• 제목/요약/키워드: Metal Nanomaterial

검색결과 13건 처리시간 0.029초

One-dimensional Nanomaterials for Field Effect Transistor (FET) Type Biosensor Applications

  • Lee, Min-Gun;Lucero, Antonio;Kim, Ji-Young
    • Transactions on Electrical and Electronic Materials
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    • 제13권4호
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    • pp.165-170
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    • 2012
  • One-dimensional, nanomaterial field effect transistors (FET) are promising sensors for bio-molecule detection applications. In this paper, we review fabrication and characteristics of 1-D nanomaterial FET type biosensors. Materials such as single wall carbon nanotubes, Si nanowires, metal oxide nanowires and nanotubes, and conducting polymer nanowires have been widely investigated for biosensors, because of their high sensitivity to bio-substances, with some capable of detecting a single biomolecule. In particular, we focus on three important aspects of biosensors: alignment of nanomaterials for biosensors, surface modification of the nanostructures, and electrical detection mechanism of the 1-D nanomaterial sensors.

금속 나노입자 프린팅 공정을 이용한 유연전기소자 연구 현황 (Research Status on Flexible Electronics Fabrication by Metal Nano-particle Printing Processes)

  • 고승환
    • 한국입자에어로졸학회지
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    • 제6권3호
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    • pp.131-138
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    • 2010
  • Flexible electronics are the electronics on flexible substrates such as a plastic, fabric or paper, so that they can be folded or attached on any curved surfaces. They are currently recognized as one of the most innovating future technologies especially in the area of portable electronics. The conventional vacuum deposition and photolithographic patterning methods are well developed for inorganic microelectronics. However, flexible polymer substrates are generally chemically incompatible with resists, etchants and developers and high temperature processes used in conventional integrated circuit processing. Additionally, conventional processes are time consuming, very expensive and not environmentally friendly. Therefore, there are strong needs for new materials and a novel processing scheme to realize flexible electronics. This paper introduces current research trends for flexible electronics based on (a) nanoparticles, and (b) novel processing schemes: nanomaterial based direct patterning methods to remove any conventional vacuum deposition and photolithography processes. Among the several unique nanomaterial characteristics, dramatic melting temperature depression (Tm, 3nm particle~$150^{\circ}C$) and strong light absorption can be exploited to reduce the processing temperature and to enhance the resolution. This opens a possibility of developing a cost effective, low temperature, high resolution and environmentally friendly approach in the high performance flexible electronics fabrication area.

무전해 도금에서 Sn 민감화와 Pd 활성화 공정의 세척 효과에 대한 연구 (A Study on Rinsing Effects of Sn Sensitization and Pd Activation Processes for Uniform Electroless Plating)

  • 정승재;장미세;정재원;양상선;권영태
    • 한국분말재료학회지
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    • 제29권6호
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    • pp.511-516
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    • 2022
  • Electroless plating is widely utilized in engineering for the metallization of insulator substrates, including polymers, glass, and ceramics, without the need for the application of external potential. Homogeneous nucleation of metals requires the presence of Sn-Pd catalysts, which significantly reduce the activation energy of deposition. Therefore, rinsing conducted during Sn sensitization and Pd activation is a key variable for the formation of a uniform seed layer without the lack or excess of catalysts. Herein, we report the optimized rinsing process for the functionalization of Sn-Pd catalysts, which enables the uniform FeCo metallization of the glass fibers. Rinsing enables good deposition of the FeCo alloy because of the removal of excess catalysts from the glass fiber. Concurrently, excessive rinsing results in a complete removal of the Sn-Pd nucleus. Collectively, the comprehensive study of the proposed nanomaterial preparation and surface science show that the metallization of insulators is a promising technology for electronics, solar cells, catalysts, and mechanical parts.

은나노물질을 포함한 수질시료의 보관조건 (Preservation Conditions of Aqueous Samples Containing silver Nanomaterials)

  • 강문희;박솔;이상우;김현아;이병태;엄익춘;김순오
    • 대한환경공학회지
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    • 제37권4호
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    • pp.218-227
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    • 2015
  • 나노기술의 이용도가 높아지면서 나노물질 유출로 인한 환경오염 문제가 제기되고 있다. 수질시료 내 나노물질의 분석을 위해서는 시료의 교란을 최소화할 수 있는 보관조건 마련이 선결 요건이지만, 아직까지 적합한 보관조건이 제시되고 있지 않다. 이에 본 연구는 citrate로 코팅된 은 나노물질(cit-AgNP)을 대상으로 금속나노물질을 함유한 수질시료의 보관조건을 제시하고자 수행되었다. 이를 위해 시간분해 동적산란법(time-resolved dynamic light scattering)을 이용하여 pH, 배경용액의 농도, 온도, 나노물질의 농도 등과 같은 환경적인 조건과 시간에 따른 cit-AgNP의 크기 변화를 관찰하였다. 실험을 통한 각 환경조건별 AgNP의 응집특성을 해석하고 이러한 결과를 바탕으로 시료의 보관조건을 제시하였다. 그리고 AgNP의 입자농도와 응집속도의 선형적 관계로부터 구한 doublet time을 이용하여 시료의 보관기간을 산정하였다. 실험결과, pH는 7 이상, 배경 용액($Ca(NO_3)_2$)의 농도는 3 mM 이하, 온도는 냉장($4^{\circ}C$) 상태, 그리고 cit-AgNP의 농도는 2 mg/L 이하에서 응집속도가 0에 가까운 값을 나타내었다. 또한 수질시료 내 존재하는 100 nm cit-AgNP의 농도를 환경에 존재할 수 있는 낮은 수준인 $1{\mu}g/L$로 가정한 후 doublet time를 구한 결과, 가능한 시료의 보관기간은 15.79~17.53일 정도인 것으로 조사되었다. 하지만 pH와 배경 용액의 농도 조절은 시료의 변질과 교란이 우려되기 때문에 보관조건으로 일반화하여 제시하는 것은 적절하지 않고, 나노물질 자체의 농도를 조절하는 것은 수질시료 내 나노물질의 농도 등의 분석을 위한 시료의 보관조건으로 바람직하지 않다. 그러므로 본 연구의 결과로부터 일반화하여 제시할 수 있는 보관조건은 냉장($4^{\circ}C$) 상태에서 2주일 정도인 것으로 판단된다.

Assembly of Biomimetic Peptoid Polymers

  • 남기태
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 춘계학술발표대회
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    • pp.10.2-10.2
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    • 2011
  • The design and synthesis of protein-like polymers is a fundamental challenge in materials science. A biomimetic approach is to explore the impact of monomer sequence on non-natural polymer structure and function. We present the aqueous self-assembly of two peptoid polymers into extremely thin two-dimensional (2D) crystalline sheets directed by periodic amphiphilicity, electrostatic recognition and aromatic interactions. Peptoids are sequence-specific, oligo-N-substituted glycine polymers designed to mimic the structure and functionality of proteins. Mixing a 1:1 ratio of two oppositely charged peptoid 36 mers of a specific sequence in aqueous solution results in the formation of giant, free-floating sheets with only 2.7 nm thickness. Direct visualization of aligned individual peptoid chains in the sheet structure was achieved using aberration-corrected transmission electron microscopy. Specific binding of a protein to ligand-functionalized sheets was also demonstrated. The synthetic flexibility and biocompatibility of peptoids provide a flexible and robust platform for integrating functionality into defined 2D nanostructures. In the later part of my talk, we describe the use of metal ions to construct two-dimensional hybrid films that have the ability to self-heal. Incubation of biomimetic peptoid polymers with specific divalent metal ions results in the spontaneous formation of uniform multilayers at the air-water interface. We anticipate that ease of synthesis and transfer of these two-dimensional materials may have many potential applications in catalysis, gas storage and sensing, optics, nanomaterial synthesis, and environmentally responsive scaffolds.

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이차원 나노 소재 기반 촉각 센서 기술 동향 (Research Trends of Two-Dimensional Nanomaterial-Based Tactile Sensors)

  • 민복기;김성준;이윤식;최춘기
    • 전자통신동향분석
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    • 제33권1호
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    • pp.123-130
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    • 2018
  • Tactile sensors, which are commonly referred to as pressure and strain sensors, have been extensively investigated to meet the demands for attachable and wearable electronics for monitoring the health status or activity of human users. For this purpose, the introduction of two-dimensional (2D) materials such as graphene and transition metal dichalcogenides (TMDs) with high mechanical strength at the atomic scale is very suitable for tactile sensors applicable for use in human-friendly devices. In this paper, we examine a descriptive summary of a tactile sensor and review state-of- the-art research trends of 2D material-based tactile sensors in terms of the material and architecture. Finally, we propose a roadmap for future studies into advanced tactile sensors based on our ongoing research.

메탄 대향류 확산화염내 수소를 첨가한 탄소나노물질 합성에 관한 연구 (Study on synthesis of carbon nanomaterials by hydrogen mixing in counterflow methane diffusion flames)

  • 신우중;최정식;윤석훈;이현식;최재혁
    • 한국마린엔지니어링학회:학술대회논문집
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    • 한국마린엔지니어링학회 2011년도 후기공동학술대회 논문집
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    • pp.88-89
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    • 2011
  • The study on synthesis of carbon nanomaterials by H2 mixing in counterflow methane diffusion flames has been experimentally conducted. We have also investigated on effect of catalyst and temperature in flame. The counterflow flame was formed by many kind of gas (fuel side using $CH_4-H_2-N_2$ and oxidizer side $N_2-O_2$) and nitrogen shields discharge on each other side to cut off oxidizer of the atmosphere. Ferrocene was used as a metal catalyst for CNTs synthesis. substrate was used to deposit carbon nanomaterials and these were analyzed by FE-SEM. We could find that carbon nanotubes and many kind of carbon nano materials were formed in Cu wire substrate, through this experiment.

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전기방사법을 이용한 Ag 나노입자 분산 고분자 나노파이버와 Ag 나노파이버 제조 및 특성 평가 (Fabrication and Characterization of Ag Nanoparticle Dispersed Polymer Nanofiber and Ag Nanofiber Using Electrospinning Method)

  • 김희택;황치용;송한복;이근재;주연준;홍성재;강남기;박성대;김기도;좌용호
    • 한국분말재료학회지
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    • 제15권2호
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    • pp.114-118
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    • 2008
  • Functional nanomaterial is expected to have improved capacities on various fields. Especially, metal nanoparticles dispersed in polymer matrix and metal nanofiber, one of the functional nanomaterials, are able to achieve improvement of property in the electric and other related fields. In this study, the fabrication of metal (Ag) nanoparticle dispersed nanofibers were attempted. The Ag nanoparticle dispersed polymer nanofiber and Ag nanofiber were fabricated by electrospinning method using electric force. First, PVP/$AgNO_3$ nanofibers were synthesized by electrospinning in $18{\sim}22kV$ voltage with the starting materials (Ag-nitrate) added polymer (PVP; poly (vinylpyrrolidone)). Then Ag nanoparticle dispersed polymer nanofibers were fabricated to reduce hydrogen reduction at $150^{\circ}C$ for 3hr. And Ag nanofibers were synthesized by the decomposited of PVP at $300{\sim}500^{\circ}C$ for 3hr. The nanofibers were analyzed by XRD, TGA, FE-SEM and TEM. The experimental results showed that the Ag nanofibers could be applied in many fields as an advanced material.

A review: methane capture by nanoporous carbon materials for automobiles

  • Choi, Pil-Seon;Jeong, Ji-Moon;Choi, Yong-Ki;Kim, Myung-Seok;Shin, Gi-Joo;Park, Soo-Jin
    • Carbon letters
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    • 제17권1호
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    • pp.18-28
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    • 2016
  • Global warming is considered one of the great challenges of the twenty-first century. In order to reduce the ever-increasing amount of methane (CH4) released into the atmosphere, and thus its impact on global climate change, CH4 storage technologies are attracting significant research interest. CH4 storage processes are attracting technological interest, and methane is being applied as an alternative fuel for vehicles. CH4 storage involves many technologies, among which, adsorption processes such as processes using porous adsorbents are regarded as an important green and economic technology. It is very important to develop highly efficient adsorbents to realize techno-economic systems for CH4 adsorption and storage. In this review, we summarize the nanomaterials being used for CH4 adsorption, which are divided into non-carbonaceous (e.g., zeolites, metal-organic frameworks, and porous polymers) and carbonaceous materials (e.g., activated carbons, ordered porous carbons, and activated carbon fibers), with a focus on recent research.

2D 나노소재기반 광 센서 소자의 최근 연구 동향 (Recent Research Progresses in 2D Nanomaterial-based Photodetectors)

  • 장혜연;남재현;조병진
    • 세라미스트
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    • 제22권1호
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    • pp.36-55
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    • 2019
  • Atomically thin two-dimensional (2D) nanomaterials, including transition metal dichalcogenides (TMDs), graphene, boron nitride, and black phosphorus, have opened up new opportunities for the next generation optoelectronics owing to their unique properties such as high absorbance coefficient, high carrier mobility, tunable band gap, strong light-matter interaction, and flexibility. In this review, photodetectors based on 2D nanomaterials are classified with respect to critical element technology (e.g., active channel, contact, interface, and passivation). We discuss key ideas for improving the performance of the 2D photodetectors. In addition, figure-of-merits (responsivity, detectivity, response speed, and wavelength spectrum range) are compared to evaluate the performance of diverse 2D photodetectors. In order to achieve highly reliable 2D photodetectors, in-depth studies on material synthesis, device structure, and integration process are still essential. We hope that this review article is able to render the inspiration for the breakthrough of the 2D photodetector research field.