• 제목/요약/키워드: Two-dimensional Raman

검색결과 47건 처리시간 0.031초

유도 열플라즈마를 이용한 카본나노시트 합성 (Synthesis of carbon nanosheets using RF thermal plasma)

  • 이승용;고상민;구상만;황광택;한규성;김진호
    • 한국결정성장학회지
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    • 제24권5호
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    • pp.207-212
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    • 2014
  • 2차원 흑연구조를 갖는 카본나노시트는 큰 비표면적과 우수한 전기적, 화학적 및 기계적 물성으로 인하여 미래소재로 각광받고 있다. 경제적이고 쉬운 카본나노시트의 양산공정개발을 위해 본 연구에서는 메테인($CH_4$)과 프로페인($C_3H_8$) 가스를 이용한 유도 열플라즈마 공정을 통해 기상 합성하여 카본나노시트 분말을 합성하였다. 유도 열플라즈마를 이용한 카본나노시트 합성은 촉매나 증착공정 없이 진행되었으며, 합성된 카본나노시트의 물성을 TEM, Raman, XRD, BET로 분석하였다. 메테인과 프로페인으로부터 합성된 카본 나노시트는 각각 5~6개의 그래핀 층과 15~16개의 그래핀 층으로 이루어진 분말로 합성되었으며 분말의 크기는 약 100 nm임을 확인할 수 있었다.

Cu(In,Ga)$Se_2$ 박막의 Cu 결함 및 In, Ga 비율의 변화에 따른 구조적, 광학적, 전기적 특성 연구 (Structural, optical, and electrical properties on Cu(In,Ga)$Se_2$ thin-films with Cu-defects and In/(In+Ga) ratio)

  • 정아름;김지영;조윌렴;조현준;김대환;성시준;강진규;이동하;남다현;정현식
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2011년도 추계학술대회 초록집
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    • pp.47.1-47.1
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    • 2011
  • We report on a direct measurement of two-dimensional chemical and electrical distribution on the surface of photovoltaic Cu(In,Ga)$Se_2$ thin-films using a nano-scale spectroscopic and electrical characterization, respectively. The Raman measurement reveals non-uniformed surface phonon vibration which comes from different compositional distribution and defects in the nature of polycrystalline thin-films. On the other hand, potential analysis by scanning Kelvin probe force microscopy shows a higher surface potential or a small work function on grain boundaries of the thin-films than on the grain surfaces. This demonstrates the grain boundary is positively charged and local built-in potential exist on grain boundary, which improve electron-hole separation on grain boundary. Local electrical transport measurements with scanning probe microscopy on the thin-films indicates that as external bias is increases, local current is started to flow from grain boundary and saturated over 0.3 V external bias. This accounts for carrier behavior in the vicinity of grain boundary with regard to defect states. We suggest that electron-hole separation at the grain boundary as well as chemical and electrical distribution of polycrystalline Cu(In,Ga)$Se_2$ thin-films.

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Controlling the Growth of Few-layer Graphene Dependent on Composition Ratio of Cu/Ni Homogeneous Solid Solution

  • Lim, Yeongjin;Choi, Hyonkwang;Gong, Jaeseok;Park, Yunjae;Jeon, Minhyon
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.273.1-273.1
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    • 2014
  • Graphene, a two dimensional plane structure of $sp^2$ bonding, has been promised for a new material in many scientific fields such as physics, chemistry, and so on due to the unique properties. Chemical vapor deposition (CVD) method using transitional metals as a catalyst can synthesize large scale graphene with high quality and transfer on other substrates. However, it is difficult to control the number of graphene layers. Therefore, it is important to manipulate the number of graphene layers. In this work, homogeneous solid solution of Cu and Ni was used to control the number of graphene layers. Each films with different thickness ratio of Cu and Ni were deposited on $SiO_2/Si$ substrate. After annealing, it was confirmed that the thickness ratio accords with the composition ratio by X-ray diffraction (XRD). The synthesized graphene from CVD was analyzed via raman spectroscopy, UV-vis spectroscopy, and 4-point probe to evaluate the properties. Therefore, the number of graphene layers at the same growth condition was controlled, and the correlation between mole fraction of Ni and the number of graphene layers was investigated.

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Effects of Residual PMMA on Graphene Field-Effect Transistor

  • Jung, J.H.;Kim, D.J.;Sohn, I.Y.;Lee, N.E.
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.561-561
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    • 2012
  • Graphene, two dimensional single layer of carbon atoms, has tremendous attention due to its superior property such as fast electron mobility, high thermal conductivity and optical transparency, and also found many applications such as field-effect transistors (FET), energy storage and conversion, optoelectronic device, electromechanical resonators and chemical sensors. Several techniques have been developed to form the graphene. Especially chemical vapor deposition (CVD) is a promising process for the large area graphene. For the electrically isolated devices, the graphene should be transfer to insulated substrate from Cu or Ni. However, transferred graphene has serious drawback due to remaining polymeric residue during transfer process which induces the poor device characteristics by impurity scattering and it interrupts the surface functionalization for the sensor application. In this study, we demonstrate the characteristics of solution-gated FET depending on the removal of polymeric residues. The solution-gated FET is operated by the modulation of the channel conductance by applying a gate potential from a reference electrode via the electrolyte, and it can be used as a chemical sensor. The removal process was achieved by several solvents during the transfer of CVD graphene from a copper foil to a substrate and additional annealing process with H2/Ar environments was carried out. We compare the properties of graphene by Raman spectroscopy, atomic force microscopy(AFM), and X-ray Photoelectron Spectroscopy (XPS) measurements. Effects of residual polymeric materials on the device performance of graphene FET will be discussed in detail.

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리튬이온전지용 비정질 탄소 도전재의 표면적 및 흑연화도에 따른 SiOx 음극 활물질 특성 연구 (Effect of Surface Area and Crystallinity of Amorphous Carbon Conductive Agent in SiOx Anode on the Performance of Lithium Ion Battery )

  • 강형규;김성수
    • 한국전기전자재료학회논문지
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    • 제36권1호
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    • pp.29-35
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    • 2023
  • Herein we investigated the effect of the conductive agent on the electrochemical performance of the SiOx anode. SiOx anodes have a relatively low volume expansion (~160%) compared to Pure-silicon, but have a problem in that they have a poor electrical conductivity characteristic. In this study, physical and electrochemical measurements were performed using two 0-dimensional amorphous carbon conductive agents with different crystallinity and surface area. The crystal structure of the conductive agents and the local graphitization degree were analyzed through XRD and Raman, and the surface area of the particles was observed through BET. In addition, the electrical performance according to the graphitization degree of the conductive agents was confirmed through a 4-point probe. As a result of the electrochemical cycle and rate performance, it was confirmed that the performance of SiOx using a conductive agent having a low graphitization degree and a high surface area was improved. The results in this study suggest that the graphitization degree and surface area of the amorphous carbon conductive agent may play an important role in the SiOx electrode.

열 화학기상증착법을 이용한 탄화규소 나노선의 합성 및 특성연구 (Characterization of SiC nanowire Synthesized by Thermal CVD)

  • 정민욱;김민국;송우석;정대성;최원철;박종윤
    • 한국진공학회지
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    • 제19권4호
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    • pp.307-313
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    • 2010
  • 본 연구에서는 열 화학기상증착법(thermal chemical vapor deposition)을 이용하여 분말 형태의 규소(Si)와 염화니켈 수화물 $(NiCl_2{\cdot}6H_2O)$을 혼합한 후 탄소공급원인 $CH_4$ 가스를 주입하여 탄화규소 나노선(SiC nanowire)을 합성하였다. 합성 온도와 $CH_4$ 가스 유량 변화에 따른 탄화규소 나노선의 구조적 특성을 분석한 결과, 합성온도가 $1,400^{\circ}C$, $CH_4$ 가스의 유량이 300 sccm인 경우가 탄화규소 나노선의 합성에 최적화된 조건임을 라만 분광법(Raman spectroscopy)과 X-선 회절(X-ray diffraction), 주사전자현미경(scanning electron microscopy), 그리고 투과전자현미경(transmission electron microscopy) 분석을 통해 확인하였다. 합성된 탄화규소 나노선의 직경은 약 50~150 nm이며, 곧은 방향성과 높은 결정성을 가지는 입방구조(cubic structure)를 지니고 있었다.

Synthesis and Characterization of Large-Area and Highly Crystalline Tungsten Disulphide (WS2) Atomic Layer by Chemical Vapor Deposition

  • Kim, Ji Sun;Kim, Yooseok;Park, Seung-Ho;Ko, Yong Hun;Park, Chong-Yun
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.361.2-361.2
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    • 2014
  • Transition metal dichalcogenides (MoS2, WS2, WSe2, MoSe2, NbS2, NbSe2, etc.) are layered materials that can exhibit semiconducting, metallic and even superconducting behavior. In the bulk form, the semiconducting phases (MoS2, WS2, WSe2, MoSe2) have an indirect band gap. Recently, these layered systems have attracted a great deal of attention mainly due to their complementary electronic properties when compared to other two-dimensional materials, such as graphene (a semimetal) and boron nitride (an insulator). However, these bulk properties could be significantly modified when the system becomes mono-layered; the indirect band gap becomes direct. Such changes in the band structure when reducing the thickness of a WS2 film have important implications for the development of novel applications, such as valleytronics. In this work, we report for the controlled synthesis of large-area (~cm2) single-, bi-, and few-layer WS2 using a two-step process. WOx thin films were deposited onto a Si/SiO2 substrate, and these films were then sulfurized under vacuum in a second step occurring at high temperatures ($750^{\circ}C$). Furthermore, we have developed an efficient route to transfer these WS2 films onto different substrates, using concentrated HF. WS2 films of different thicknesses have been analyzed by optical microscopy, Raman spectroscopy, and high-resolution transmission electron microscopy.

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Characterization of SiC nanowire synthesize by Thermal CVD

  • 정민욱;김민국;송우석;정대성;최원철;박종윤
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.74-74
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    • 2010
  • One-dimensional nanosturctures such as nanowires and nanotube have been mainly proposed as important components of nano-electronic devices and are expected to play an integral part in design and construction of these devices. Silicon carbide(SiC) is one of a promising wide bandgap semiconductor that exhibits extraordinary properties, such as higher thermal conductivity, mechanical and chemical stability than silicon. Therefore, the synthesis of SiC-based nanowires(NWs) open a possibility for developing a potential application in nano-electronic devices which have to work under harsh environment. In this study, one-dimensional nanowires(NWs) of cubic phase silicon carbide($\beta$-SiC) were efficiently produced by thermal chemical vapor deposition(T-CVD) synthesis of mixtures containing Si powders and hydrocarbon in a alumina boat about $T\;=\;1400^{\circ}C$ SEM images are shown that the temperature below $1300^{\circ}C$ is not enough to synthesis the SiC NWs due to insufficient thermal energy for melting of Si Powder and decomposition of methane gas. However, the SiC NWs are produced over $1300^{\circ}C$ and the most efficient temperature for growth of SiC NWs is about $1400^{\circ}C$ with an average diameter range between 50 ~ 150 nm. Raman spectra revealed the crystal form of the synthesized SiC NWs is a cubic phase. Two distinct peaks at 795 and $970\;cm^{-1}$ over $1400^{\circ}C$ represent the TO and LO mode of the bulk $\beta$-SiC, respectively. In XRD spectra, this result was also verified with the strongest (111) peaks at $2{\theta}=35.7^{\circ}$, which is very close to (111) plane peak position of 3C-SiC over $1400 ^{\circ}C$ TEM images are represented to two typical $\beta$-SiC NWs structures. One is shown the defect-free $\beta$-SiC nanowire with a (111) interplane distance with 0.25 nm, and the other is the stacking-faulted $\beta$-SiC nanowire. Two SiC nanowires are covered with $SiO_2$ layer with a thickness of less 2 nm. Moreover, by changing the flow rate of methane gas, the 300 sccm is the optimal condition for synthesis of a large amount of $\beta$-SiC NWs.

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Synthesis of Graphene on Hexagonal Boron Nitride by Low Pressure Chemical Vapor

  • Han, Jae-Hyun;Yeo, Jong-Souk
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.391-392
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    • 2012
  • Graphene is a perfectly two-dimensional (2D) atomic crystal which consists of sp2 bonded carbon atoms like a honeycomb lattice. With its unique structure, graphene provides outstanding electrical, mechanical, and optical properties, thus enabling wide variety of applications including a strong potential to extend the technology beyond the conventional Si based electronic materials. Currently, the widespread application for electrostatically switchable devices is limited by its characteristic of zero-energy gap and complex process in its synthesis. Several groups have investigated nanoribbon, strained, or nanomeshed graphenes to induce a band gap. Among various techniques to synthesize graphene, chemical vapor deposition (CVD) is suited to make relatively large scale growth of graphene layers. Direct growth of graphene on hexagonal boron nitride (h-BN) using CVD has gained much attention as the atomically smooth surface, relatively small lattice mismatch (~1.7%) of h-BN provides good quality graphene with high mobility. In addition, induced band gap of graphene on h-BN has been demonstrated to a meaningful value about ~0.5 eV.[1] In this paper, we report the synthesis of grpahene / h-BN bilayer in a chemical vapor deposition (CVD) process by controlling the gas flux ratio and deposition rate with temperature. The h-BN (99.99%) substrate, pure Ar as carrier gas, and $CH_4$ are used to grow graphene. The number of graphene layer grown on the h-BN tends to be proportional to growth time and $CH_4$ gas flow rate. Epitaxially grown graphene on h-BN are characterized by scanning electron microscopy, atomic force microscopy, and Raman spectroscopy.

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Growth and characterization of Zn layered-double hydroxide (LDH) based two-dimensional nanostructure

  • 남광희;백성호;임지수;이상석;박일규
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.371.1-371.1
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    • 2016
  • 다양한 물질계의 2차원 나노구조는 그래핀과 함께 그 고유특성으로 최근 광전소자, 전자소자, 센서, 에너지 생성 및 저장과 수소에너지 생성 등의 응용으로 매우 많은 관심을 받고 있다. 특히 층상이중수산화물 (layered-double hydroxide; LDH) 2차원 나노구조는 생성의 용이성과 층상 내 금속 이온의 교환을 통한 특성의 자유로운 제어가 가능하므로 많은 관심을 받고 있다. 층상이중수산화물 화합물은 [Zn(1-x) MIII(x)(OH)2][$An-x/n{\cdot}mH2O$] (MIII = Al, Cr, Ga; An- = CO32-, Cl-, NO3-, CH3COO-) 구조로써, Brucite-type 구조 내에서 3가 양이온의 상태에 따라서 다양한 특성을 제어할 수 있는 장점이 있다. 이러한 장점으로 인해 층상이중수산화물 화합물은 촉매나, 에너지 저장, 음이온 교환 및 흡착, 화학적 촉매, 바이오 소자 등에 응용이 연구되고 있으며, 다양한 금속 산화물을 제조하기 위한 중간자 precursor로써도 연구되고 있다. 하지만, 이러한 대부분의 연구들을 통한 결과물들이 분말 및 수용액 상태로 남게 되며, 이러한 화합물의 특성을 제어하기 어려운 문제점이 있다. 더욱이 이러한 나노구조물들을 다양한 소자로 응용하기 위해서는 상용의 실리콘이나 glass 등의 기판형태의 물질상에 성장시킬 수 있어야 하며, 그러한 기판 위에서의 형상 및 특성 제어가 용이해야 한다. 따라서 본 연구에서는 실리콘 기판을 적용한 Zn기반의 층상이중 수산화물 화합물을 성장하고, 하부물질의 조성제어를 통한 층상이중수산화물 화합물의 형상제어가 가능한 기술에 관한 연구를 보고하고자 한다. 이를 위한 하부물질의 조성은 Zn와 Al을 통해 이루어지며, 기형성된 Al2O3박막을 핵형성층으로 활용한다. 이러한 방법으로 형성된 층상이중수산화물 화합물에 대해 이차전자주사현미경, 투과전자현미경 및 X-ray회절기법을 통해 구조분석을 하고, Raman 및 광발광스펙트럼 분석을 통해 광학적 분석을 시행함으로써, 층상이중수산화물이 기판상에서 형성되는 메커니즘에 관한 규명을 시행하였다. 이러한 분석연구를 통해 핵형성층의 에칭 따라 실리콘 기판상에서 성장하는 층상이 중수산화물 화합물의 형상 및 조성이 제어되는 메커니즘을 구명하였다.

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