• Title/Summary/Keyword: stretchable

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Stretchable Electrode using Silver Nanowire (은 나노와이어를 사용한 스트레처블 전극 연구)

  • Choe, Ju-Yeon;Jeong, Seong-Hun;Kim, Hyo-Jeong;Kim, Do-Geun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2018.06a
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    • pp.49.1-49.1
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    • 2018
  • 신축성 디바이스는 다양한 디자인을 적용할 수 있고 형태에 대한 제약을 최소화 할 수 있어 수요가 점점 증가하고 있다. 신축성 디바이스의 핵심인 신축 전극에 대한 연구가 활발히 진행되고 있으며, 물결무늬나 코일 형태의 금속 전극, 탄소 소재를 사용한 전극, 하이드로젤 전극 등이 연구되었다. 하지만 이러한 방법들은 공정과정이 복잡하거나, 변형시 전기적 저항 변화가 크다. 또한 단일 소재를 활용한 신축성 전극은 물질적인 한계로 인하여 신축성을 향상시키는 데 한계가 있다. 신축 전극에 많이 사용되는 은 나노와이어는 용액에 분산되어 있어 공정이 쉽고, 좋은 전기적 특성을 가지는 소재이다. 은 나노와이어는 네트워크 형태로 얽혀있어 신축성 있는 배선의 재료로써 좋은 역할을 할 것으로 기대하지만, 은 나노 와이어만 사용하여 제작한 배선은 늘렸을 때 나노와이어들 간의 접촉 불량으로 저항이 증가한다. 이를 보완하기 위해 본 연구에서는 배선을 형성하고 있는 금속 나노소재 간 전기적 접촉을 향상시키기 위해 은 나노와이어와 은 나노입자를 섞어 하이브리드 잉크를 제작하여 전극을 형성했다. 하이브리드 잉크로 제작한 전극을 신축성 있는 고분자에 함입하여 신축률에 따른 저항을 평가했다. $175^{\circ}C$에서 열처리한 전극을 5% 늘렸을 때, 단일 소재인 은 나노와이어나 은 나노입자만을 사용한 경우는 전극이 끊어지거나 저항이 175%나 증가했지만, 하이브리드 잉크를 사용했을 때는 16.5% 증가했다.

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Investigation of Preference for Outdoor Jacket and Design Prototype (아웃도어 재킷의 선호실태조사 및 디자인 프로토타입)

  • Han, Eun-Ju;Lee, Jeong-Ran
    • Journal of Fashion Business
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    • v.15 no.4
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    • pp.167-181
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    • 2011
  • This study had researched purchase trend and preference of jacket design in order to develop a prototype of an outdoor wear jacket that can be worn for a light outdoor activity targeting middle-aged men and women. An outdoor wear was purchased mostly in a permanent discount store and functionality such as activity and material was considered as important in addition to design. There was difference in ages for the jacket style, but in general, people preferred a wind protection jacket and men preferred black colors and women preferred red colors. For the design of jacket, both men and women had preferred a jacket that has moderate fitness with detachable hat and a zipper, and it was applied to the prototype. The jacket had applied different color in the armhole line that is connected to sleeve in order to make waist look slimmer and stretchable material was used to improve functionality in the armpit part.

A Review of the Changes of Fastening Types in Western Costume (서양복(西洋服) 파스닝(fastening)의 변천(變遷)에 관(關)한 고찰(考察))

  • Bae, Soo-Jeong
    • Journal of Fashion Business
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    • v.3 no.4
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    • pp.19-30
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    • 1999
  • The purpose of this thesis is to overview the periodical changes of the fastenings, from the pins and buttons in ancient age to the velcro in these days, and to study the relationships of these various fastenings to the costume types, and also to research how it is applied to the latest fashion. The fastening is closely related to the costume types, being various in its form, like pins, fibula, brooches, buttons, lacing, points, hooks & eyes, press studs, zipper and velcro. It is clear from the fact that the fastenings have developed remarkably since 13th century when the costume became tightly fitting to the body, while the fastenings had been very simple, like buttons or fibula, for so long time from the ancient time to the 12th century. The end of fastening's development is to be fitting to the body and to make it easy to take on or off the costumes by use of it. In '99 S/S, '99-00 A/W $pr{\hat{e}t}-{\grave{a}}$-porter collections, ornamental fastening was more emphasized then practical one, probably due to the development of more stretchable fabric.

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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
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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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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Structural Analysis and Characterization of PZT Fiber Fabricated by Electrospinning (Electrospinning법으로 제조된 PZT 섬유의 구조분석 및 특성평가)

  • Park, Chun Kil;Yun, Ji Sun;Jeong, Young Hun;Nam, Joong-Hee;Cho, Jeong Ho;Paik, Jong-Hoo;Jeong, Dae Young
    • Journal of the Korean Ceramic Society
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    • v.50 no.6
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    • pp.466-469
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    • 2013
  • Currently, piezoelectric ceramics are being applied in various fields, such as ultrasonic sensors, vibration devices, sound filters, and various energy conversion devices. Flexible piezoelectric ceramics are widely studied in an effort to mitigate the disadvantages of their brittle and inductile properties. Structural damage to piezoelectric fibers is much less than that to thin films when piezoelectric fibers are twisted or bent. Therefore, stretchable devices can be fabricated if piezoelectric fibers are obtained using an elongated substrate. In this study, sintering processes of PZT ($Pb(Zr_{0.53}Ti_{0.47})O_3$) fibers prepared by electrospinning were optimized through the TGA and XRD analyses. The crystal structure and microstructure of the piezoelectric fibers were investigated by XRD, FE-SEM and TEM.

Study on the Electrochemical Characteristics of a EGaIn Liquid Metal Electrode for Supercapacitor Applications (수퍼커패시터 응용을 위한 EGaIn 액체 금속 전극의 전기화학 특성 연구)

  • SO, JU-HEE;KOO, HYUNG-JUN
    • Transactions of the Korean hydrogen and new energy society
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    • v.27 no.2
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    • pp.176-181
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    • 2016
  • Recent years, supercapacitors have been attracting a growing attention as an efficient energy storage, due to their long-lifetime, device reliability, simple device structure and operation mechanism and, most importantly, high power density. Along with the increasing interest in flexible/stretchable electronics, the supercapacitors with compatible mechanical properties have been also required. A eutectic gallium-indium (EGaIn) liquid metal could be a strong candidate as a soft electrode material of the supercapacitors because of its insulating surface oxide layer for electric double layer formation. Here, we report the electrochemical study on the charging/reaction process at the interface of EGaIn liquid metal and electrolyte. Numerical fitting of the charging current curves provides the capacitance of EGaIn/insulating layer/electrolyte (${\sim}38F/m^2$). This value is two orders of magnitude higher than a capacitance of a general metal electrode/electrolyte interface.

Development of Stretchable PZT/PDMS Nanocomposite Film with CNT Electrode

  • Yun, Ji Sun;Jeong, Young Hun;Nam, Joong-Hee;Cho, Jeong-Ho;Paik, Jong-Hoo
    • Journal of Sensor Science and Technology
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    • v.22 no.6
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    • pp.400-403
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    • 2013
  • The piezoelectric composite film of ferroelectric PZT ceramic ($PbZr_xTi_{1-x}O_3$) and polymer (PDMS, Polydimethylsiloxane) was prepared to improve the flexibility of piezoelectric material. The bar coating method was applied to fabricate flexible nanocomposite film with large surface area by low cost process. In the case of using metal electrode on the composite film, although there is no problem by bending process, the electrode is usually broken away from the film by stretching process. However, the well-attached, flexible CNT electrode on PZT/PDMS film improved flexibility, especially stretchability. PZT particles was usually settled down into polymer matrix due to gravity of the weighty particle, so to improve the dispersion of PZT powder in polymer matrix, small amount of additives (CNT powder, Carbon nanotube powder) was physically mixed with the matrix. By stretching the film, an output voltage of PZT(70 wt%)/PDMS with CNT (0.5 wt%) was measured.

Electrical Characteristics of Organic Ferroelectric Memory Devices Fabricated on Elastomeric Substrate (엘라스토머 기판 상에 제작한 유기 강유전체 메모리 소자의 전기적 특성)

  • Jung, Soon-Won;Ryu, Bong-Jo;Koo, Kyung-Wan
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.67 no.6
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    • pp.799-803
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    • 2018
  • We demonstrated memory thin-film transistors (MTFTs) with organic ferroelectric polymer poly(vinylidene fluoride-co-trifluoroethylene) and an amorphous oxide semiconducting indium gallium zinc oxide channel on the elastomeric substrate. The dielectric constant for the P(VDF-TrFE) thin film prepared on the elastomeric substrate was calculated to be 10 at a high frequency of 1 MHz. The voltage-dependent capacitance variations showed typical butterfly-shaped hysteresis behaviors owing to the polarization reversal in the film. The carrier mobility and memory on/off ratio of the MTFTs showed $15cm^2V^{-1}s^{-1}$ and $10^6$, respectively. This result indicates that the P(VDF-TrFE) film prepared on the elastomeric substrate exhibits ferroelectric natures. The fabricated MTFTs exhibited sufficiently encouraging device characteristics even on the elastomeric substrate to realize mechanically stretchable nonvolatile memory devices.

Oligomer Model of PB1 Domain of p62/SQSTM1 Based on Crystal Structure of Homo-Dimer and Calculation of Helical Characteristics

  • Lim, Dahwan;Lee, Hye Seon;Ku, Bonsu;Shin, Ho-Chul;Kim, Seung Jun
    • Molecules and Cells
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    • v.42 no.10
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    • pp.729-738
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    • 2019
  • Autophagy is an important process for protein recycling. Oligomerization of p62/SQSTM1 is an essential step in this process and is achieved in two steps. Phox and Bem1p (PB1) domains can oligomerize through both basic and acidic surfaces in each molecule. The ZZ-type zinc finger (ZZ) domain binds to target proteins and promotes higher-oligomerization of p62. This mechanism is an important step in routing target proteins to the autophagosome. Here, we determined the crystal structure of the PB1 homo-dimer and modeled the p62 PB1 oligomers. These oligomer models were represented by a cylindrical helix and were compared with the previously determined electron microscopic map of a PB1 oligomer. To accurately compare, we mathematically calculated the lead length and radius of the helical oligomers. Our PB1 oligomer model fits the electron microscopy map and is both bendable and stretchable as a flexible helical filament.

Soft Robots Based on Magnetic Actuator (자성 액추에이터 기반의 소프트 로봇)

  • Nor, Gyu-Lyeong;Choi, Moon Kee
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.34 no.6
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    • pp.401-415
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    • 2021
  • Soft robots are promising devices for applications in drug delivery, sensing, and manufacturing. Traditional hard robotics are manufactured with rigid materials and their degrees of motion are constrained by the orientation of the joints. In contrast to rigid counterpart, soft robotics, employing soft and stretchable materials that easily deforms in shape, can realize complex motions (i.e., locomotion, swimming, and grappling) with a simple structure, and easily adapt to dynamic environment. Among them, the magnetic actuators exhibit unique characteristics such as rapid and accurate motion control, biocompatibility, and facile remote controllability, which make them promising candidates for the next-generation soft robots. Especially, the magnetic actuators instantly response to the stimuli, and show no-hysteresis during the recovery process, essential for continuous motion control. Here, we present the state-of-the-art fabrication process of magnetically controllable nano-/micro-composites, magnetically aligning process of the composites, and 1-dimensional/multi-dimensional multimodal motion control for the nextgeneration soft actuators.