• 제목/요약/키워드: Flexible and stretchable electronic device

검색결과 11건 처리시간 0.021초

유연신축성 전자 디바이스를 위한 열계면 소재 연구동향 (Research Trends in Thermal Interface Materials for Flexible and Stretchable Electronic Device)

  • 박영주;정건주;김광석
    • 마이크로전자및패키징학회지
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    • 제31권1호
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    • pp.7-15
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    • 2024
  • 유연신축성 전자 디바이스의 다기능화, 소형화 및 고출력화 추세에 따라 우수한 열 전달 특성을 갖춘 재료나 구조가 이슈로 부상하고 있다. 기존의 열계면 소재는 급격한 구부림, 비틀림, 신축 등을 겪어야 하는 유연신축성 전자 디바이스의 방열 요구성능을 충족시키지 못한다. 이러한 문제를 해결하기 위하여 높은 열전도성과 신축성을 동시에 갖는 열계면 소재 개발이 요구된다. 본 논문에서는 Liquid metal, Carbon, Ceramic 기반 신축성 열계면 소재의 연구동향을 살펴보고 열적, 기계적 특성 향상을 위한 효과적 전략을 알아보고자 한다.

신축성 전극 기술 개발 동향 (Technical Trends of Stretchable Electrodes)

  • 최수빈;이철로;정승부;김종웅
    • 마이크로전자및패키징학회지
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    • 제26권3호
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    • pp.23-36
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    • 2019
  • Stretchable electronic systems have recently been gaining more and more attention because of their potential applications in various implements such as electronic skins and wearable/shape-deformable electronics. An essential factor of the stable stretchable device implementation is that all the elements constituting the system must have sufficient elasticity and exhibit stable performances even under repetitive stretching conditions. In this paper, we review the latest research results to secure the stable stretchability of electrodes among the various components of the system.

형상 기억 유연 소자의 내구성 평가에 관한 연구 (Durability of the Flexible Shape Memory Device)

  • 양희경;김해진;김대은
    • 정보저장시스템학회논문집
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    • 제11권2호
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    • pp.36-40
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    • 2015
  • The demand for flexible devices including solar cells, memories and batteries has increased rapidly over the past decades. In most flexible devices, polymer-based materials are used to enable the mechanical deformations such as bending or folding. Shape Memory Polymers (SMPs) is a high molecular compound polymer with flexibility and shape recovery characteristics. In this work, flexible shape memory device was fabricated by simply coating the conducting material, carbon nano-tube (CNT), on a shape memory polymer. Furthermore, durability of the device under various type of mechanical deformations was assessed. It is believed that the result of this work will aid in realization of a stretchable and wearable electronic device for practical applications.

플렉시블/웨어러블 일렉트로닉스 최신 연구동향 (Recent Progress in Flexible/Wearable Electronics)

  • 강석희;홍석원
    • Journal of Welding and Joining
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    • 제32권3호
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    • pp.34-42
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    • 2014
  • Flexible devices have been developed from their rigid, heavy origins to become bendable, stretchable and portable. Such a paper displays, e-skin, textile electronics are emerging research areas and became a mainstream of overall industry. Thin film transistors, diodes and sensors built on plastic sheets, textile and other unconventional substrates have a potential applications in wearable displays, biomedical devices and electronic system. In this review, we describe current trends in technologies for flexible/wearable electronics.

스트레처블 기판상에 산화물 기반의 광센서 제작 (Fabrication of an Oxide-based Optical Sensor on a Stretchable Substrate)

  • 김무진
    • 산업융합연구
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    • 제20권12호
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    • pp.79-85
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    • 2022
  • 최근 전자소자는 플렉서블 기판상에 제작된 스마트폰이 출시되었으며, 스트레처블 한 전자소자의 연구가 진행되고 있다. 본 논문에서는 실리콘 기반의 스트레처블한 소재를 만들어 이것을 기판으로 사용하여 산화물을 이용한 광센서 소자를 구현하여 평가하고자 한다. 이를 위해, 실리콘 기반의 용액성 고무를 이용하여 상온에서 잘 늘어나는 기판을 만들어 소재의 350% 연신율을 확인하였으며, 반사도, 투과도, 흡수도와 같은 광특성을 측정하였다. 다음으로 이러한 소재는 표면이 소수성을 나타내기 때문에 표면 세정 및 친수성으로 변화시키기 위하여 산소 기반의 플라즈마 표면 처리를 진행하였으며, 진공장비로 AZO(Aluminium Zinc Oxide) 기반의 산화막을 증착한 후 면봉을 이용하거나 메탈 마스트로 Ag 전극을 형성시켜 광센서를 완성하였다. 제작된 광전자소자는 빛을 조사했을 때와 하지 않았을 때의 전압에 따른 전류 변화를 분석하여 광에 의하여 생성된 캐리어들에 의한 광전류를 관찰하였으며, 벤딩 장비를 이용하여 폴딩에 따른 광센서소자 영향성을 추가 테스트하였다. 벤딩 테스트 전과 빛에 의해 생성되는 전류값 변화를 추가로 분석하였다. 향후 스트레처블 기판위에 늘어나는 반도체 물질 및 전극을 형성하여 폴딩(벤딩) 및 늘어나는 광소자를 집중적으로 연구할 계획이다.

유연 반도체/메모리 소자 기술 (Technology of Flexible Semiconductor/Memory Device)

  • 안종현;이혁;좌성훈
    • 마이크로전자및패키징학회지
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    • 제20권2호
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    • pp.1-9
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    • 2013
  • Recently flexible electronic devices have attracted a great deal of attention because of new application possibilities including flexible display, flexible memory, flexible solar cell and flexible sensor. In particular, development of flexible memory is essential to complete the flexible integrated systems such as flexible smart phone and wearable computer. Research of flexible memory has primarily focused on organic-based materials. However, organic flexible memory has still several disadvantages, including lower electrical performance and long-term reliability. Therefore, emerging research in flexible electronics seeks to develop flexible and stretchable technologies that offer the high performance of conventional wafer-based devices as well as superior flexibility. Development of flexible memory with inorganic silicon materials is based on the design principle that any material, in sufficiently thin form, is flexible and bendable since the bending strain is directly proportional to thickness. This article reviews progress in recent technologies for flexible memory and flexible electronics with inorganic silicon materials, including transfer printing technology, wavy or serpentine interconnection structure for reducing strain, and wafer thinning technology.

Development of Three-Dimensional Deformable Flexible Printed Circuit Boards Using Ag Flake-Based Conductors and Thermoplastic Polyamide Substrates

  • Aram Lee;Minji Kang;Do Young Kim;Hee Yoon Jang;Ji-Won Park;Tae-Wook Kim;Jae-Min Hong;Seoung-Ki Lee
    • 한국전기전자재료학회논문지
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    • 제37권4호
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    • pp.420-426
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    • 2024
  • This study proposes an innovative methodology for developing flexible printed circuit boards (FPCBs) capable of conforming to three-dimensional shapes, meeting the increasing demand for electronic circuits in diverse and complex product designs. By integrating a traditional flat plate-based fabrication process with a subsequent three-dimensional thermal deformation technique, we have successfully demonstrated an FPCB that maintains stable electrical characteristics despite significant shape deformations. Using a modified polyimide substrate along with Ag flake-based conductive ink, we identified optimized process variables that enable substrate thermal deformation at lower temperatures (~130℃) and enhance the stretchability of the conductive ink (ε ~30%). The application of this novel FPCB in a prototype 3D-shaped sensor device, incorporating photosensors and temperature sensors, illustrates its potential for creating multifunctional, shape-adaptable electronic devices. The sensor can detect external light sources and measure ambient temperature, demonstrating stable operation even after transitioning from a planar to a three-dimensional configuration. This research lays the foundation for next-generation FPCBs that can be seamlessly integrated into various products, ushering in a new era of electronic device design and functionality.

인장변형에 따른 그래핀복합 카본블랙전극의 저항변화연구 (A Study on the Electrical Resistivity of Graphene Added Carbon Black Composite Electrode with Tensile Strain)

  • 이태원;이홍섭;박형호
    • 마이크로전자및패키징학회지
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    • 제22권1호
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    • pp.55-61
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    • 2015
  • 신축성 전극소재는 웨어러블 밴드나 전자피부와 같은 플렉서블 제품으로의 적용 때문에 주목 받고 있다. 플렉서블 소자로서 사용하기 위해선 구부리거나 비틀거나 늘리는 등 물리적 변형에도 전기저항의 증가가 최소화되어야 한다. 카본블랙은 저가의 간단한 공정, 특히 인장 시 비저항의 감소라는 장점 때문에 후보소재로 고려되고 있다. 하지만 카본블랙의 전도도는 전극으로 사용되기에 상대적으로 낮다. 이에 비해 그래핀은 뛰어난 전기전도도 및 유연성 때문에 촉망받고 있는 전자소재이다. 따라서 그래핀을 첨가한 카본블랙은 신축성 전극으로 적합한 소재로 예상된다. 본 논문을 통해 인장 시 그래핀을 첨가한 카본전극의 전기적 특성을 연구하였다. 기계적인 인장은 전극 내의 균열(crack)을 형성시켜 도전경로의 파괴를 일으켰다. 하지만 인장으로 정렬된 그래핀은 카본필러 간의 연결성을 강화하고 도전구조를 유지하였다. 무엇보다도 그래핀 첨가로 인하여 인장 시 카본전극의 전자구조가 변화하여 전자를 효과적으로 전도하게 하였다. 결론적으로 그래핀 첨가를 통해 카본블랙 복합체에 신축성 전극으로의 가능성을 부여하였다.

Precise pressure sensor using piezoelectric nanocomposites integrated directly in organic field-effect transistors

  • Tien, Nguyen Thanh;Trung, Tran Quang;Seol, Young-Gug;Lee, Nae-Eung
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.500-500
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    • 2011
  • With recent advances in flexible and stretchable electronics, the development of physically responsive field-effect transistors (physi-FETs) that are easily integrated with transformable substrates may enable the omnipresence of physical sensing devices in electronic gadgets. However, physical stimuli typically induce whole sensing physi-FET devices under global influences that also cause changes in the parameters of FET transducers, such as channel mobility and dielectric capacitance that prevent proper interpretations of response in sensing materials. Extended-gate structures with isolated stimuli have been used recently in physi-FETs to demonstrate performances of sensing materials only. However, such approaches are limited to prototype researches since isolated stimuli rarely occur in real-life applications. In this report, we theoretically and experimentally demonstrated that integrating piezoelectric nanocomposites directly into flexible organic FETs (OFETs) as gate dielectrics provides a general research direction to physi-FETs with a simple device structure and the capability of precisely investigating functional materials. Measurements with static stimulations, which cannot be performed in conventional systems, exhibited giant-positive d33 values of nanocomposites of barium titanate (BT) NPs and poly (vinylidene fluoride-trifluoroethylene) (P(VDF-TrFE)).

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Synthesis and characterization of amorphous NiWO4 nanostructures

  • Nagaraju, Goli;Cha, Sung Min;Yu, Jae Su
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.392.1-392.1
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    • 2016
  • Nowadays, research interest in developing the wearable devices are growing remarkably. Portable consumer electronic systems are becoming lightweight, flexible and even wearable. In fact, wearable electronics require energy storage device with thin, foldable, stretchable and conformable properties. Accordingly, developing the flexible energy storage devices with desirable abilities has become the main focus of research area. Among various energy storage devices, supercapacitors have been considered as an attractive next generation energy storage device owing to their advantageous properties of high power density, rapid charge-discharge rate, long-cycle life and high safety. The energy being stored in pseudocapacitors is relatively higher compared to the electrochemical double-layer capacitors, which is due to the continuous redox reactions generated in the electrode materials of pseudocapacitors. Generally, transition metal oxides/hydroxide (such as $Co_3O_4$, $Ni(OH)_2$, $NiFe_2O_4$, $MnO_2$, $CoWO_4$, $NiWO_4$, etc.) with controlled nanostructures (NSs) are used as electrode materials to improve energy storage properties in pseudocapacitors. Therefore, different growth methods have been used to synthesize these NSs. Of various growth methods, electrochemical deposition is considered to be a simple and low-cost method to facilely integrate the various NSs on conductive electrodes. Herein, we synthesized amorphous $NiWO_4$ NSs on cost-effective conductive textiles by a facile electrochemical deposition. The as-grown amorphous $NiWO_4$ NSs served as a flexible and efficient electrode for energy storage applications.

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