• 제목/요약/키워드: PDMS transfer

검색결과 43건 처리시간 0.029초

Lift-off 방법을 이용한 플렉서블 대면적 GaAs 태양전지 제작

  • 오시덕;유소영;신현욱;이세원;신재철;김효진
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.349-349
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    • 2012
  • 박막형 GaAs 계 III-V 태양전지는 ELO (Epitaxy Lift-off) 기술에 의하여 기판으로부터 분리되어 얻어질 수 있다. 지금까지 이 기술에 대해 개발된 결과에 의하면 박막 III-V 태양전지의 효율이 기존 기판 기반의 태양전지 효율과 비슷한 수준을 얻고 있으며, 기판의 재활용, 플렉서블, 및 신축성 태양전지로의 적용분야 등의 보고들도 발표되고 있어 실리콘 태양전지가 접근하기 힘든 특정한 응용분야로의 가능성을 밝게 해주고 있다. 그러나, 이 ELO방식에 의한 박막형 III-V 태양전지가 실질적으로 상업화 되기 위해서는 생산 수율의 개선 및 기판 재활용 시의 저손실 등 해결해야 할 당면과제들이 놓여 있다. 기판재활용의 가능성을 위해 아직까지 발표된 셀의 크기는 $2{\times}2mm^2$ 이하이며, 보다 넓은 셀에 대하여 기판재활용 방식으로 재생된 효율을 갖는 III-V 박막 태양전지는 보고된 바 없다. 본 연구에서는, $1{\times}1mm^2$, $2{\times}2mm^2$, 그리고 $5{\times}5mm^2$에 대하여 ELO 에 의한 박막 태양전지를 제작해 보고, 보다 넓은 면의 박막 태양전지를 효율적으로 제작하기 위한 방법을 연구하고자 한다. 또한, 이 셀들을 유연한 PDMS transfer에 부착하여 플렉서블 태양전지로의 가능성에 대해서도 기술하고자 한다. 사용된 박막 태양전지 구조는 한국광기술원에서 제작한 22% GaAs 단일 접합 태양전지와 같은 구조로 되어 있으며, 희생층으로는 AlGaAs 층을 사용하였고, ELO을 위한 에칭용 홀 지름은 5, 10, 그리고 $20{\mu}m$에 대하여 조사하였다.

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생물학적 폐가스 처리공정 내 멤브레인 활용 (Application of Membranes for Biological Waste Gas Treatment Processes)

  • 이상훈
    • 멤브레인
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    • 제31권5호
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    • pp.327-332
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    • 2021
  • 멤브레인 기반의 MBRWG (Membrane Bioreactor for Waste Gas) 처리기술은 폐가스 흐름에 대한 높은 선택성을 바탕으로 효과적인 생물학적 제거를 수행할 수 있다. MBRWG에는 몇 가지 잠재적 이점이 있는데, 이 중 가장 두드러진 점은 기상과 액상이 멤브레인 양쪽으로 명확히 분리되어 액상 내 생물막의 최적제어가 용이하고 이를 통해 효과적인 생분해와 생물막의 활성화를 도모할 수 있다는 것이다. MBRWG 처리기술은 특히 xylene 같은 소수성 독성 기체 성분 제거에 유리한데 이는 소수성 기체의 물질전달속도, 독성 및 제거율이 생물막 인근의 액상흐름 및 수분제어에 민감하게 변화하기 때문이다. MBRWG 처리에 쓰이는 다양한 멤브레인 중에서 PDMS-중공사막(hollow fiber)이 가장 높은 기체 물질 전달을 제공한다고 보고되었다. Capillary 형태도 중공사막형태에 비해 비표면적은 낮지만 비교적 활발한 연구가 진행되고 있다. 소수성 기체성분 제거 외에도 기존 생물학적 폐가스 처리 장치에서 배출된 잔류 기체 혼합물이나 먼지를 제거하기 위한 후단 공정에서 멤브레인 활용을 고려할 수 있다.

XML 데이터베이스를 활용한 성과물 관리 프로세스의 효과 (Effective Management of Construction Information Using a XML Based Project Deliverable Management System)

  • 문성우;양병수
    • 대한토목학회논문집
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    • 제26권3D호
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    • pp.481-489
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    • 2006
  • 건설사업의 관리는 정보화 환경에서 이뤄지고 있으며, 건설업무 추진 중 많은 양의 건설정보가 생성된다. 사업종료 후 건설정보는 성과물 형태로 정리되어서 발주자에게 이관된다. 정보화의 발전에도 불구하고 성과물은 문서, 자료 등 파일을 CD로 작성하여 제출하는 방법을 현재 따르고 있다. 기업의 관점에서 다수의 프로젝트가 존재할 경우 파일형태의 성과물 관리는 데이터 관리에 있어서 비효과적이다. 본 논문은 XML 데이터베이스를 기반으로 하는 성과물 관리 프로세스를 제시하여 프로젝트 성과물의 활용성을 높이는 것을 목적으로 한다. 새롭게 제시된 프로세스에서는 건설 프로젝트의 성과물을 단순한 파일 형태로 제공하는 것이 아니라 데이터베이스 형태로 제공한다. 본 연구의 효과를 검증하기 위해서 개발된 XML 데이터 베이스 기반의 성과물관리시스템 파일럿은 성과물 자료의 이관을 편리하게 할 뿐만 아니라, 데이터의 저장과 검색, 수정을 용이하게 하여 성과물의 활용성을 높인다는 것을 보여준다.

젤라틴 기공유도물질과 유리모세관 장치를 이용한 다공성 PLGA 미세섬유의 제조 (Preparation of Porous PLGA Microfibers Using Gelatin Porogen Based on a Glass Capillary Device)

  • 김철민;김규만
    • 한국정밀공학회지
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    • 제33권1호
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    • pp.63-67
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    • 2016
  • We present a method of fabricating poly (lactic-co-glycolic acid) (PLGA) porous microfibers using a pore template. PLGA microfibers were synthesized using a glass capillary tube in a poly-(dimethylsiloxane) (PDMS) microfluidic chip. Gelatin solution was used as a porous template to prepare pores in microfibers. Two phases of PLGA solutions in different solvents-DMSO (dimethyl sulfoxide) and DCM (dichloromethane)-were used to control the porosity and strength of the porous microfibers. The porosity of the PLGA microfibers differed depending on the ratio of flow rates in the two phases. The porous structure was formed in a spiral shape on the microfiber. The porous structure of the microfiber is expected to improve transfer of oxygen and nutrients, which is important for cell viability in tissue engineering.

Surface Modification of Thin Film using Trimethylchlorosilane Vaporization Treatment

  • Choo, Byoung-Kwon;Kim, Ki-Hwan;Song, Na-Young;Choi, Jung-Su;Park, Kyu-Chang;Ang, Jin;Kim, Jin-Ook;Nam, Yeon-Heui;Chae, Gi-Sung;Chung, In-Jae
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2007년도 7th International Meeting on Information Display 제7권1호
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    • pp.900-903
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    • 2007
  • We introduce non-contact surface modification using trimethylchlorosilane (TMCS) for thin film transistor application. The surface is not contacted to the TMCS solution because it is vaporized at room temperature. The hydrophobic surface with contact angle $of\;{\sim}\;70^{\circ}$ can be achieved by the transfer of TMCS using a PDMS mold.

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Mechanical removal of surface residues on graphene for TEM characterizations

  • Dong-Gyu Kim;Sol Lee;Kwanpyo Kim
    • Applied Microscopy
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    • 제50권
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    • pp.28.1-28.6
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    • 2020
  • Contamination on two-dimensional (2D) crystal surfaces poses serious limitations on fundamental studies and applications of 2D crystals. Surface residues induce uncontrolled doping and charge carrier scattering in 2D crystals, and trapped residues in mechanically assembled 2D vertical heterostructures often hinder coupling between stacked layers. Developing a process that can reduce the surface residues on 2D crystals is important. In this study, we explored the use of atomic force microscopy (AFM) to remove surface residues from 2D crystals. Using various transmission electron microscopy (TEM) investigations, we confirmed that surface residues on graphene samples can be effectively removed via contact-mode AFM scanning. The mechanical cleaning process dramatically increases the residue-free areas, where high-resolution imaging of graphene layers can be obtained. We believe that our mechanical cleaning process can be utilized to prepare high-quality 2D crystal samples with minimum surface residues.

Highly Sensitive Biological Analysis Using Optical Microfluidic Sensor

  • Lee, Sang-Yeop;Chen, Ling-Xin;Choo, Jae-Bum;Lee, Eun-Kyu;Lee, Sang-Hoon
    • Journal of the Optical Society of Korea
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    • 제10권3호
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    • pp.130-142
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    • 2006
  • Lab-on-a-chip technology is attracting great interest because the miniaturization of reaction systems offers practical advantages over classical bench-top chemical systems. Rapid mixing of the fluids flowing through a microchannel is very important for various applications of microfluidic systems. In addition, highly sensitive on-chip detection techniques are essential for the in situ monitoring of chemical reactions because the detection volume in a channel is extremely small. Recently, a confocal surface enhanced Raman spectroscopic (SERS) technique, for the highly sensitive biological analysis in a microfluidic sensor, has been developed in our research group. Here, a highly precise quantitative measurement can be obtained if continuous flow and homogeneous mixing condition between analytes and silver nano-colloids are maintained. Recently, we also reported a new analytical method of DNA hybridization involving a PDMS microfluidic sensor using fluorescence energy transfer (FRET). This method overcomes many of the drawbacks of microarray chips, such as long hybridization times and inconvenient immobilization procedures. In this paper, our recent applications of the confocal Raman/fluorescence microscopic technology to a highly sensitive lab-on-a-chip detection will be reviewed.

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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Organic Thin-Film Transistors Fabricated on Flexible Substrate by Using Nanotransfer Molding

  • Hwang, Jae-Kwon;Dang, Jeong-Mi;Sung, Myung-Mo
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.287-287
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    • 2010
  • We report a new direct patterning method, called liquid bridge-mediated nanotransfer molding (LB-nTM), for the formation of two- or three-dimensional structures with feature sizes between tens of nanometers and tens of micron over large areas. LB-nTM is based on the direct transfer of various materials from a mold to a substrate via a liquid bridge between them. This procedure can be adopted for automated direct printing machines that generate patterns of functional materials with a wide range of feature sizes on diverse substrates. Arrays of TIPS-PEN TFTs were fabricated on 4" polyethersulfone (PES) substrates by LB-nTM using PDMS molds. An inverted staggered structure was employed in the TFT device fabrication. A 150 nm-thick indium-tin oxide (ITO) gate electrode and a 200 nm-thick SiO2dielectric layer were formed on a PES substrate by sputter deposition. An array of TIPS-PEN patterns (thickness: 60 nm) as active channel layers was fabricated on the substrate by LB-nTM. The nominal channel length of the TIPS-PEN TFT was 10 mm, while the channel width was 135 mm. Finally, the source and drain electrodes of 200 nm-thick Ag were defined on the substrate by LB-nTM. The TIPS-PEN TFTs can endure strenuous bending and are also transparent in the visible range, and therefore potentially useful for flexible and invisible electronics.

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Si-Containing Nanostructures for Energy-Storage, Sub-10 nm Lithography, and Nonvolatile Memory Applications

  • 정연식
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.108-109
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    • 2012
  • This talk will begin with the demonstration of facile synthesis of silicon nanostructures using the magnesiothermic reduction on silica nanostructures prepared via self-assembly, which will be followed by the characterization results of their performance for energy storage. This talk will also report the fabrication and characterization of highly porous, stretchable, and conductive polymer nanocomposites embedded with carbon nanotubes (CNTs) for application in flexible lithium-ion batteries. It will be presented that the porous CNT-embedded PDMS nanocomposites are capable of good electrochemical performance with mechanical flexibility, suggesting these nanocomposites could be outstanding anode candidates for use in flexible lithium-ion batteries. Directed self-assembly (DSA) of block copolymers (BCPs) can generate uniform and periodic patterns within guiding templates, and has been one of the promising nanofabrication methodologies for resolving the resolution limit of optical lithography. BCP self-assembly processing is scalable and of low cost, and is well-suited for integration with existing semiconductor manufacturing techniques. This talk will introduce recent research results (of my research group) on the self-assembly of Si-containing block copolymers for the achievement of sub-10 nm resolution, fast pattern generation, transfer-printing capability onto nonplanar substrates, and device applications for nonvolatile memories. An extraordinarily facile nanofabrication approach that enables sub-10 nm resolutions through the synergic combination of nanotransfer printing (nTP) and DSA of block copolymers is also introduced. This simple printing method can be applied on oxides, metals, polymers, and non-planar substrates without pretreatments. This talk will also report the direct formation of ordered memristor nanostructures on metal and graphene electrodes by the self-assembly of Si-containing BCPs. This approach offers a practical pathway to fabricate high-density resistive memory devices without using high-cost lithography and pattern-transfer processes. Finally, this talk will present a novel approach that can relieve the power consumption issue of phase-change memories by incorporating a thin $SiO_x$ layer formed by BCP self-assembly, which locally blocks the contact between a heater electrode and a phase-change material and reduces the phase-change volume. The writing current decreases by 5 times (corresponding to a power reduction of 1/20) as the occupying area fraction of $SiO_x$ nanostructures varies.

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