• 제목/요약/키워드: room temperature nanoimprint lithography

검색결과 16건 처리시간 0.03초

변형률속도를 고려한 상온 나노임프린트 공정의 유한요소해석 (Finite Element Analysis of the Room Temperature Nanoimprint Lithography Process with Rate-Dependent Plasticity)

  • 송정한;김승호;;허훈
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2005년도 추계학술대회 논문집
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    • pp.63-66
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    • 2005
  • Nanoimprint lithography (NIL) process at room temperature has been newly proposed in recent years to overcome the shape accuracy and sticking problem induced in a conventional NIL process. Success of the room temperature NIL relies on the accurate understand of the mechanical behavior of the polymer. Since a conventional NIL process has to heat a polymer above the glass transition temperature to deform the physical shape of the polymer with a mold pattern, viscoelastic property of polymer have major effect on the NIL process. However, rate dependent behavior of polymer is important in the room temperature NIL process because a mold with engraved patterns is rapidly pressed onto a substrate coated with the polymer by the hydraulic equipment. In this paper, finite element analysis of the room temperature NIL process is performed with considering the strain rate dependent behavior of the polymer. The analyses with the variation of imprinting speed and imprinting pattern are carried out in order to investigate the effect of such process parameters on the room temperature NIL process. The analyses results show that the deformed shape and imprint force is quite different with the variation of punch speed because the dynamic behavior of the polymer is considered with the rate dependent plasticity model. The results provide a guideline for the determination of process conditions in the room temperature NIL process.

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온도 제어 비평형 분자동역학 방법을 이용한 나노임프린트 리소그라피 공정의 전산모사 (Simulation for nanoimprint lithography process using temperature controlled nonequilibrium molecular dynamics)

  • 권성진;이영민;임세영
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회A
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    • pp.332-336
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    • 2007
  • Temperature is an essential process variable in nanoimprint lithography(NIL) where the temperature varies between room temperature and above the glass transition temperature. To simulate NIL process, we employ both the Nose-Poincare method for temperature controlled molecular dynamics(MD) and force field for polymer material i.e. polymethyl methacrylate(PMMA), which is most widely selected as NIL resist. Nose-Poincare method, which convinces the conservation of Hamiltonian structure and time-reversal symmetry, overcomes the drawbacks inherent in the conventional methods such as Nose thermostat and Nose-Hoover thermostat. Thus, this method exhibits enhanced numerical stability even when the temperature fluctuation is large. To describe PMMA, we adopt the force field which account for bond stretch, bending, torsion, inversion, partial charge, and van der Waals energy.

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다중 디스펜싱 방법에 의한 UV-나노임프린트 리소그래피 (UV nanoimprint lithography using a multi-dispensing method)

  • 심영석;손현기;신영재;이응숙;정준호
    • 제어로봇시스템학회논문지
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    • 제10권7호
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    • pp.604-610
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    • 2004
  • Ultraviolet-nanoimprint lithography (UV-NIL) is a promising method for cost-effectively defining nanoscale structures at room temperature and low pressure. Since the resolution of transferred nanostructures depends strongly upon that of nanostamps, the nanostamp fabrication technology is a key technology to UV-NIL. In this paper, a $5\times5\times0.09$ in. quartz stamp whose critical dimension is 377 nm was fabricated using the etching process in which a Cr film was employed as a hard mask for transferring nanostructures onto the quartz plate. To effectively apply the fabricated 5-in. stamp to UV-NIL on a 4-in. Si wafer, we have proposed a new UV-NIL process using a multi-dispensing method as a way to supply resist on a wafer. Experiments have shown that the multi-dispensing method can enable UV-NIL using a large-area stamp.

4" Si 웨이퍼에 대한 single-step UV 나노임프린트 리소그래피 (Single-step UV nanoimprint lithography on a 4" Si wafer)

  • 정준호;손현기;심영석;신영재;이응숙;최성욱;김재호
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2003년도 춘계학술대회 논문집
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    • pp.199-202
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    • 2003
  • Ultraviolet-nanoimprint lithography (UV-NIL) is a promising method for cost-effectively defining nanoscale structures at room temperature and low pressure. Since the resolution of nanostructures depends strongly upon that of nanostamps, the nanostamp fabrication technology is a key technology to UV-NIL. In this paper, a 5$\times$5$\times$0.09 in. quartz stamp whose critical dimension is 377 nm was fabricated using the etch process in which a Cr film was employed as a hard mask for transferring nanostructures onto the quartz plate. To effectively apply tile fabricated 5-in. stamp to UV-NIL on a 4-in. Si wafer, we have proposed a new UV-NIL process using a multi-dispensing method as a way to supply resist on a wafer Experiments have shown that the multi-dispensing method can enable UV-NIL rising a large-area stamp.

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UV 나노임프린트 리소그래피용 UV 투과성 나노스탬프 제작 (UV transparent stamp fabrication for UV nanoimprint lithography)

  • 정준호;심영석;손현기;신영재;이응숙;허익범;권성원
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2003년도 춘계학술대회
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    • pp.1069-1072
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    • 2003
  • Ultraviolet-nanoimprint lithography (UV-NIL) is a promising nanoimprint method for cost-effectively defining nanometer scale structures at room temperature and low pressure. Nanostamp fabrication technology is a key technology for UV-NIL because fabricating a high resolution nanostamp is the first step for defining high resolution nanostructures in a substrate. We used quartz as an UV transparent stamp material for the UVNIL. A $5{\times}5{\times}0.09$ inch stamp was fabricated using the quartz etch process in which Cr film was used as a hard mask for transferring nanostructures into the quartz. In this paper, we describe the quartz etching process and discuss the results including SEM images.

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UV 나노 임프린트 공정에서 스탬프 균일 변형을 위한 더미 블록 설계 (Design of the Dummy Block for Uniform Stamp Deformation in the UV Nanoimprint Lithography)

  • 김남웅;김국원;정태은;신효철
    • 한국공작기계학회논문집
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    • 제17권5호
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    • pp.76-81
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    • 2008
  • Nanoimprint lithography(NIL) is an emerging technology enabling cost-effective and high-throughput nanofabrication. Among NILs, significant efforts from both academia and industry have been put in UV NIL research and development because of its ability to pattern at room temperature and at low pressure. In UV NIL, there may be in-line set-up error of the stamp and the substrate. To compensate this error, the dummy blocks are put on the stamp and pressurized uniformly. Contact problems between the stamp and the photoresist layer on the substrate are often happened, which results in the non-uniform residual layer In this paper, the pressurization method on the dummy block is investigated by the finite element method. A new method is recommended and evaluated far the uniform stamp deformation.

알루미늄 박 및 플레이트 표면 미세 패터닝을 위한 상온 임프린팅 기술 (Room Temperature Imprint Lithography for Surface Patterning of Al Foils and Plates)

  • 박태완;김승민;강은빈;박운익
    • 마이크로전자및패키징학회지
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    • 제30권2호
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    • pp.65-70
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    • 2023
  • 나노임프린트 리소그래피(Nanoimprint lithography, NIL) 공정은 패턴 형성을 위한 공정 단순성, 우수한 패턴 형성, 공정의 확장성, 높은 생산성 및 저렴한 공정 비용이라는 이유들로 인해 많은 관심을 받고 있다. 그러나, 기존의 NIL 기술들을 통해 금속 소재 상 구현할 수 있는 패턴의 크기는 일반적으로 마이크로 수준으로 제한적이다. 본 연구에서는, 다양한 두께의 금속 기판 표면에 마이크로/나노 스케일 패턴을 직접적으로 형성하기 위한 극압 임프린트 리소그래피(extremepressure imprint lithography, EPIL) 방법을 소개하고자 한다. EPIL 공정은 자외선, 레이저, 임프린트 레지스트 또는 전기적 펄스 등의 외부 요인을 사용하지 않고 고분자, 금속, 세라믹과 같은 다양한 재료의 표면에 신뢰성 있는 나노 수준의 패터닝을 가능하게 한다. 레이저 미세가공 및 포토리소그래피로 제작된 마이크로/나노 몰드는 상온에서 높은 하중 혹은 압력을 가해 정밀한 소성변형 기반 Al 기판의 나노 패터닝에 활용된다. 20 ㎛ 부터 100 ㎛까지 다양한 두께를 갖는 Al 기판 상 마이크로/나노 스케일의 패턴 형성을 보여주고자 한다. 또한, 다목적 EPIL 기술을 통해 금속 재료 표면에서 그 형상을 제어하는 방법 역시 실험적으로 증명된다. 임프린트 리소그래피 기반 본 접근법은 복잡한 형상이 포함된 금속 재료의 표면을 요구하는 다양한 소자 응용을 위한 나노 제조 방법에 적용될 수 있을 것으로 기대한다.

나노임프린트를 이용한 바이오칩용 나노 패턴 제작 (Fabrication of Nanopatterns for Biochip by Nanoimprint Lithography)

  • 최호길;김순중;오병근;최정우
    • KSBB Journal
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    • 제22권6호
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    • pp.433-437
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    • 2007
  • 본 연구에서는 나노임프린트 리소그래피를 이용하여 500 nm line, 600 nm pore, $1{\mu}m$ pore, $2.5{\mu}m$ pore의 마이크로 수준에서 나노 수준에 이르는 다양한 크기와 모양의 nanopore 형태 패턴을 제작하였다. Thermal imprint 방식과 달리 상온, 저압에서 임프린팅이 가능하며 사용되는 스탬프의 수명을 늘리고 보다 미세하고 복잡한 형태의 패턴을 제작할 수 있는 UV-assisted imprint 방식을 사용하였다. E-beam lithography로 패턴을 각인한 quartz소재의 스탬프를 사용하였으며 스탬프의 재질이 투명하여 UV 조사시 UV curable resin이 경화될 수 있도록 하였다. 또한 스탬프의 표면을 (heptadecafluoro-1,1,2,2-tetrahydrodecyl) trichlorosilane의 monolayer 층으로 미리 코팅하여 임프린트 후 스탬프와 기판과의 releasing을 쉽게함과 동시에 패턴의 일부가 스탬프에 묻어 나와 전사된 패턴에 defect가 없도록 하였다. 또한, gold를 미리 증착하여 임프린팅함으로써 lift-off 시에 필요한 hi-layer 층이 필요 없게 되어 산소 플라즈마를 이용한 에칭이 더욱 쉽고 lift-off 공정이 생략될 수 있도록 하였다. 나노임프린트 공정에 있어 가장 큰 문제점은 잔여층의 생성이며 이러한 잔여층을 제거하고자 산소 플라즈마 에칭을 하였다. 에칭공정을 통해 gold의 표면이 완전히 드러났으며 산소 플라즈마를 통해 gold의 표면이 친수성으로 바뀌어 추후 단백질 고정화를 더욱 쉽게 하였다. 그리하여 나노임프린트 기술을 이용해 나노크기의 바이오소자 제작을 가능하게 하였다.

UV 나노임프린트 공정에서의 수지 액적 증발 거동 분석 (Analysis of the Evaporation Behavior of Resin Droplets in UV-Nanoimprint Process)

  • 최두순;김기돈
    • 소성∙가공
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    • 제18권3호
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    • pp.268-273
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    • 2009
  • Ultraviolet nanoimprint lithography (UV-NIL), which is performed at a low pressure and at room temperature, is known as a low cost method for the fabrication of nano-scale patterns. In the patterning process, maintaining the uniformity of the residual layer is critical as the pattern transfer of features to the substrate must include the timed etch of the residual layer prior to the etching of the transfer layer. In pursuit of a thin and uniform residual layer thickness, the initial volume and the position of each droplet both need to be optimized. However, the monomer mixtures of resin had a tendency to evaporate. The evaporation rate depends on not only time, but also the initial volume of the monomer droplet. In order to decide the initial volume of each droplet, the accurate prediction of evaporation behavior is required. In this study, the theoretical model of the evaporation behavior of resin droplets was developed and compared with the available experimental data in the literature. It is confirmed that the evaporation rate of a droplet is not proportional to the area of its free surface, but to the length of its contact line. Finally, the parameter of the developed theoretical model was calculated by curve fitting to decide the initial volume of resin droplets.