• 제목/요약/키워드: 전기전도성 텍스타일

검색결과 10건 처리시간 0.017초

PEDOT:PSS로 코팅된 PLA 나노섬유 웹의 전기전도성 텍스타일 제조 (Fabrication of Electroconductive Textiles Based PLA Nanofiber Web Coated with PEDOT:PSS)

  • 신성은;차수진;조길수
    • 한국의류산업학회지
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    • 제22권2호
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    • pp.233-239
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    • 2020
  • We proposed a simple process of fabricating electroconductive textiles by coating conductive polymer PEDOT:PSS (Poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate)) on biocompatible PLA (Poly Lactic Acid) nanofiber web for application to smart healthcare. Electroconductive textiles were obtained by a drop-coating process using different amounts of PEDOT:PSS solutions., DMSO (dimethyl sulfoxide) was then used as an additive in the post-treatment process to improve conductivity. The surface morphology of the specimens was observed by FE-SEM. The chemical structures of the specimens were characterized using FTIR. The electrical properties (linear and sheet resistance) of the specimens were measured. The effect of the bending angles on the electrical properties was also investigated to confirm their applicability as wearable smart textiles. FE-SEM and FTIR analysis confirmed that the deposition of PEDOT:PSS on the PLA nanofiber web surface was successful. The conductivity of the PEDOT:PSS/PLA nanofiber web was enhanced up to 1.5 ml with an increasing amount of PEDOT:PSS solutions, but there was no significant difference at 2.0 ml. The optimum condition of PEDOT:PSS deposition was established to 1.5 ml. Even when the specimen coated with 1.5 ml was bent every 30°, the change in the electrical resistance values was still low within 3.7 Ω. It confirmed that stable electrical performance was maintained and proved the applicability as a flexible textile sensor.

심전도용 전극으로의 적용을 위한 폴리피롤 코팅 PVA 나노웹 전기전도성 텍스타일의 제조 (Production of Polypyrrole Coated PVA Nanoweb Electroconductive Textiles for Application to ECG Electrode)

  • 김재현;양혁주;조길수
    • 한국의류산업학회지
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    • 제21권3호
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    • pp.363-369
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    • 2019
  • This study developed electroconductive textiles by coating polypyrrole to PET nonwoven-based Polyvinyl Alcohol (PVA) nanoweb made by electrospinning and applying the developed electrotextiles as ECG Electrodes. To find the optimum coating conditions for high electrical conductivity, the ratios of 2.6-Naphthalenedisulfonic acid with Disodium Salt (NDS) vs Ammonium Persulfate (APS) as an oxidant and a doping agent in the solution were changed from 3:7 to 7:3; the immersion time of the specimen in the solution was 1 hour. PVA nanowebs coated with polypyrrole under various conditions were filmed with FE-SEM. FT-IR analysis was also performed to examine the presence of polypyrrole nanoparticles in the PVA nanoweb. The electrical resistance of the treated specimens were measured with a Multimeter. Consequently, the PVA Nano Web was undamaged even after heat treatment that allowed for coating. Uniform polypyrrole nanoparticles then formed on the surface of the PVA nanoweb after coating. The measured electrical resistance was shown to be at least $12K{\Omega}/{\Box }$ from a maximum of $3,456K{\Omega}/{\Box }$. The proper amount of NDS content had a positive effect on the conductivity improvement of electroconductive textiles; in addition, the highest electrical conductivity was achieved with a ratio of 3:7 between NDS and APS.

텍스타일 스트레인 센서에 마이크로 니들을 이용한 전도성입자 침투력 향상 (Enhancement of Penetration by Using Mechenical Micro Needle in Textile Strain Sensor)

  • 윤하영;김원진;김주용
    • 감성과학
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    • 제25권4호
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    • pp.45-52
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    • 2022
  • 최근 신체활동에 대해 인식하는 센서와 그 제품군에 대한 관심 및 수요가 증가하고 있다. 특히 유연하고 연신이 가능하며 사용자의 생체신호를 감지할 수 있는 웨어러블 소재에 대한 개발이 주목받고 있다. 본 연구에서는 소수성 소재에 Micro Needle을 통해 미세 구멍을 형성한 후 SWCNT 분산용액에 대한 함침 효율을 향상시키는 실험을 수행하였다. 본 연구에서는 구멍을 뚫지 않은 소재를 대조(control) 군으로 함침을 진행, 비교 분석하였다. 센서의 전기전도도를 평가하기 위해 Strain UTM (Universal Testing Machine, UTM, Dacell)과 저항을 측정하는 멀티미터(Keysight)를 이용해 센서를 인장했을 때의 센서의 전기전도도를 측정하였다. 또한 센서의 내구성을 평가하기 위해 시료별로 500회 인장을 진행한 후에 센서의 전기전도도를 평가하였다. 그 결과 Needling을 한 센서의 전기전도성이 Needling을 하지 않은 센서에 비해 최소 16배 이상 뛰어남을 알 수 있었다. 또한 센서의 초기 저항에 비해 게이지 팩터도 우수해 센서로서 좋은 성능을 확인할 수 있었다. 이를 통해 친수성 소재에 비해 물성이 뛰어나지만, 높은 표면장력 때문에 함침 효율이 좋지 않았던 소수성 소재의 함침 효율을 높여 신체의 움직임을 더 효과적으로 감지하고 내구성과 활용 가능성이 뛰어난 센서를 제작했다.

PU 나노웹 기반 전기전도성 텍스타일의 개발 및 스마트의류용 신호전달선으로의 적용 가능성 탐색 (Development of PU Nanoweb Based Electroconductive Textiles and Exploration of Applicability as a Transmission Line for Smart Clothing)

  • 장은지;조길수
    • 한국의류산업학회지
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    • 제20권1호
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    • pp.101-107
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    • 2018
  • The purpose of this study is to develop the electroconductive textiles based on polyurethane(PU) nanoweb and to explore that it is applicable to smart clothing. The electroconductive textiles developed by coating 2.0 wt% aqueous dispersed non-oxidized graphene paste on the surface of PU nanoweb. The fabricated electroconductive nanoweb was applied as a transmission line to connect the LED lamp, and the brightness of the LED lamp was measured to confirm its performance. The nanoweb transmission line was fixed by two methods(seam sealing tape, embroidering) to connect the LED lamp and AA batteries. The results as follows, the brightness of the LED lamp fixed with seam sealing tape was about 82 lux, and which fixed with embroidering was about 57 lux. It represents that the nanoweb transmission line which fixed with the seam sealing tape has better electrical signal transmitting because the lux value higher than the one fixed by embroidering. In order to compare the performance of the nanoweb transmission line and the metal wire, we connected the LED lamp with copper wire. The brightness of copper wire connected LED lamp was about 193 lux. Although the electrical signal strength of the nanoweb transmission line was weaker than the copper wire, it was reachable to operate LED lamp. The results of this study will provide a basic data to develop the textile based electronic devices, and conducting wire for smart clothing.

프로그래밍 노이즈 필터링 방법에 의한 저항 방식 E-밴드 텍스타일 스트레인 센서 신호해석 (Resistive E-band Textile Strain Sensor Signal Processing and Analysis Using Programming Noise Filtering Methods)

  • 김승전;김상운;김주용
    • 감성과학
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    • 제25권1호
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    • pp.67-78
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    • 2022
  • ICT 산업의 글로벌 시장을 선점할 수 있는 다음 세대의 개발이 필요한 상황이 일어남에 따라 웨어러블 디바이스의 생체 신호 모니터링에 대한 관심이 크게 증가하고 있다. 이에 따라 본 연구에서는 히스테리시스가 적은 E-Band를 사용하여 단일벽 탄소나노튜브(SWCNT) 분산 용액에 함침 공정을 통해서 저항형 직물 인장 센서(Resistive textile strain sensor)를 개발하였다. 전기전도성이 부여된 e-band에 저항 신호를 측정하기 위해 만능재료시험기(UTM)과 Microcontroller unit인 아두이노와 LCR 미터를 이용해서 인장의 변화에 따른 저항 변화를 측정하였다. 원단으로 이루어진 텍스타일 스트레인 센서의 특성상 발생하는 다양한 노이즈들을 효과적으로 처리하기 위하여 신호처리 과정(Signal processing)의 노이즈 필터링의 이동평균 필터, 사비츠키-골레이 필터, 중앙값 필터들을 사용하여 센서의 필터 성능을 평가하였다. 그 결과 이동평균 필터의 필터링 결과의 신뢰도가 최소 89.82%, 최대 97.87%으로 이동평균 필터링이 텍스타일 스트레인 센서의 노이즈 필터링 방식으로 적합하였다.

스크린 프린팅을 이용한 PEDOT:PSS/AgNW 기반 전기전도성 스마트 텍스타일의 제조 및 신호전달선으로의 적용 (Fabrication of PEDOT:PSS/AgNW-based Electrically Conductive Smart Textiles Using the Screen Printing Method and its Application to Signal Transmission Lines)

  • 강희은;이유진;조길수
    • 한국의류산업학회지
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    • 제23권4호
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    • pp.527-535
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    • 2021
  • In this study, electroconductive textiles were developed by screen-printing technology using a complex solution of PEDOT:PSS/AgNW on a polylactic acid nanofiber web. A performance evaluation was then conducted to utilize this electroconductive textile as a signal transmission line. To obtain highly conductive electroconductive textiles, this study sought to determine the optimal mixing ratio of PEDOT:PSS/AgNW. Sheet resistance was measured to evaluate the electrical properties of electroconductive textiles, Finite element-scanning electron microscopy images were then used to examine surface properties, and Fourier transform-infrared analysis was performed to evaluate chemical properties. The signal waveform characteristics of the electroconductive textile were observed using a signal generator and an oscilloscope. Radio-frequency characteristics were then evaluated to confirm frequency range, and bending tests were conducted to evaluate durability. The signal transmission lines produced in this study had a sheet resistance value of 3.30 ?/sq, and signal transmission performance was evaluated to observe that the input value of the voltage was nearly identical to the output value. In addition, S21 analysis confirmed that it was available in the frequency domain up to 35 MHz. The performances of the transmission lines were maintained after 100, 200, 500, and 1,000 repeated bending tests, and sufficient durability was confirmed.

PEDOT:PSS/그래핀 코팅된 폴리아미드/폴리우레탄 혼방 편직물 기반의 전기전도성 텍스타일 제조 (Fabrication of Electroconductive Textiles Based Polyamide/Polyurethan Knitted Fabric Coated with PEDOT:PSS/Non-oxidized Graphene)

  • ;조길수
    • 한국의류산업학회지
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    • 제24권1호
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    • pp.146-155
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    • 2022
  • We proposed a simple process of creating electroconductive textiles by using PEDOT:PSS(Poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate))/non-oxidized graphene to coat polyamide or polyurethane knitted fabric for smart healthcare purposes. Electroconductive textiles were obtained through a coating process that used different amounts of PEDOT:PSS/non-oxidized graphene solutions on polyamide/polyurethane knitted fabric. Subsequently, the surface, electrical, chemical, weight change, and elongation properties were evaluated according to the ratio of PEDOT:PSS/non-oxidized graphene composite(1.3 wt%:1.0 wt%; 1.3 wt%:0.6 wt%; 1.3 wt%:0.3 wt%) and the number of applications(once, twice, or thrice). The specimens' surface morphology was observed by FE-SEM. Further, their chemical structures were characterized using FTIR and Raman spectroscopy. The electrical properties measurement (sheet resistance) of the specimens, which was conducted by four-point contacts, shows the increase in conductivity with non-oxidized graphene and the number of applications in the composite system. Moreover, a test of the fabrics' mechanical properties shows that PEDOT:PSS/non-oxidized graphene-treated fabrics exhibited less elongation and better ability to recover their original length than untreated samples. Furthermore, the PEDOT:PSS/non-oxidized graphene polyamide/polyurethane knitted fabric was tested by performing tensile operations 1,000 times with a tensile strength of 20%; Consequently, sensors maintained a constant resistance without noticeable damage. This indicates that PEDOT:PSS/non-oxidized graphene strain sensors have sufficient durability and conductivity to be used as smart wearable devices.

그래핀 옥사이드의 에어로졸 분무열분해 공정을 통한 면직물의 전기전도성 및 물성 평가 (Application and Functionalization of Graphene Oxide on Cotton Fabric Via Aerosol Spray Pyrolysis)

  • 엄현지;조길수
    • 한국의류산업학회지
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    • 제24권1호
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    • pp.138-145
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    • 2022
  • Today, graphene loaded textiles are being considered promising smart clothing due to their high conductivity. In this study, we reported reduced graphene oxide(r-GO) deposited pure cotton fabrics fabricated with a colloidal solution of graphene(GO), using a one-step aerosol spray pyrolysis(ASP) process and their potential application on smart textiles. The ASP process is advantageous in that it is easily implementable and can be applied for continuous processing. Moreover, this process has never been applied to deposit r-GO on pure cotton fabric. The field emission-scanning microscopy (FE-SEM) observation, Fourier transform-infrared(FT-IR) analysis, Raman spectroscopy, X-ray diffraction(XRD) analysis, and ultraviolet transmittance(UVT) were used to evaluate material properties of the r-GO colloids. The resistance was also measured to evaluate the electrical conductivity of the specimens. The results revealed that the r-GO was successfully deposed on specimens, and the specimen with the highest electrical conductivity demonstrated an electrical resistance value of 2.27 kΩ/sq. Taken together, the results revealed that the ASP method demonstrated a high potential for effective deposition of r-GO on cotton fabric specimens and is a prospect for the development of conductive cotton-based smart clothing. Therefore, this study is also meaningful in that the ASP process can be newly applied by depositing r-GO on the pure cotton fabric.

생체신호 모니터링을 위한 CNT 기반 스페이서 직물 압력센서 구현 및 센싱 능력 평가 (Carbon-nanotube-based Spacer Fabric Pressure Sensors for Biological Signal Monitoring and the Evaluation of Sensing Capabilities)

  • 윤하영;김상운;김주용
    • 감성과학
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    • 제24권2호
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    • pp.65-74
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    • 2021
  • 최근 ICT 산업의 기술혁신이 일어남에 따라 생체신호을 인식하고 이에 대해 대응을 하기 위한 웨어러블 센싱 장치에 대한 수요가 증가하고 있다. 이에 따라 본 연구에서는 단순한 함침과정을 통해 3차원 스페이서(3D spacer)직물을 단일벽 탄소나노튜브(SWCNT)분산용액에 함침공정을 진행해 단일층(monolayer) 압전 저항형 압력 센서(piezoresistive pressure sensor)를 개발하였다. 3D 스페이서 원단에 전기전도성을 부여하기 위해 시료를 SWCNT 분산용액에 함침공정을 진행한 후 건조하는 과정을 거쳤다. 함침된 시료의 전기적 특성을 파악하기 위해 UTM (Universal Testing Machine)과 멀티미터를 이용해서 압력의 변화에 따른 저항의 변화를 측정하였다. 또한 센서의 전기적 특성의 변화를 관찰하기 위해 분산용액의 농도, 함침횟수, 시료의 두께를 다르게 해서 시료의 센서로서의 성능을 평가했다. 그 결과 wt0.1%의 SWCNT 분산용액에 함침공정을 2번 진행한 시료가 센서로서 가장 뛰어난 성능을 나타냄을 알 수 있었다. 두께별로는 7mm 두께의 센서가 가장 높은 GF를 보이고 13mm 두께의 센서가 작동범위가 가장 넓음을 확인했다. 본 연구를 통해 3D spacer 원단으로 제작한 스마트 텍스타일 센서는 공정과정이 단순하면서도 센서로서 성능이 뛰어나다는 장점을 확인할 수 있었다.

그래핀/폴리우레탄 나노웹 기반의 스트레인센서 제작 및 호흡측정 (Fabrication of Strain Sensor Based on Graphene/Polyurethane Nanoweb and Respiration Measurement)

  • 이효철;조현선;이유진;장은지;조길수
    • 감성과학
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    • 제22권1호
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    • pp.15-22
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    • 2019
  • 본 연구의 목적은 그래핀(Graphene)을 사용하여 폴리우레탄 나노웹(Polyurethane Nanoweb)에 전기전도성을 부여하고, 이를 이용하여 나노웹 기반의 스트레인센서(Strain Sensor)를 개발하는 것이다. 이를 위해 1% 그래핀 잉크를 폴리우레탄 나노웹에 푸어코팅(Pour-coating)한 후 PDMS(Polydimethylsiloxane)로 후처리를 하여 착용 가능한 스트레인센서를 완성하였다. 시료 표면에 전도성 물질이 잘 코팅되었는지 확인하기 위해 전계방사형 주사전자현미경(FE-SEM)를 이용하여 시료의 표면 특성을 평가하였다. 시료의 전기적 특성 평가는 멀티미터(Multimeter)를 사용하여 시료의 선저항(Linear Resistance)을 측정하고, 시료를 각각 5%, 10% 인장하였을 때 선저항이 어떻게 변하는지 비교하였다. 또한 시료의 성능을 평가하고자 게이지율(Gauge Factor)을 구하였다. 착의평가 실험은 완성된 스트레인센서를 더미에 착용시킨 후 MP150(Biopac system Inc., U.S.A.)과 Acqknowledge(ver. 4.2, Biopac system Inc., U.S.A.)를 사용해 인장에 따른 호흡신호를 측정하였다. 표면 특성을 평가한 결과, 모든 전도성 나노웹 시료들이 그래핀 잉크로 균일하게 코팅되어있음을 확인하였다. 인장에 따른 저항값 측정 결과, 그래핀을 처리한 시료인 시료 G가 가장 낮은 저항값을, 그래핀을 처리한 후 열처리를 한 시료인 시료 G-H가 가장 높은 저항값을 가졌고, 시료 G와 시료 G-H의 경우 길이가 5%, 10%로 늘어남에도 선저항값의 변화가 안정적으로 증가하는 것으로 나타났다. 저항값 결과와는 달리, 시료 G가 시료 G-H보다 더 높은 게이지율을 보였다. 실제로 착의평가 결과, 시료 G-H를 이용해 만든 스트레인센서가 안정된 Peak값으로 측정되어 좋은 품질의 신호를 얻었다. 그러므로 본 연구를 통해 그래핀 잉크를 처리한 폴리우레탄 나노웹이 호흡 센서로서의 역할을 충분히 수행하는 것을 확인하였다.