• 제목/요약/키워드: double layer graphene

검색결과 18건 처리시간 0.113초

Highly Sensitive and Transparent Pressure Sensor Using Double Layer Graphene Transferred onto Flexible Substrate

  • Chun, Sungwoo;Kim, Youngjun;Jin, Hyungki;Jung, Hyojin;Park, Wanjun
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.229.2-229.2
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    • 2014
  • Graphene, an allotrope of carbon, is a two-dimensional material having a unique electro-mechanical property that shows significant change of the electrical conductance under the applied strain. In addition of the extraordinary mechanical strength [1], graphene becomes a prospective candidate for pressure sensor technology [2]. However, very few investigations have been carried out to demonstrate characteristics of graphene sensor as a device form. In this study, we demonstrate a pressure sensor using graphene double layer as an active channel to generate electrical signal as the response of the applied vertical pressure. For formation of the active channel in the pressure sensor, two single graphene layers which are grown on Cu foil (25 um thickness) by the plasma enhanced chemical vapor deposition (PECVD) are sequentially transformed to the poly-di-methyl-siloxane (PDMS) substrate. Dry and wet transfer methods are individually employed for formation of the double layer graphene. This sensor geometry results a switching characteristic which shows ~900% conductivity change in response to the application of pulsed pressure of 5 kPa whose on and off duration is 3 sec. Additionally, the functional reliability of the sensor confirms consistent behavior with a 200-cycle test.

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EnhAnced Electric Double Layer Capacitance of New Poly Sodium 4-tyrenesulfonate Intercalated Graphene Oxide Electrodes

  • 정혜경
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.287.2-287.2
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    • 2013
  • We synthesized a new composite of poly sodium 4-styrenesulfonate intercalated graphene oxide for energy storage devices by controlling oxidation time in the synthesis of graphite oxide. Specific capacitance was improved from 20 F/g of the previous composites to 88 F/g of the new composite at the current density of 0.3 A/g. The capacitance retention was 94% after 3000 cycles, indicating that the new composites of high cyclic stability, prominent performance as electric double layer capacitor, and even low resistance could be an excellent carbon based electrode for further energy storage devices.

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그래핀 플레이크 크기에 따른 전기 이중층 커패시터용 전극의 전기화학적 특성 (Electrochemical Properties of EDLC Electrodes with Diverse Graphene Flake Sizes)

  • 유혜련
    • 한국전기전자재료학회논문지
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    • 제31권2호
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    • pp.112-116
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    • 2018
  • Electric double layer capacitors (EDLCs) are promising candidates for energy storage devices in electronic applications. An EDLC yields high power density but has low specific capacitance. Carbon material is used in EDLCs owing to its large specific surface area, large pore volume, and good mechanical stability. Consequently, the use of carbon materials for EDLC electrodes has attracted considerable research interest. In this paper, in order to evaluate the electrochemical performance, graphene is used as an EDLC electrode with flake sizes of 3, 12, and 60 nm. The surface characteristic and electrochemical properties of graphene were investigated using SEM, BET, and cyclic voltammetry. The specific capacitance of the graphene based EDLC was measured in a 1 M $TEABF_4/ACN$ electrolyte at the scan rates of 2, 10, and 50 mV/s. The 3 nm graphene electrode had the highest specific capacitance (68.9 F/g) compared to other samples. This result was attributed to graphene's large surface area and meso-pore volume. Therefore, large surface area and meso-pore volume effectively enhances the specific capacitance of EDLCs.

Highly Sensitive and Transparent Touch Sensor by a Double Structure of Single Layer Graphene

  • Kim, Youngjun;Jung, Hyojin;Jin, Hyungki;Chun, Sungwoo;Park, Wanjun
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.228.2-228.2
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    • 2014
  • Characteristics of high Fermi velocity, high mechanical strength, and transparency offer tremendous advantages for using graphene as a promising transparent conducting material [1] in electronic devices. Although graphene is a prospective candidate for touch sensor with strong mechanical properties [2] and flexibility, only few investigations have been carried out in the field of sensor as a device form. In this study, we suggest ultra-highly sensitive and transparent graphene touch sensor fabricated by single layer graphenes. One of the graphene layers is formed in the top panel as a disconnected graphene beam transferred on PDMS, and the other of the graphene layer is formed with line-patterning on the bottom panel of triple structure PET/PI/SiO2. The touch sensor shows characteristics of flexible. Its transmittance is approximately 75% where transmittance of the top panel and the bottom panel are 86.3% and 87%, respectively, at 550 nm wavelength. Sheet resistance of each graphene layer is estimated as low as $971{\Omega}/sq$. The results show that the conductance change rate (${\Delta}C/C0$) is $8{\times}105$ which depicts ultra-high sensitivity. Moreover, reliability characteristic confirms consistent behavior up to a 100-cycle test.

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A Ridge-type Silicon Waveguide Optical Modulator Based on Graphene and Black Phosphorus Heterojunction

  • Zhenglei Zhou;Jianhua Li;Desheng Yin;Xing Chen
    • Current Optics and Photonics
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    • 제8권4호
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    • pp.399-405
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    • 2024
  • In this paper, an optical modulator based on monolayer graphene and triple-layer black phosphorus (BP) heterojunction in the optical communication band range is designed. The influences of geometric parameters, chemical potential, BP orientation and dispersion on the fundamental mode of this modulator were determined in detail by the finite-difference time-domain (FDTD) method. Using appropriate geometric parameter settings, the extinction ratio of this proposed modulator is 0.166 dB, while the modulator with a working length of 3 ㎛ can realize a 0.498 dB modulation depth. The 3-dB bandwidth of this modulator could achieve up to 2.65 GHz with 27.23 fJ/bit energy consumption. The extinction ratio and bandwidth of the proposed modulator increased by 66% and 120.83%, respectively, compared to the monolayer graphene-based ridge-type waveguide modulator. Energy consumption was reduced by 97.28%, compared to a double-layer graphene-based modulator.

High-Performance Flexible Graphene Field Effect Transistors with Ion Gel Gate Dielectrics

  • 조정호
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2012년도 춘계학술발표대회
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    • pp.69.3-69.3
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    • 2012
  • A high-performance low-voltage graphene field-effect transistor (FED array was fabricated on a flexible polymer substrate using solution-processable, high-capacitance ion gel gate dielectrics. The high capacitance of the ion gel, which originated from the formation of an electric double layer under the application of a gate voltage, yielded a high on-current and low voltage operation below 3 V. The graphene FETs fabricated on the plastic substrates showed a hole and electron mobility of 203 and 91 $cm^2/Vs$, respectively, at a drain bias of - I V. Moreover, ion gel gated graphene FETs on the plastic substrates exhibited remarkably good mechanical flexibility. This method represents a significant step in the application of graphene to flexible and stretchable electronics.

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대면적·단일층·단결정 그래핀의 합성 (Synthesis of large area·single layer/crystalline graphene)

  • 최병상
    • 한국전자통신학회논문지
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    • 제9권2호
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    • pp.167-171
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    • 2014
  • CVD를 이용하여 다결정 및 단결정 Cu 시편에 대한 그래핀의 합성 실험을 수행하였으며, 광학현미경 조직사진과 이미지 분석을 통하여 그래핀의 성장거동과 합성에 대한 특성평가 결과를 제시 하였다. 다결정 Cu 시편의 결정성에 따른 그래핀의 성장에 대한 분석의 결과 그래핀의 성장이 다결정 Cu 시편의 결정에 따라 일정한 방향성을 갖고 성장한다는 것을 알 수 있었으며, 다결정 Cu 시편의 이웃하는 단일 결정 내에서 성장하는 그래핀 형성에 대한 이미지 분석의 결과 단층, 복층, 그리고 3층의 그래핀에 대한 특성 분석이 가능하였다. 또한, (111) 방향을 갖는 단결정 Cu 시편을 이용하여 약 $3mm^2$ 정도의 비교적 넓은 면적을 갖는 고품질의 단일층 단결정 그래핀 합성과 이에 대한 특성평가 결과를 나타내고 있다.

큰 결정 크기를 가지는 단일층 그래핀 성장을 위한 구리 호일의 전해연마 공정 최적화 (Optimized Electroplishing Process of Copper Foil Surface for Growth of Single Layer Graphene with Large Grain Size)

  • 김재억;박홍식
    • 센서학회지
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    • 제26권2호
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    • pp.122-127
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    • 2017
  • Graphene grown on copper-foil substrates by chemical vapor deposition (CVD) has been attracting interest for sensor applications due to an extraordinary high surface-to-volume ratio and capability of large-scale device fabrication. However, CVD graphene has a polycrystalline structure and a high density of grain boundaries degrading its electrical properties. Recently, processes such as electropolishing for flattening copper substrate has been applied before growth in order to increase the grain size of graphene. In this study, we systemically analyzed the effects of the process condition of electropolishing copper foil on the quality of CVD graphene. We observed that electropolishing process can reduce surface roughness of copper foil, increase the grain size of CVD graphene, and minimize the density of double-layered graphene regions. However, excessive process time can rather increase the copper foil surface roughness and degrade the quality of CVD graphene layers. This work shows that an optimized electropolishing process on copper substrates is critical to obtain high-quality and uniformity CVD graphene which is essential for practical sensor applications.

Nonlocal dynamic modeling of mass sensors consisting of graphene sheets based on strain gradient theory

  • Mehrez, Sadok;Karati, Saeed Ali;DolatAbadi, Parnia Taheri;Shah, S.N.R.;Azam, Sikander;Khorami, Majid;Assilzadeh, Hamid
    • Advances in nano research
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    • 제9권4호
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    • pp.221-235
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    • 2020
  • The following composition establishes a nonlocal strain gradient plate model that is essentially related to mass sensors laying on Winkler-Pasternak medium for the vibrational analysis from graphene sheets. To achieve a seemingly accurate study of graphene sheets, the posited theorem actually accommodates two parameters of scale in relation to the gradient of the strain as well as non-local results. Model graphene sheets are known to have double variant shear deformation plate theory without factors from shear correction. By using the principle of Hamilton, to acquire the governing equations of a non-local strain gradient graphene layer on an elastic substrate, Galerkin's method is therefore used to explicate the equations that govern various partition conditions. The influence of diverse factors like the magnetic field as well as the elastic foundation on graphene sheet's vibration characteristics, the number of nanoparticles, nonlocal parameter, nanoparticle mass as well as the length scale parameter had been evaluated.

산화탄소로부터 열분해한 탄소의 구조 및 전기이중층 거동 (Structures and Double Layer Performances of Carbons Pyrolized from Carbon Oxides)

  • 김익준;양선혜;전민제;문성인;김현수;안계혁
    • 공업화학
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    • 제18권5호
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    • pp.522-526
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    • 2007
  • 산화처리 탄소로부터 상분해시킨 코크스의 구조 및 전기화학적 특성을 조사하였고, KOH 활성화 코크스와 비교하였다. $NaCLO_3$/니들 코크스의 비율이 7.5 이상의 조건에서 산화처리를 행한 graphene 층간 구조를 가진 니들 코크스($d_{002}=3.5{\AA} $)는 산화흑연 구조로 상변화가 일어나고, 이 때 산소함량의 증가와 함께 층간 간격은 $6.9{\AA} $으로 증가하였다. 산화처리 탄소를 $200^{\circ}C$에서 열처리 건조를 하면 상분해가 일어나서 다시 graphene 층간 구조로 복원하고, 층간 간격은 $3.6{\AA} $으로 감소하였다. 그러나, KOH 활성화 과정에서 니들 코크스의 층간 변화는 관찰되지 않았다. 한편, 1차 충전에서 전해질 이온들에 의한 상분해 코크스에의 침입은 1.0 V에서 일어나고, 이는 KOH 활성 코크스보다 작은 수치이다. 상분해 코크스를 이용한 커패시터 셀은 1 kHz에서 $0.57{\Omega}$의 내부저항을 나타내고, 2 전극 시스템에서 0~2.5 V 범위 내에서 측정한 상분해 코크그의 중량 또는 전극 부피 당 용량은 각각 30.3 F/g과 26.9 F/mL을 나타내었고, 이들 특성은 KOH 활성 코크스보다 우수하였다. 상분해 코크스의 우수한 전기화학적 특성은 산화처리-상분해 과정에서의 층간 팽창-수축에 따른 층간 결함과 관련 있는 것으로 판단된다.