• 제목/요약/키워드: Nanocomposite films

검색결과 161건 처리시간 0.027초

3-히드록시부티레이트-3-히드록시발러레이트 공중합체/그래핀 나노복합체의 제조 및 물성 (Preparation and Characterization of Poly(3-hydroxybutyrate-co-3-hydroxyvalerate)/Graphene Nanocomposites)

  • 유은정;이단비;하창식
    • 접착 및 계면
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    • 제16권3호
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    • pp.108-115
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    • 2015
  • 본 연구는 poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV)/그래핀 복합체의 제조 및 특성에 관한 연구이다. 투입하는 그래핀의 함량에 따른 복합체의 전기적 물성, 소수성, 및 열적 성질에 미치는 영향에 대해 연구하였다. 표면주사전자현미경 연구결과 PHBV 고분자 matrix에 판상의 그래핀이 고르게 잘 분산되었음을 확인하였다. X-선 회절 연구와 시차열량주사계 분석을 통하여 그래핀을 첨가할수록 PHBV의 결정도를 증가시켰고, 투입하는 그래핀의 함량이 증가할수록 복합체의 열적 안정성, 소수성 및 전기전도도 등이 증가하는 것으로 나타났다.

Photopatternable Conducting Polymer Nanocomposite with Incorporated Gold Nanoparticles for Use in Organic Field Effect Transistors

  • Huh, Sung;Choi, Hyun-Ho;Cho, Kil-Won;Kim, Seung-Bin
    • Bulletin of the Korean Chemical Society
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    • 제33권4호
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    • pp.1128-1134
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    • 2012
  • We investigated a new method for patterning organic field-effect transistors (OFETs) using a photopatternable conducting polymer nanocomposite, consisting of poly(3-hexylthiophene) (P3HT)-coated gold nanoparticles (AuNPs) that had been modified with a photoreactive cinnamate group, to form P3HT-AuNP-CI. We found that the addition of the cinnamate group to the nanoparticle surface assisted the preparation of a solvent-resistive semiconducting film and preserved the P3HT ordering, which was interrupted by Au-P3HT interactions, as well as provided UV-controllable electrical properties. The P3HT-AuNPs-CI films could be microscale-patterned via a UV crosslinking photoreaction, represented as a promising photopatternable semiconductor material for use in advanced applications, with tunable electrical properties for fabrication of sub-micron and microscale electronic devices.

Development of Nanostructured Light-Absorbers for Ultrasound Generation by Using a Solution-Based Process

  • Sang, Pil Gyu;Heo, Jeongmin;Song, Ju Ho;Thakur, Ujwal;Park, Hui Joon;Baac, Hyoung Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.377-377
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    • 2016
  • Under nanosecond-pulsed laser irradiation, light-absorbing thin films have been used for photoacoustic transmitters for ultrasound generation. Especially, nanostructured absorbers are attractive due to high optical absorption and efficient thermoacoustic energy conversion: for example, 2-dimensional (2-D) gold nanostructure array, synthetic gold nanoparticles, carbon nanotubes (CNTs), and reduced graphene oxides. Among them, CNT has been used to fabricate a composite film with polydimethylsiloxane (PDMS) that exhibits excellent photoacoustic conversion performance for high-frequency, high-amplitude ultrasound generation. Previously, CNT-PDMS nanocomposite films were made by using a high-temperature chemical vapor deposition (HTCVD) process for CNT growth. However, this approach is not suitable to fabricate large-area CNT films (>several cm2). This is because a chamber dimension of HTCVD is limited and also the process often causes nonuniform CNT growth when the film area increases. As an alternative approach, a solution-based process can be used to overcome these issues. We develop PDMS composite transmitters, based on the solution process, using several nanostructured light-absorbers such as CNTs, nanoink powders, and imprinted regular arrays of gold nanostructure. We compare fabrication processes of each composite transmitters and photoacoustic output performance.

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Morphology and Properties of Polyacrylonitrile/Single Wall Carbon Nanotube Composite Films

  • Kim, Seong Hoon;Min, Byung Ghyl;Lee, Sang Cheol;Park, Sung Bum;Lee, Tae Dong;Park, Min;Kumar, Satish
    • Fibers and Polymers
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    • 제5권3호
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    • pp.198-203
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    • 2004
  • Composite films were prepared by casting the solution of polyacrylonitrile (PAN) and single wall nanotube (SWNT) in DMF subsequent to sonication. The SWNTs in the films are well dispersed as ropes with 20-30 nm thickness. Moreover, AFM surface image of the composite film displays an interwoven fibrous structure of nanotubes which may give rise to conductive passways and lead to high conductivity. The polarized Raman spectroscopy is an ideal characterization technique for identification and the orientation study of SWNT. The well-defined G-peak intensity at 1580 $cm^{-1}$shows a dependency on the draw ratio under cross-Nicol. The degree of nanotube orientation in the drawn film was measurable from the sine curve obtained by rotating the drawn film on the plane of cross-Nicol of polarized Raman microscope. The threshold loading of SWNT for electrical conductivity in PAN is found to be lower than 1 wt% in the composite film. The electrical conductivity of the SWNT/PAN composite film decreased with increasing of draw ratio due to the collapse of the interwoven fibrous network of the nanotubes with uniaxial orientation.

Superhard SiC Thin Films with a Microstructure of Nanocolumnar Crystalline Grains and an Amorphous Intergranular Phase

  • Lim, Kwan-Won;Sim, Yong-Sub;Huh, Joo-Youl;Park, Jong-Keuk;Lee, Wook-Seong;Baik, Young-Joon
    • Corrosion Science and Technology
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    • 제18권5호
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    • pp.206-211
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    • 2019
  • Silicon carbide (SiC) thin films become superhard when they have microstructures of nanocolumnar crystalline grains (NCCG) with an intergranular amorphous SiC matrix. We investigated the role of ion bombardment and deposition temperature in forming the NCCG in SiC thin films. A direct-current (DC) unbalanced magnetron sputtering method was used with pure Ar as sputtering gas to deposit the SiC thin films at fixed target power of 200 W and chamber pressure of 0.4 Pa. The Ar ion bombardment of the deposited films was conducted by applying a negative DC bias voltage 0-100 V to the substrate during deposition. The deposition temperature was varied between room temperature and $450^{\circ}C$. Above a critical bias voltage of -80 V, the NCCG formed, whereas, below it, the SiC films were amorphous. Additionally, a minimum thermal energy (corresponding to a deposition temperature of $450^{\circ}C$ in this study) was required for the NCCG formation. Transmission electron microscopy, Raman spectroscopy, and glancing angle X-ray diffraction analysis (GAXRD) were conducted to probe the samples' structural characteristics. Of those methods, Raman spectroscopy was a particularly efficient non-destructive tool to analyze the formation of the SiC NCCG in the film, whereas GAXRD was insufficiently sensitive.

강화상 나노입자의 용액 반응성이 구리 도금 박막에 미치는 영향 (Influence of Reactivity of Reinforcing Nanoparticles with Aqueous Solution on Electroplating Copper Films)

  • 박지은;오민주;김이슬;이동윤
    • 한국재료학회지
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    • 제23권12호
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    • pp.695-701
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    • 2013
  • To understand how reactivity between reinforcing nanoparticles and aqueous solution affects electrodeposited Cu thin films, two types of commercialized cerium oxide (ceria, $CeO_2$) nanoparticles were used with copper sulfate electrolyte to form in-situ nanocomposite films. During this process, we observed variation in colors and pH of the electrolyte depending on the manufacturer. Ceria aqueous solution and nickel sulfate ($NiSO_4$) aqueous solutions were also used for comparison. We checked several parameters which could be key factors contributing to the changes, such as the oxidation number of Cu, chemical impurities of ceria nanoparticles, and so on. Oxidation number was checked by salt formation by chemical reaction between $CuSO_4$ solution and sodium hydroxide (NaOH) solution. We observed that the color changed when $H_2SO_4$ was added to the $CuSO_4$ solution. The same effect was obtained when $H_2SO_4$ was mixed with ceria solution; the color of ceria solution changed from white to yellow. However, the color of $NiSO_4$ solution did not show any significant changes. We did observe slight changes in the pH of the solutions in this study. We did not obtain firm evidence to explain the changes observed in this study, but changes in the color of the electrolyte might be caused by interaction of Cu ion and the by-product of ceria. The mechanical properties of the films were examined by nanoindentation, and reaction between ceria and electrolyte presumably affect the mechanical properties of electrodeposited copper films. We also examined their crystal structures and optical properties by X-ray diffraction (XRD) and UV-Vis spectroscopy.

졸-겔법에 의한 Te 미립자 분산 SiO2 유리 박막의 제조와 특성 (Preparation and Characteristics of Te Fine Particles Doped SiO2 Glass Thin Films by Sol-gel Method)

  • 문종수;강봉상
    • 한국세라믹학회지
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    • 제41권1호
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    • pp.24-29
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    • 2004
  • Te(Tellurium) 미립자를 $SiO_2$ 박막에 분산시켜 비선형 광학재료, 선택흡수막 및 투과막 등 새로운 기능성 재료로 활용하기 위하여 Te/$SiO_2$ 나노 목합체 박막을 제조하였다. 가수분해 조건을 변화시켰을 때 박막표면에 분산시킨 입자의 크기와 형상이 재료의 물성에 미치는 영향을 열처리 후의 시차중량분석과 엑스선 회절분석, 분광분석, 원자력간 현미경 그리고 전자현미경 관찰 등을 통하여 조사하였다. 제조된 박막의 광흡수 스펙트럼에스 Te 미립자의 플라즈마 공명에 의한 550nm 부근의 흡수피크가 관찰되어 비선형 광학성을 확인할 수 있었다. 박막의 표면 거칠기는 약 2.5nm 내외였고, Te 미립자의 크기는 약 5~10nm였다.

유기화 점토, 작용기화 그래핀 및 유기화 점토/작용기화 그래핀 복합체 등의 필러를 사용한 Poly(lactic acid) 나노 복합체의 물성 비교 (Comparison of the Properties of Poly(lactic acid) Nanocomposites with Various Fillers: Organoclay, Functionalized Graphene, or Organoclay/Functionalized Graphene Complex)

  • 권기대;장진해
    • 폴리머
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    • 제38권2호
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    • pp.232-239
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    • 2014
  • 용액 삽입(solution intercalation) 방법을 이용하여 다양한 나노 필러들을 포함하는 poly(lactic acid)(PLA) 나노 복합체를 합성하였다. 유기화 반응 처리된 벤토나이트 점토(NSE), 옥타데실아민(ODA)을 산화 그래핀(GO)에 반응한 ODA-GO, 그리고 유기화 처리된 벤토나이트와 ODA-GO의 복합체인 NSE/ODA-GO 등이 PLA 복합체 필름을 얻기 위한 나노 필러로 각각 사용되었다. 3가지 나노 필러들은 0-10 wt%의 함량으로 사용되었고 PLA 복합체 필름들의 열적-기계적 성질, 모폴로지, 산소 투과도 결과들을 서로 비교하였다. 투과전자현미경을 통하여 얻은 결과에서 NSE/ODA-GO 복합체는 약간 뭉쳐있었지만, NSE나 ODA-GO 등의 필러들은 PLA 매트릭스에 분산이 매우 양호하였음을 알 수 있었다. PLA 복합체 합성을 위해 사용된 3가지 필러 중에서, 열적 안정성에서는 NSE/ODA-GO가 가장 효과적이었지만, 기계적 인장 성질이나 산소 차단성에서는 각각 NSE와 ODA-GO가 가장 우수하였다.

전하 이동을 이용한 실세스퀴옥산/폴리스티렌 하이브리드 (Silsesquioxane/Polystyrene Hybrid Materials via Charge Transfer Interactions)

  • 최지원;요시키 주조
    • 폴리머
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    • 제31권2호
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    • pp.136-140
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    • 2007
  • Carbazole(electron donor)그룹과 dinitrobenzene(electron acceptor)그룹을 이용하여 전하 이동 작용이 실세스퀴옥산/고분자 하이브리드의 형성 메커니즘으로서 작용할 수 있는지 살펴보는 연구를 진행하였다. 하이브리드 실험은 새롭게 합성된 Poly(carbazole-styrene) (PS/D)와 dinitrobenzyl silsesquioxane (Cube/A)의 톨루엔 용액을 혼합/캐스팅을 하여 만들어진 필름을 이용하였으며 상분리가 없는 투명한 하이브리드 필름이 일부 조건에서 얻어졌다. PS/D및 Cube/A의 $^1H-NMR$분석, 그리고 하이브리드 필름들의 UV 흡수 실험은 실세스퀴옥산에 의한 입체 장애 효과가 없는 조건에서는 acceptor와 donor가 1:1로 전하 이동 착물을 형성할 수 있지만, 상분리가 없는 투명한 실세스퀴옥산 하이브리드는 acceptor/donor의 비율이 0.7 : 1 이하에서 형성된다는 것을 보여주었다. 이 결과들은 또 실세스퀴옥산 한 분자 당 평균 4개의 전하 이동 착물이 형성된다는 하이브리드 나노 구조에 대한 정보도 제공하였다.

발포용 PU/MWNT 복합필름의 제조와 특성분석 (Manufacturing and Characteristics Analysis of PU/MWNT Composite Film for Forming)

  • 박준형;김정현;김승진
    • 한국염색가공학회지
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    • 제22권4호
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    • pp.362-372
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    • 2010
  • This paper surveys the physical properties of the multiwall carbon nanotube (MWNT) and polyurethane composite film for improvement of mechanical properties and electrical characteristics. The modification of MWNT was carried out by acid treatment with nitric and sulphuric acid mixed solution, and then followed by thermal treatment for enhancing MWNT dispersion with polyurethane. This modified MWNT was mixed with polyurethane by changing the loading content of MWNT and dispersion time under the dimethylformamide solution in the ultrasonic wave apparatus. Various physical characteristics of the modified PU/MWNT films were measured and analyzed in terms of the loading content and dispersion time. The maximum absorbance of the PU/MWNT films were observed with the 2wt% loading at dispersion times of 2 and 24 hour, respectively. The minimum electrical volume resistivity of PU/MWNT film was shown at the loading content of 0.5wt% or more irrespective of dispersion treating time. However the optimum condition was assumed to 2wt% loading at dispersion time of 2 hours by assessing the surface profile of the film using video microscope. The breaking stress and strain of the PU/MWNT film decreased with increasing loading content, but no change of physical properties was shown with increasing in dispersion time.