• Title/Summary/Keyword: Flexible film

Search Result 885, Processing Time 0.035 seconds

High Performance Flexible Inorganic Electronic Systems

  • Park, Gwi-Il;Lee, Geon-Jae
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2012.08a
    • /
    • pp.115-116
    • /
    • 2012
  • The demand for flexible electronic systems such as wearable computers, E-paper, and flexible displays has increased due to their advantages of excellent portability, conformal contact with curved surfaces, light weight, and human friendly interfaces over present rigid electronic systems. This seminar introduces three recent progresses that can extend the application of high performance flexible inorganic electronics. The first part of this seminar will introduce a RRAM with a one transistor-one memristor (1T-1M) arrays on flexible substrates. Flexible memory is an essential part of electronics for data processing, storage, and radio frequency (RF) communication and thus a key element to realize such flexible electronic systems. Although several emerging memory technologies, including resistive switching memory, have been proposed, the cell-to-cell interference issue has to be overcome for flexible and high performance nonvolatile memory applications. The cell-to-cell interference between neighbouring memory cells occurs due to leakage current paths through adjacent low resistance state cells and induces not only unnecessary power consumption but also a misreading problem, a fatal obstacle in memory operation. To fabricate a fully functional flexible memory and prevent these unwanted effects, we integrated high performance flexible single crystal silicon transistors with an amorphous titanium oxide (a-TiO2) based memristor to control the logic state of memory. The $8{\times}8$ NOR type 1T-1M RRAM demonstrated the first random access memory operation on flexible substrates by controlling each memory unit cell independently. The second part of the seminar will discuss the flexible GaN LED on LCP substrates for implantable biosensor. Inorganic III-V light emitting diodes (LEDs) have superior characteristics, such as long-term stability, high efficiency, and strong brightness compared to conventional incandescent lamps and OLED. However, due to the brittle property of bulk inorganic semiconductor materials, III-V LED limits its applications in the field of high performance flexible electronics. This seminar introduces the first flexible and implantable GaN LED on plastic substrates that is transferred from bulk GaN on Si substrates. The superb properties of the flexible GaN thin film in terms of its wide band gap and high efficiency enable the dramatic extension of not only consumer electronic applications but also the biosensing scale. The flexible white LEDs are demonstrated for the feasibility of using a white light source for future flexible BLU devices. Finally a water-resist and a biocompatible PTFE-coated flexible LED biosensor can detect PSA at a detection limit of 1 ng/mL. These results show that the nitride-based flexible LED can be used as the future flexible display technology and a type of implantable LED biosensor for a therapy tool. The final part of this seminar will introduce a highly efficient and printable BaTiO3 thin film nanogenerator on plastic substrates. Energy harvesting technologies converting external biomechanical energy sources (such as heart beat, blood flow, muscle stretching and animal movements) into electrical energy is recently a highly demanding issue in the materials science community. Herein, we describe procedure suitable for generating and printing a lead-free microstructured BaTiO3 thin film nanogenerator on plastic substrates to overcome limitations appeared in conventional flexible ferroelectric devices. Flexible BaTiO3 thin film nanogenerator was fabricated and the piezoelectric properties and mechanically stability of ferroelectric devices were characterized. From the results, we demonstrate the highly efficient and stable performance of BaTiO3 thin film nanogenerator.

  • PDF

Experiment Onmodal Balancing of a Flexible Rotor Supported on Fluid Film Bearings (유막 베어링에 지지된 탄성회전체의 모드 밸런싱 실험)

  • 정시영;이동환;김영철;제양규
    • Journal of KSNVE
    • /
    • v.5 no.2
    • /
    • pp.235-246
    • /
    • 1995
  • Experiment on the modal balancing of a flexible rotor supported on two kinds of fluid film bearings is performed to verify the modal balancing theory. The fluid film bearings are a tilting pad bearing and a two axial grooved journal bearing. One is inherently stable, but the other is not. The experimental result shows that the modal balancing method is effective for balancing of a high speed flexible rotor system. Besides, the critical speeds and mode shapes measured experimentally are in good coincidence with the results of rotordynamic analysis. Oil whip, which is the instability phenomenon due to fluid film force, is also observed during the experiment.

  • PDF

전자빔 조사에 따른 Flexible ITO Film의 특성 향상에 대한 연구

  • Hwang, Jin-Ye;Nam, Sang-Hun;Kim, Yong-Hwan;Song, Gi-Mun
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2013.02a
    • /
    • pp.581-581
    • /
    • 2013
  • ITO (Indium Tin oxide)는 비화학 양론적 조성을 띄는 n-type 반도체 특성이 있으며 가시광 영역(380~780 nm)의 파장에 대한 높은 광 투과도(>85%)를 가지며 비교적 높은 전도도(${\sim}10^4/{\Omega}-cm$)를 갖고 화학적 안정성이 우수하여 투명전극 박막으로 많이 사용되어왔다. 또한, PET film은 전기절연성, 내후성이 우수하고, 85%의 투과율을 보이는 특성에 의하여 Flexible display의 기판으로 많은 연구가 진행되고 있다. 이와 같은 PET film에 ITO를 증착하여 광 투과도와 전기전도도가 우수한 Flexible display의 투명전극으로 많은 연구 개발이 이루어지고 있다. Flexible ITO 박막의 특성을 향상하기 위해서는 $200^{\circ}C$ 이상의 열처리 공정이 필요하지만, PET는 약 $200^{\circ}C$ 이상에서 열 변형이 일어나므로 열처리 공정이 어렵고 이러한 문제점을 해결하기 위해 ITO/PET film에서 PET film의 변형 없이 ITO 박막의 표면에 전자빔 형태로 조사하여 박막의 물성을 개선하는 연구가 진행되고 있다 [1]. 본 연구에서는 ITO/$SiO_2$가 증착된 PET film에 전자빔을 조사하여 ITO 박막의 물성 변화를 관찰하였고, 전자빔 에너지 변화 및 전자빔 조사 시간에 따라 ITO film의 전기적, 광학적 특성 변화를 분석하였다. 구조적 특성은 XRD (X-ray diffraction), 전기적 특성은 4-point probe, Hall measurement를 이용하였으며, 가시광영역의 광 투과도는 UV-Vis spectrometer로 측정하였다. 전기 광학적 특성 변화는 Figure of Merit (FOM) 수치로 분석하였다. 이 실험으로 PET film에 직접적인 열을 가하지 않으면서 ITO 박막의 표면에 전자빔을 조사 하여, 박막의 전기전도도 및 광 투과율, 결정성 향상 등을 관찰할 수 있었다.

  • PDF

High-Performance and Fabrication of Graphene-based Flexible Supercapacitor

  • Ra, Eun Ju;Han, Jae Hee;Kim, Kiwoong;Lee, Sun Suk;Kim, Tae-Ho;An, Ki-Seok;Lim, Jongsun
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2014.02a
    • /
    • pp.442-442
    • /
    • 2014
  • Although electrochemical capacitors (ECs), also known as supercapacitors or ultracapacitors, is one of the most promising energy-storage devices because of its high power density, super-high cycle life, and safe operation. We herein report a synthesis of graphene-based flexible films by kneading method. Thus, a device can be readily made by sandwiching a polymer membrane included ionic liquid electrolytes between two identical graphene-based flexible films. Devices made with these electrodes exhibit ultrahigh energy density values while maintaining the high power density and excellent cycle stability of ECs. Moreover, these ECs maintain excellent electrochemical attributes under high mechanical stress and thus hold promise for high-energy, flexible electronics.

  • PDF

Transfer Methods of Inorganic Thin Film Materials for Heterogeneously- Integration Flexible Semiconductor System (이종 집적 유연 반도체 시스템 구현을 위한 무기물 박막소재의 전사 방법)

  • Gyeong Hyeon Ju;Jeong Hyeon Kim;Sang Yoon Park;Kang Hyeon Kim;Han Eol Lee
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
    • /
    • v.37 no.3
    • /
    • pp.241-252
    • /
    • 2024
  • With the recent development of emerging technologies, information acquisition and delivery between users has been actively conducted, and inorganic thin film transfer technology that effectively transfers various materials and devices is being studied to develop flexible electronic devices accordingly. This is aimed at innovative structural changes and functional improvement of electronic devices in the era of the Internet of Things (IoT). In particular, advanced technologies such as microLEDs are used to realize high-resolution flexible displays, and the possibility of heterogeneous integrated technologies can be presented by precisely transferring materials to substrates through various transfer process. This paper introduced physical, chemical, and self-assembly transfer methods based on inorganic thin film materials to implement heterogeneous integrated flexible semiconductor systems and introduces the results of application studies of semiconductor devices obtained through different transfer technologies. These studies are expected to bring about innovative changes in the field of smart devices, medical technology, and user interfaces in the future.

Towards Super Thin OLED TVs: Barix Thin Film Encapsulation of Glass and Flexible Displays

  • Xi, Chu;Lin, Steven;Rosenblum, Marty;Visser, R.J.
    • 한국정보디스플레이학회:학술대회논문집
    • /
    • 2008.10a
    • /
    • pp.1634-1637
    • /
    • 2008
  • We will discuss encapsulation of OLEDs on both flexible and rigid glass substrates. Accelerated testing at 6CC/90RH and 85C/85RH is compared and acceleration factors for OLED and Calcium test samples are discussed.We have tested the stability and performance of our barrier coating to much higher temperatures: up to 140 C. Water Vapor Transmission rates at temperatures from 60 to 140 C are presented. Rates and methods for low cost manufacturing on a large scale are analysed.

  • PDF

Formation of Buffer Layer on Mica for Application to Flexible Thin Film Transistors

  • Oh, Joon-Seok;Lee, Seung-Ryul;Lee, Jin-Ho;Ahn, Byung-Tae
    • 한국정보디스플레이학회:학술대회논문집
    • /
    • 2007.08a
    • /
    • pp.749-751
    • /
    • 2007
  • A buffer layer consisting of $SiO_x/Ta/Ti$ has been developed in order to overcome the adhesion and stress problems between poly-Si film and mica. Polycrystalline silicon thin film transistor was successfully fabricated on the mica and transferred to a flexible plastic substrate.

  • PDF

Direct Fabrication of a-Si:H Thin Film Transistor Arrays on Flexible Substrates: Critical Challenges and Enabling Solutions

  • O'Rourke, Shawn M.;Loy, Douglas E.;Moyer, Curt;Bawolek, Edward J.;Ageno, Scott K.;O'Brien, Barry P.;Marrs, Michael;Bottesch, Dirk;Dailey, Jeff;Naujokaitis, Rob;Kaminski, Jann P.;Allee, David R.;Venugopal, Sameer M.;Haq, Jesmin;Colaneri, Nicholas;Raupp, Gregory B.
    • 한국정보디스플레이학회:학술대회논문집
    • /
    • 2008.10a
    • /
    • pp.1459-1462
    • /
    • 2008
  • In this paper we describe solutions to address critical challenges in direct fabrication of amorphous silicon thin film transistor (TFTs) arrays for active matrix flexible displays. For all flexible substrates a manufacturable handling protocol in automated display-scale equipment is required. For metal foil substrates the principal challenges are planarization and electrical isolation, and management of stress (CTE mismatch) during TFT fabrication. For plastic substrates the principal challenge is dimensional instability management.

  • PDF

Highly Efficient, Flexible Thin Film Nanogenerator

  • Lee, Geon-Jae
    • Proceedings of the Materials Research Society of Korea Conference
    • /
    • 2011.05a
    • /
    • pp.10.1-10.1
    • /
    • 2011
  • Energy harvesting technologies converting external sources (such as thermal energy, vibration and mechanical energy from the nature sources of wind, waves or animal movements) into electrical energy is recently a highly demanding issue in the materials science community for making sustainable green environments. In particular, fabrication of usable nanogenerator attract the attention of many researchers because it can scavenge even the biomechanical energy inside the human body (such as heart beat, blood flow, muscle stretching, or eye blinking) by converging harvesting technology with implantable bio-devices. Herein, we describe procedure suitable for generating and printing a lead-free microstructured $BaTiO_3$ thin film nanogenerator on plastic substrates to overcome limitations appeared in conventional flexible ferroelectric devices. Flexible $BaTiO_3$ thin film nanogenerator was fabricated and the piezoelectric properties and mechanically stability of ferroelectric devices were characterized. From the results, we demonstrate the highly efficient and stable performance of $BaTiO_3$ thin film nanogenerator and the integration of bio-eco-compatible ferroelectric materials may enable innovative opportunities for artificial skin and energy harvesting system.

  • PDF