• 제목/요약/키워드: flexible thin layer battery

검색결과 5건 처리시간 0.019초

Flexible Thin Layer Battery가 부착된 lontophoretic Gel Patch를 이용한 Vitamin C 유도체의 경피 흡수 증진 (Enhanced Transdermal Delivery of Vitamin C Derivative using lontophoretic Gel Patch with Flexible Thin Layer Battery)

  • 조완구;랑문정;송영숙;임영호;박현우
    • 대한화장품학회지
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    • 제33권1호
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    • pp.23-28
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    • 2007
  • 비타민 C는 강력한 환원제로서 멜라닌 색소의 합성을 저해하는 것으로 알려져 있다. 그러나 일반적인 화장품 제형에서는 낮은 안정성과 경피 흡수의 문제점으로 만족할 만한 효과를 나타내지 못한다. 본 연구에서는 안정성이 개선된 비타민 C의 유도체인 ascorbyl glucoside (AsAG)을 유효성분으로 하여 경피흡수를 증가시키고자 하였다. 본 실험에서는 유연하면서도 박막 형태의 배터리를 장착한 패치 화장품을 제조하고 안정성과 경피흡수성을 평가하였다. 피부에 낮은 전류를 증가하는 이온토포레시스를 활용하여 피부에 적용하는 전류의 세기를 증가시키면 물질의 경피흡수는 증가한다. 그러나 전류의 세기를 증가시키면 피부 부작용이 증가하기 때문에 본 연구에서는 한국인의 피부에 맞는 적절한 전류를 선택하여 피부 부작용을 최소화하였다. 이런 결과들을 바탕으로 유연하면서도 가벼운 박막 배터리를 개발하였으며, 2%의 AsAG을 함유한 이온토포레시스 패치의 안전성, 경피흡수정도, 미백효과 등을 검토한 결과 피부에 가하는 최적의 전류는 1.5 V의 배터리를 사용하여 피부 부작용과 경피흡수를 고려하여 평균 0.1 mA이었다. 또한 패치의 임상실험 결과 유의한 수준의 미백효과를 보였으며 피부 자극도도 통상의 화장품 수준을 나타냈다.

High-performance thin-film transistor with a novel metal oxide channel layer

  • Son, Dae-Ho;Kim, Dae-Hwan;Kim, Jung-Hye;Sung, Shi-Joon;Jung, Eun-Ae;Kang, Jin-Kyu
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.222-222
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    • 2010
  • Transparent semiconductor oxide thin films have been attracting considerable attention as potential channel layers in thin film transistors (TFTs) owing to their several advantageous electrical and optical characteristics such as high mobility, high stability, and transparency. TFTs with ZnO or similar metal oxide semiconductor thin films as the active layer have already been developed for use in active matrix organic light emitting diode (AMOLED). Of late, there have been several reports on TFTs fabricated with InZnO, AlZnSnO, InGaZnO, or other metal oxide semiconductor thin films as the active channel layer. These newly developed TFTs were expected to have better electrical characteristics than ZnO TFTs. In fact, results of these investigations have shown that TFTs with the new multi-component material have excellent electrical properties. In this work, we present TFTs with inverted coplanar geometry and with a novel HfInZnO active layer co-sputtered at room temperature. These TFTs are meant for use in low voltage, battery-operated mobile and flexible devices. Overall, the TFTs showed good performance: the low sub-threshold swing was low and the $I_{on/off}$ ratio was high.

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Development of Process and Equipment for Roll-to-Roll convergence printing technology

  • 김동수;배성우;김충환
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2010년도 춘계학술발표대회
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    • pp.19.1-19.1
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    • 2010
  • The process of manufacturing printed electronics using printing technology is attracting attention because its process cost is lower than that of the conventional semiconductor process. This technology, which offers both a lower cost and higher productivity, can be applied in the production of organic TFT (thin film transistor), solar cell, RFID(radio frequency identification) tag, printed battery, E-paper, touch screen panel, black matrix for LCD(liquid crystal display), flexible display, and so forth. In general, in order to implement printed electronics, narrow width and gap printing, registration of multi-layer printing by several printing units, and printing accuracy of under $20\;{\mu}m$ are all required. These electronic products require high precision to the degree of tens of microns - in a large area with flexible material, and mass productivity at low cost. As such, the roll-to-roll printing process is attracting attention as a mass production system for these printed electronic devices. For the commercialization of this process, two basic electronic ink technologies, such as conductive ink and polymers, and printing equipment have to be developed. Therefore, this paper addressed basis design and test to develop fine patterning equipment employing the roll-to-roll printing equipment and electronic ink.

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인쇄전자를 위한 롤투롤 프린팅 공정 장비 기술

  • 김동수;김충환;김명섭
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.15.2-15.2
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    • 2009
  • Manufacturing of printed electronics using printing technology has begun to get into the hot issue in many ways due to the low cost effectiveness to existing semi-conductor process. This technology with both low cost and high productivity, can be applied in the production of organic thin film transistor (OTFT), solar cell, radio frequency identification (RFID) tag, printed battery, E-paper, touch screen panel, black matrix for liquid crystal display (LCD), flexible display, and so forth. The emerging technology to manufacture the products in mass production is roll-to-roll printing technology which is a manufacturing method by printings of multi-layered patterns composed of semi-conductive, dielectric and conductive layers. In contrary to the conventional printing machines in which printing precision is about $50~100{\mu}m$, the printing machines for printed electronics should have a precision under $30{\mu}m$. In general, in order to implement printed electronics, narrow width and gap printing, register of multi-layer printing by several printing units, and printing accuracy of under $30{\mu}m$ are all required. We developed the roll-to-roll printing equipment used for printed electronics, which is composed of un-winder, re-winder, tension measurement system, feeding units, dancer systems, guide unit, printing unit, vision system, dryer units, and various auxiliary devices. The equipment is designed based on cantilever type in which all rollers except printing ones have cantilever types, which could give more accurate machine precision as well as convenience for changing rollers and observing the process.

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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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