is dramatically improved by 100 times.

Synthesis of Si Nanowire/Multiwalled Carbon Nanotube Core-Shell Nanocomposites (실리콘 나노선/다중벽 탄소나노튜브 Core-Shell나노복합체의 합성)

  • Kim, Sung-Won;Lee, Hyun-Ju;Kim, Jun-Hee;Son, Chang-Sik;Kim, Dong-Hwan
    • Korean Journal of Materials Research
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    • v.20 no.1
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    • pp.25-30
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    • 2010
  • Si nanowire/multiwalled carbon nanotube nanocomposite arrays were synthesized. Vertically aligned Si nanowire arrays were fabricated by Ag nanodendrite-assisted wet chemical etching of n-type wafers using $HF/AgNO_3$ solution. The composite structure was synthesized by formation of a sheath of carbon multilayers on a Si nanowire template surface through a thermal CVD process under various conditions. The results of Raman spectroscopy, scanning electron microscopy, and high resolution transmission electron microcopy demonstrate that the obtained nanocomposite has a Si nanowire core/carbon nanotube shell structure. The remarkable feature of the proposed method is that the vertically aligned Si nanowire was encapsulated with a multiwalled carbon nanotube without metal catalysts, which is important for nanodevice fabrication. It can be expected that the introduction of Si nanowires into multiwalled carbon nanotubes may significantly alter their electronic and mechanical properties, and may even result in some unexpected material properties. The proposed method possesses great potential for fabricating other semiconductor/CNT nanocomposites.

Multidimensional ZnO light-emitting diode structures grown by metalorganic chemical vapor deposition on p-Si (이종접합구조를 이용한 다층형복합구조의 산화아연 발광소자 제작)

  • Kim, Dong-Chan;Han, Wan-Suk;Kong, Bo-Hyun;Cho, Hyung-Koun;Kim, Hyoung-Sub
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.11a
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    • pp.59-59
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    • 2007
  • 최근 GaN계 LED를 대체할 만한 물질로 주목받고 있는 ZnO는 단결정 박막성장의 어려움, 동일접합 LED 소자구현을 위한 p-ZnO 성장의 어려움 3원계 합금제작의 어려움 등으로 소자제작에 있어 고전을 하고 있다. 특히 이러한 문제점을 극복하고자 하는 방안으로 양자 제한 효과, 탁월한 결정성, self-assembly, internal stress 등의 새로운 기능성을 지닌 ZnO 나노구조가 제시되었다. 하지만 나노구조를 이용한 다이오드 제작에서도 금속전극의 접합이라는 문제의 벽에 가로막혀 있다. 본 실험에서는 자체 개발된 MOCVD 장비를 이용한 일차원 ZnO 나노선을 성장한 이후 연속적으로 박막을 성장하여 금속전극의 접합을 시도하였다. 이종접합구조 뿐만 아니라 일차원 및 이차원 구조의 복합구조는 일반 다결정 박막보다 결정성에서 우수한 특성을 보였으며, 다이오드 제작시에 높은 효율을 보였다.

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Preparation of Cellulose Nanofibers from Domestic Plantation Resources (국내 자생 식물자원을 이용한 셀룰로오스 나노섬유의 제조 기술 개발)

  • Jang, Jae-Hyuk;Kwon, Gu-Joong;Kim, Jong-Ho;Kwon, Sung-Min;Yoon, Seung-Lak;Kim, Nam-Hun
    • Journal of the Korean Wood Science and Technology
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    • v.40 no.3
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    • pp.156-163
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    • 2012
  • This research has been carried out to investigate the characteristics of cellulose nanofibers manufactured from domestic lignocellulosic materials by mechanical grinding method. The continuous grinding process was effective for loosening cell wall structure, with increasing grinding time, much smaller nanofibers were observed. Filtration time was linearly increased with increasing grinding time for all experimental materials. Relative crystallinity of cellulose was not changed by grinding process, but increased by delignification treatment. Tensile property of fiber sheets was drastically improved with increasing grinding time. Fibers sheets obtained from delignified cone stalks showed an excellent tensile strength. Consequently, it is considered that this study presented some effective information for manufacturing cellulose nanofibers with domestic plantation resources.

A Study on the Development of a Novel Pressure Sensor based on Nano Carbon Piezoresistive Composite by Using 3D Printing (3D 프린팅을 활용한 탄소 나노 튜브 전왜성 복합소재 기반 압력 센서 개발 연구)

  • Kim, Sung Yong;Kang, Inpil
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.41 no.3
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    • pp.187-192
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    • 2017
  • This paper presents an ongoing study to develop a novel pressure sensor by means of a Nano Carbon Piezoresistive Composite (NCPC). The sensor was fabricated using the 3D printing process. We designed a miniaturized cantilever-type sensor electrode to improve the pressure sensing performance and utilized a 3D printer to build a small-sized body. The sensor electrode was made of 2 wt% MWCNT/epoxy piezoresistive nano-composite, and the sensor body was encapsulated with a pipe plug cap for easy installation to any pressure system. The piezoresistivity responses of the sensor were converted into stable voltage outputs by using a signal processing system, which is similar to a conventional foil strain gauge. We evaluated the pressure-sensing performances using a pressure calibrator in the lab environment. The 3D-printed cantilever electrode pressure sensor showed linear voltage outputs of up to 16,500 KPa, which is a 200% improvement in the pressure sensing range when compared with the bulk-type electrode used in our previous work.

Investigation of Thermal Stability of Epoxy Composite Reinforced with Multi-Walled Carbon Nanotubes and Micrometer-Sized Silica Particles (다중벽 탄소나노튜브와 마이크로미터 크기 실리카 입자로 강화된 에폭시 복합재료의 열 안정성에 관한 연구)

  • Oh, Ryun;You, Byeong Il;Ahn, Ji Ho;Lee, Gyo Woo
    • Composites Research
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    • v.29 no.5
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    • pp.306-314
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    • 2016
  • In this study, to improve the thermal stabilities of the epoxy composite specimens in addition to the enhanced mechanical properties, those were reinforced with carbon nanotubes and micrometer-sized silica particles. To disperse the filler in matrix relatively simple physical process, specimens were fabricated using shear mixing and sonication. Tensile strength, coefficients of thermal expansion and thermal conductivity of the specimens were measured with varied contents of the two fillers. The mechanical and thermal properties were also discussed, and the experimental results of thermal expansion related to the thermal stability of the specimens were compared with those from several micromechanics models. The hybrid composites specimens incorporating 0.6 wt% of carbon nanotubes and 50 wt% of silica particles showed better mechanical properties than the others with increase in tensile strength up to 11%, with respect to those of the baseline specimens. As the silica contents were increased the thermal expansion was reduced down to 36%, and the thermal stability was improved with the decreased thermal deformation. Thermal conductivity of the epoxy composite specimens incorporating 50 wt% of silica particles was enhanced, which demonstrate improvement of 72%. The mechanical and thermal properties of the hybrid composites specimens incorporating the two fillers were improved simultaneously.

Soft-template Synthesis of Magnetically Separable Mesoporous Carbon (자성에 의해 분리 가능한 메조포러스 카본의 소프트 주형 합성)

  • Park, Sung Soo;Ha, Chang-Sik
    • Journal of Adhesion and Interface
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    • v.18 no.2
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    • pp.75-81
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    • 2017
  • In this study, we synthesized mesoporous carbon (Carbonized Ni-FDU-15) containing nanoporous structures and magnetic nanoparticles. Carbonized Ni-FDU-15 was synthesized via evaporation-induced self-assembly (EISA) and direct carbonization by using a triblock copolymer (F127) as a structure-directing agent, a resol precursor as a carbon-pore wall forming material, and nickel (II) nitrate as a metal ion source. The mesoporous carbon has a well-ordered two-dimensional hexagonal structure. Meanwhile, nickel (Ni) metal and nickel oxide (NiO) were produced in the magnetic nanoparticles in the pore wall. The size of the nanoparticles was about 37 nm. The surface area, pore size and pore volume of Carbonized Ni-FDU-15 were $558m^2g^{-1}$, $22.5{\AA}$ and $0.5cm^3g^{-1}$, respectively. Carbonized Ni-FDU-15 was found to move in the direction of magnetic force when magnetic force was externally applied. The magnetic nanoparticle-bearing mesoporous carbons are expected to have high applicability in a wide variety of applications such as adsorption/separation, magnetic storage media, ferrofluid, magnetic resonance imaging (MRI) and drug targeting, etc.