• 제목/요약/키워드: Conductive PET film

검색결과 45건 처리시간 0.024초

플립칩용 에폭시 접착제의 저온 속경화 거동에 미치는 경화제의 영향 (Effects of Hardeners on the Low-Temperature Snap Cure Behaviors of Epoxy Adhesives for Flip Chip Bonding)

  • 최원정;유세훈;이효수;김목순;김준기
    • 한국재료학회지
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    • 제22권9호
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    • pp.454-458
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    • 2012
  • Various adhesive materials are used in flip chip packaging for electrical interconnection and structural reinforcement. In cases of COF(chip on film) packages, low temperature bonding adhesive is currently needed for the utilization of low thermal resistance substrate films, such as PEN(polyethylene naphthalate) and PET(polyethylene terephthalate). In this study, the effects of anhydride and dihydrazide hardeners on the low-temperature snap cure behavior of epoxy based non-conductive pastes(NCPs) were investigated to reduce flip chip bonding temperature. Dynamic DSC(differential scanning calorimetry) and isothermal DEA(dielectric analysis) results showed that the curing rate of MHHPA(hexahydro-4-methylphthalic anhydride) at $160^{\circ}C$ was faster than that of ADH(adipic dihydrazide) when considering the onset and peak curing temperatures. In a die shear test performed after flip chip bonding, however, ADH-containing formulations indicated faster trends in reaching saturated bond strength values due to the post curing effect. More enhanced HAST(highly accelerated stress test) reliability could be achieved in an assembly having a higher initial bond strength and, thus, MHHPA is considered to be a more effective hardener than ADH for low temperature snap cure NCPs.

Bacterial cellulose를 기반으로 하는 투명전도성막의 제조 및 특성평가 (Fabrication and Characterization of Transparent Conductive Film based on Bacterial Cellulose)

  • 임은채;김성준;기창두
    • Korean Chemical Engineering Research
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    • 제51권6호
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    • pp.766-773
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    • 2013
  • 본 연구에서는 물리적 강도가 뛰어나고 고온에서 안정하며 유연한 친환경 소재인 박테리아 셀룰로오스를 기반으로 투명 전도성막을 제조하였다. 전기전도성의 확보를 위해 은나노와이어(AgNW)와 그래핀을 도입하였다. 합성한 AgNW는 평균적으로 길이 약 $15{\mu}m$, 폭 약 70 nm로 종횡비 214이었다. 종횡비가 클수록 접촉저항을 낮추어 전도성을 개선시키게 된다. 총 7가지의 막을 제조하고 열적 및 전기적 물성을 조사하였다. 또 전도성막으로 제조하기 위해서 BC막을 칼로 길이 2 mm, 깊이 $50{\mu}m$ 간격으로 홈을 파서 직교상의 그물모양을 형성한 후 이 홈에 AgNW와 그래핀을 채워 넣었다. 대표적으로 AgNW 첨가막은 두께 $350{\mu}m$, 전자농도 $1.53{\times}10^{19}/cm^3$, 전자이동도 $6.63{\times}10^5cm^2/Vs$, 비저항 $0.28{\Omega}{\cdot}cm$로 가장 우수한 전기적 특성을 지닌 것으로 평가되었다. 또한 그래핀 첨가막은 두께 $360{\mu}m$, 전자농도 $7.74{\times}10^{17}/cm^3$, 전자이동도 $0.17cm^2/Vs$, 비저항 $4.78{\Omega}{\cdot}cm$이었다. 550 nm 광투과는 AgNW 첨가막 98.1%, 그래핀 첨가막 80.9%로 투명한 전도성 막이 형성되었다. 모든 막이 평면과 휜 상태에서 LED 점등 실험에서 전구의 밝기에 차이가 있었으나 불이 켜졌다. $150{\pm}5^{\circ}C$의 열판에서 박테리아 셀룰로오스 막은 형태가 매우 안정하였으나 같은 두께의 PET는 형태가 심하게 변형되었다. 이러한 연구 결과를 통해 박테리아 셀룰로오스 기반의 투명전도성막을 제조할 수 있는 가능성을 확인하였다.

롤투롤 공정의 인쇄 후 구간에서 변형률과 인쇄한 패턴의 전기 전도도와의 관계에 대한 연구 (A study on the Relation between Strain & Conductivity of the Printed Pattern in Post-Printing Section of Roll to Roll process)

  • 최재호;이창우;신기현
    • 제어로봇시스템학회논문지
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    • 제15권9호
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    • pp.877-880
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    • 2009
  • A curing process in post-printing section of R2R process is required for an electrical property of the printed pattern when devices such as RFID, Solar cell are printed. PEN as well as heat-stabilized PET which is used as a plastic substrate would be deformed at high temperature due to change of its elastic modulus. And crack in the printed pattern, which is on the plastic substrate is occurred due to the deformation of the substrate. The occurrence of crack causes electrical resistance to increase and the quality of the device to deteriorate. In case of RFID antenna, the range of reading distance is shortened as the electrical resistance of the antenna is increased. Therefore, the deformation of the plastic substrate, which causes the occurrence of crack, should be minimized by setting up low operating tension in R2R process. In low tension, slippage between a moving substrate and a roller would be generated when the operating speed is increased. And scratch would be occurred when slippage is generated due to an air entrainment, which is related to the thickness of the air film. The thickness of the air film is increased when operating speed is increased as shown by simulation based on mathematical model. The occurrence of scratch in conductive pattern printed by roll to roll process is a critical damage because it causes degradation or failure of electrical property of it.

Electrical Properties of Transparent Conductive Films of Single-Walled Carbon Nanotubes with Their Purities

  • ;;;이내성
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2010년도 하계학술대회 논문집
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    • pp.56-56
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    • 2010
  • Single-walled carbon nanotubes (SWCNTs) have attracted much attention as a promising material for transparent conducting films (TCFs), due to their superior electrical conductivity, high mechanical strength, and complete flexibility as well as their one-dimensional morphological features of extremely high length-to-diameter ratios. This study investigated three kinds of SWCNTs with different purities: as-produced SWCNTs (AP-SWCNTs), thermally purified SWCNTs (TH-SWCNTs), thermally and acid purified SWCNTs (TA-SWCNTs). The purity of each SWCNT sample was assessed by considering absorption peaks in the semiconducting ($S_{22}$) and metallic ($M_{11}$) tubes with UV-Vis NIR spectroscopy and a metal content with thermogravimetric analysis (TGA). The purity increased as proceeding the purification stages from the AP-SWCNTs through the thermal purification to the acid purification. The samples containing different contents of SWCNTs were dispersed in water using sodium dodecyl benzensulfate (SDBS). Aqueous suspensions of different purities of SWCNTs were prepared to have similar absorbances in UV-Vis absorption measurements so that one can make the TCFs possess similar optical transmittances irrespective of the SWCNT purity. Transparent conductive SWCNT networks were formed by spraying an SWCNT suspension onto a poly(ethyleneterephthalate) (PET) substrate. As expected, the TCFs fabricated with AP-SWCNTs showed very high sheet resistances. Interestingly, the TH-SWCNTs gave lower sheet resistances to the TFCs than the TA-SWCNTs although the latter was of higher purity in the SWCNT content than the former. The TA-SWCNTs would be shortened in length and be more bundled by the acid purification, relative to the TH-SWCNTs. For both purified (TH, TA) samples, the subsequent nitric acid ($HNO_3$) treatment greatly lowered the sheet resistances of the TCFs, but almost eliminated the difference of sheet resistances between them. This seems to be because the electrical conductivity increased not only due to further removal of surfactants but also due to p-type doping upon the acid treatment. The doping effect was likely to overwhelm the effect of surfactant removal. Although the nitric acid treatment resulted in the similar. electrical properties to the two samples, the TCFs of TH-SWCNTs showed much lower sheet resistances than those of the TA-SWCNTs prior to the acid treatment.

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Effects of Hole Transport Layer Using Au-ionic Doping SWNT on Efficiency of Organic Solar Cells

  • Min, Hyung-Seob;Jeong, Myung-Sun;Choi, Won-Kook;Kim, Sang-Sig;Lee, Jeon-Kook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.434-434
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    • 2012
  • Despite recent efforts for fabricating flexible transparent conducting films (TCFs) with low resistance and high transmittance, several obstacles to meet the requirement of flexible displays still remain. Indium tin oxide (ITO) thin films, which have been traditionally used as the TCFs, have a serious obstacle in TCFs applications. SWNTs are the most appropriate materials for conductive films for displays due to their excellent high mechanical strength and electrical conductivity. Recently, it has been demonstrated that acid treatment is an efficient method for surfactant removal. However, the treatment has been reported to destroy most SWNT. In this work, the fabrication by the spraying process of transparent SWNT films and reduction of its sheet resistance by Au-ionic doping treatment on PET substrates is researched. Arc-discharge SWNTs were dispersed in deionized water by adding sodium dodecyl sulfate (SDS) as surfactant and sonicated, followed by the centrifugation. The dispersed SWNT was spray-coated on PET substrate and dried on a hotplate. When the spray process was terminated, the TCF was immersed into deionized water to remove the surfactant and then it was dried on hotplate. The TCF film was then was doped with Au-ionic doping treatment, rinsed with deionized water and dried. The surface morphology of TCF was characterized by field emission scanning electron microscopy. The sheet resistance and optical transmission properties of the TCF were measured with a four-point probe method and a UV-visible spectrometry, respectively. This was confirmed and discussed on the XPS and UPS studies. We show that 87 ${\Omega}/{\Box}$ sheet resistances with 81% transmittance at the wavelength of 550 nm. The changes in electrical and optical conductivity of SWNT film before and after Au-ionic doping treatments were discussed. The effects of hole transport interface layer using Au-ionic doping SWNT on the performance of organic solar cells were investigated.

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