• Title/Summary/Keyword: 나노 패턴 성형 기술

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나노 패턴 성형 공정기술

  • 강신일
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2004.05a
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    • pp.9-9
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    • 2004
  • 나노 패턴 성형 기술은 반도체와 같은 정보전자 소자 기술과 정보저장매체 기술 분야 및 광통신 분야에서 그 기술의 필요도가 급속히 증가하고 있다. 정보저장 매체의 경우 저장밀도가 기하급수적으로 증가하고 있는 추세이며 향후 수년 내에 기존의 정보저장매체 제작방법으로는 더 이상의 저장밀도 증가가 불가능한 수준까지 기술의 발달이 이루어지리라 예상된다. 이에 따라 패턴드 미디어(patterned media) 및 초고밀도 광정보저장매체가 정보저장기술의 차세대 매체로서 제안되었으며 이의 실현을 위해 나노 패턴 성형기술의 시급한 개발이 요구되고 있다.(중략)

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A study on the plastic parts with nano pattern using Injection molding process (사출성형공정을 이용한 미세패턴을 갖는 플라스틱 부품 제작에 관한 연구)

  • 김동학;김태완
    • Proceedings of the KAIS Fall Conference
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    • 2003.06a
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    • pp.356-358
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    • 2003
  • 본 연구에서는 일반사출과 MmSH방식 두 가지의 사출성형공정을 이용하여 나노 패턴 구조물을 제작하였다. 성형품에 나타난 나노패턴의 진사성은 MmSH방식을 이용한 PC 성형품에서 가장 우수했다. 일반사출공정에서 HIPS로 제작된 성형품은 나노패턴의 전사가 잘 형성되었고, PC의 경우 전사가 잘 이루어지지 않았다. 연구 결과 수지의 유동성이 좋고, 금형표면 온도가 높을수록 나노패턴의 전사성은 향상됨을 알 수 있었다.

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A study on the Plastic Parts with Nano Pattern using Injection Molding Process (사출성형공정을 이용한 미세패턴을 갖는 플라스틱 부품 제작에 관한 연구)

  • 김동학;김태완
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.4 no.3
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    • pp.168-171
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    • 2003
  • Nano pattern structure is produced using the conventional injection molding and the MmSH method. Plastic parts using PC make used of the MmSH method is much better than the other about manufacture showed transcription of nano pattern. The conventional injection molding, transcription of plastic parts with nano pattern using HIPS showed better than PC. In the result, transcription of nano pattern improve when well liquidity and high temperature of mold surface.

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나노공정기반 광소자 기술개발 현황

  • 정명영
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2004.05a
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    • pp.10-10
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    • 2004
  • 유전율이 서로 다른 물질을 나노 크기로 주기적으로 배열하여 황자 띠간격(Photonic bandgap)을 이루게 하는 광결정(Photonic crystal)에 인위적인 결함을 부가하여 광파워 분배 및 Mux/Demux 등 광회로 기능 수행을 할 수 있도록 집적화한 광도파로 소자가 미래형 정보통신사회를 위한 초고집적화, 초고속화, 저전력 및 신기능 등의 특성을 위하여 요구된다. 이러한 나노 광결정 소자는 다양한 방법으로 제작이 시도되고 있는데, 나노 임프린트 기술은 실장밀도가 높으며, 수십 나노급의 패턴이 주기적으로 배열된 구조물의 성형에 큰 장점이 있어서 본 연구에서 다루어졌다.(중략)

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A study on PDMS mold fabrication using thermal embossing method (Thermal embossing 공정을 이용한 PDMS mold 제작에 관한 연구)

  • 김동학;유홍진;김창교;장석원;김태완
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.5 no.3
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    • pp.223-226
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    • 2004
  • Injection molding using plastic materials was expected to mass production of structure with nano pattern for low cost phase. The PDMS mold was produced easily and uniformly by using thermal embossing. Quartz master for embossing method was made using electron beam lithography it had 100-500 nm size of line and dot type. The PDMS mold was produced after a brief hardening process and the master removal. The results show that various patterns are successfully fabricated the nano scale.. The replicated mold would be useful a stamper fabrication for injection molding.

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퀄츠 마스터를 이용한 300nm급 사출성형실험

  • 이준형;서영호;최두선;유영은;제태진;황경현
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2004.05a
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    • pp.131-131
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    • 2004
  • 최근 정보량의 증가와 통신속도의 증가로 인해 광 저장매체의 용량 증가에 대한 요구가 급증하고 있다. 광 저장매체의 용량을 증가시키기 위해서는 광 저장매체의 최소 피치 크기를 줄이는 방법으로 가능해진다. 기존의 광 저장매체에 대한 패턴 식각 기술은 광을 이용한 노광 기술로 이루어져 왔다. 그러나 광을 이용한 노광 기술은 광 굴절에 의한 한계로 인해 500nm이하의 패턴을 형성하는데 많은 어려움이 따른다.(중략)

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Effects of the mold surface heating methods for the DVD stamper with nano pattern on the transcription of the injection molded parts using COC and PMMA plastics (나노패턴을 갖는 DVD용 스템퍼의 표면가열방식이 COC, PMMA 수지를 이용한 사출성형품의 전사성에 미치는 영향)

  • 김동학;유홍진;김태완
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.5 no.3
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    • pp.218-222
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    • 2004
  • We developed the stamper structured mold with moving core type with nano pattern. Among the factors affecting the quality of injection molding plastic parts, We studied the effects of moving core surface heating method on the transcription of injection molding plastic parts with nano structures. Moving core surface heating has been tested by three different methods. The first was conventional injection molding process without heating moving core surface, the second was halogen lamp radiation heating process and the last was MmSH process using gas flame. As a result of making injection molded parts by using thermoplastic amorphous resins such as COC, PMMA, MmSH method which is the most high temperature of moving core surface showed the best nano pattern transcription of the three methods, but the outcome of conventional injection molding process was not better than others.

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Nanoscale Pattern Formation of Li2CO3 for Lithium-Ion Battery Anode Material by Pattern Transfer Printing (패턴전사 프린팅을 활용한 리튬이온 배터리 양극 기초소재 Li2CO3의 나노스케일 패턴화 방법)

  • Kang, Young Lim;Park, Tae Wan;Park, Eun-Soo;Lee, Junghoon;Wang, Jei-Pil;Park, Woon Ik
    • Journal of the Microelectronics and Packaging Society
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    • v.27 no.4
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    • pp.83-89
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    • 2020
  • For the past few decades, as part of efforts to protect the environment where fossil fuels, which have been a key energy resource for mankind, are becoming increasingly depleted and pollution due to industrial development, ecofriendly secondary batteries, hydrogen generating energy devices, energy storage systems, and many other new energy technologies are being developed. Among them, the lithium-ion battery (LIB) is considered to be a next-generation energy device suitable for application as a large-capacity battery and capable of industrial application due to its high energy density and long lifespan. However, considering the growing battery market such as eco-friendly electric vehicles and drones, it is expected that a large amount of battery waste will spill out from some point due to the end of life. In order to prepare for this situation, development of a process for recovering lithium and various valuable metals from waste batteries is required, and at the same time, a plan to recycle them is socially required. In this study, we introduce a nanoscale pattern transfer printing (NTP) process of Li2CO3, a representative anode material for lithium ion batteries, one of the strategic materials for recycling waste batteries. First, Li2CO3 powder was formed by pressing in a vacuum, and a 3-inch sputter target for very pure Li2CO3 thin film deposition was successfully produced through high-temperature sintering. The target was mounted on a sputtering device, and a well-ordered Li2CO3 line pattern with a width of 250 nm was successfully obtained on the Si substrate using the NTP process. In addition, based on the nTP method, the periodic Li2CO3 line patterns were formed on the surfaces of metal, glass, flexible polymer substrates, and even curved goggles. These results are expected to be applied to the thin films of various functional materials used in battery devices in the future, and is also expected to be particularly helpful in improving the performance of lithium-ion battery devices on various substrates.

Development of simulation method for heating line optimization of E-Mold by using commercial CAE softwares (전산모사 프로그램을 이용한 E-MOLD의 Heating Line 배치의 최적화 설계에 관한 연구)

  • Chung, Jae-Youp;Kim, Dong-Hak
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.9 no.6
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    • pp.1754-1759
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    • 2008
  • To produce plastic parts that have fine pattern through conventional injection molding, a lot of difficulties follow. Therefore, rapid heating and cooling methods are good candidates for manufacturing injection-molded parts with micro/nano patterns. In this study, we adopted the E-Mold patent technology. The mold for E-Mold technology has a separate heated core with micro heaters. It is very important to optimize the lay-out of the heaters in heated core because it influences both control and distribution of mold temperature. We developed a optimization method of heating line lay-out by using commercial softwares and compared the output with the experimental results. We used Pro-Engineer Wildfire 2.0 for the mold design, ICEMCFD for mesh generation, and FLUENT for heat transfer simulation. The simulation results showed the temperature profile from $60^{\circ}C$ to $120^{\circ}C$ or $180^{\circ}C$ during heating and cooling process which were compared with the injection molding experiments. We concluded that the simulation could well explain the experimental results. It was shown that the E-Mold optimization design for heater lay-out could be available through the simulation.