RISS 학술연구정보서비스

검색

인기 검색어

    다국어 입력

    http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

    변환된 중국어를 복사하여 사용하시면 됩니다.

    예시)
    • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
    • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
    닫기
    SCIE SCOPUS KCI등재

    친수성/소수성 단량체 공중합을 통한 폴리(N-이소프로필아크릴아미드) 기반 열방성 스마트 윈도우 소재의 전이온도 조절

    한글로보기

    https://www.riss.kr/link?id=A107873170

    • 0

      상세조회
    • 0

      다운로드
    서지정보 열기
    • 내보내기
    • 내책장담기
    • 공유하기
    • 오류접수

    부가정보

    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Smart windows fabricated with thermotropic polymers can adaptively control the transmittance of the sunlight that enters the room, thereby reducing energy consumption for air conditioning. However, it is difficult to apply to various climatic environments for thermotropic smart windows based in poly(N-isopropylacryamide) (PNIPAm) due to the fixed transition temperature of 32 ℃. In this study, the transition temperature of PNIPAm based polymers could be controlled by copolymerization with the hydrophobic N,N-diethylacrylamide or the hydrophilic N-vinylpyrrolidone comonomers. We found that the transition temperature shifts to lower or higher temperatures ranging from 24-48 ℃ depending on the composition of copolymers through the controlof the interaction between copolymer and water. We further fabricated the smart window with prepared copolymers and confirmed that the optical transition of the windows occurs at various temperatures.
    번역하기

    Smart windows fabricated with thermotropic polymers can adaptively control the transmittance of the sunlight that enters the room, thereby reducing energy consumption for air conditioning. However, it is difficult to apply to various climatic environm...

    Smart windows fabricated with thermotropic polymers can adaptively control the transmittance of the sunlight that enters the room, thereby reducing energy consumption for air conditioning. However, it is difficult to apply to various climatic environments for thermotropic smart windows based in poly(N-isopropylacryamide) (PNIPAm) due to the fixed transition temperature of 32 ℃. In this study, the transition temperature of PNIPAm based polymers could be controlled by copolymerization with the hydrophobic N,N-diethylacrylamide or the hydrophilic N-vinylpyrrolidone comonomers. We found that the transition temperature shifts to lower or higher temperatures ranging from 24-48 ℃ depending on the composition of copolymers through the controlof the interaction between copolymer and water. We further fabricated the smart window with prepared copolymers and confirmed that the optical transition of the windows occurs at various temperatures.

    더보기

    참고문헌 (Reference)

    1 김도완, "온도감응성 하이드로젤과 은 나노패턴 기판으로 구성된 유연한 태양광차단용 스마트 필름의 투광도 특성 연구" 한국고분자학회 43 (43): 144-150, 2019

    2 Hao, Q., "VO2/TiN Plasmonic Thermochromic Smart Coatings for Room‐temperature Applications" 30 : 1705421-, 2018

    3 Park, M. J., "Two Gel States of a PEO‐PPO‐PEO Triblock Copolymer Formed by Different Mechanisms" 23 : 688-692, 2002

    4 Barrios, D., "Toward a Quantitative Model for Suspended Particle Devices: Optical Scattering and Absorption Coefficients" 111 : 115-122, 2013

    5 Seeboth, A., "Thermotropic and Thermochromic Polymer Based Materials for Adaptive Solar Control" 3 : 5143-5168, 2010

    6 Seeboth, A., "The Optical Behavior of Lyotropic Liquid Crystalline Polymer Gel Networks: Dependence on Temperature" 8 : 408-411, 1996

    7 Warwick, M. E., "The Effect of Transition Gradient in Thermochromic Glazing Systems" 77 : 80-90, 2014

    8 Panagopoulou, M., "The Effect of Buffer Layer on the Thermochromic Properties of Undoped Radio Frequency Sputtered VO2 Thin Films" 594 : 310-315, 2015

    9 Lee, E., "Stepwise Activation of Switchable Glazing by Compositional Gradient of Copolymers" 8 : 26359-26364, 2016

    10 Wu, L. Y., "Sol-gel Based Photochromic Coating for Solar Responsive Smart Window" 320 : 601-607, 2017

    1 김도완, "온도감응성 하이드로젤과 은 나노패턴 기판으로 구성된 유연한 태양광차단용 스마트 필름의 투광도 특성 연구" 한국고분자학회 43 (43): 144-150, 2019

    2 Hao, Q., "VO2/TiN Plasmonic Thermochromic Smart Coatings for Room‐temperature Applications" 30 : 1705421-, 2018

    3 Park, M. J., "Two Gel States of a PEO‐PPO‐PEO Triblock Copolymer Formed by Different Mechanisms" 23 : 688-692, 2002

    4 Barrios, D., "Toward a Quantitative Model for Suspended Particle Devices: Optical Scattering and Absorption Coefficients" 111 : 115-122, 2013

    5 Seeboth, A., "Thermotropic and Thermochromic Polymer Based Materials for Adaptive Solar Control" 3 : 5143-5168, 2010

    6 Seeboth, A., "The Optical Behavior of Lyotropic Liquid Crystalline Polymer Gel Networks: Dependence on Temperature" 8 : 408-411, 1996

    7 Warwick, M. E., "The Effect of Transition Gradient in Thermochromic Glazing Systems" 77 : 80-90, 2014

    8 Panagopoulou, M., "The Effect of Buffer Layer on the Thermochromic Properties of Undoped Radio Frequency Sputtered VO2 Thin Films" 594 : 310-315, 2015

    9 Lee, E., "Stepwise Activation of Switchable Glazing by Compositional Gradient of Copolymers" 8 : 26359-26364, 2016

    10 Wu, L. Y., "Sol-gel Based Photochromic Coating for Solar Responsive Smart Window" 320 : 601-607, 2017

    11 Baetens, R., "Properties, Requirements and Possibilities of Smart Windows for Dynamic Daylight and Solar Energy Control in Buildings: A State-of-the-art Review" 94 : 87-105, 2010

    12 Park, S., "Polymer Dispersed Liquid Crystal Film for Variable-transparency Glazing" 517 : 3183-3186, 2009

    13 Schild, H. G., "Poly(N-isopropylacrylamide): Experiment, Theory and Application" 17 : 163-249, 1992

    14 Kim, D., "Optically Bistable Switching Glazing Achieved by Memory Function of Grafted Hydrogels" 10 : 22711-22717, 2018

    15 Vergaz, R., "Modelling and Electro-optical Testing of Suspended Particle Devices" 92 : 1483-1487, 2008

    16 Watanabe, H., "Intelligent Window using a Hydrogel Layer for Energy Efficiency" 54 : 203-211, 1998

    17 Zhang, J., "Hydrothermal Growth of VO2 Nanoplate Thermochromic Films on Glass With High Visible Transmittance" 6 : 27898-, 2016

    18 Huang, S., "High‐Performance Suspended Particle Devices Based on Copper‐Reduced Graphene Oxide Core-Shell Nanowire Electrodes" 1703658-, 2018

    19 Raicu, A., "Facade Systems with Variable Solar Control using Thermotropic Polymer Blends" 72 : 31-42, 2002

    20 Kim, Y. -B., "Fabrication of Flexible Polymer Dispersed Liquid Crystal Films using Conducting Polymer Thin Films as the Driving Electrodes" 517 : 3066-3069, 2009

    21 Ko, H. C., "Enhancement of Electrochromic Contrast of Poly(3,4‐Ethylenedioxythiophene) by Incorporating a Pendant Viologen" 16 : 1712-1716, 2004

    22 Kim, D., "Energy Efficient Glazing for Adaptive Solar Control Fabricated with Photothermotropic Hydrogels Containing Graphene Oxide" 5 : 7646-, 2015

    23 Azens, A., "Electrochromic Smart Windows: Energy Efficiency and Device Aspects" 7 : 64-68, 2003

    24 Lampert, C. M., "Electrochromic Materials and Devices for Energy Efficient Windows" 11 : 1-27, 1984

    25 Deb, S., "Electrochromic Characters of WO3" 3 : 193-, 1969

    26 Patil, R. A., "Efficient Electrochromic Smart Windows of One-dimensional Pure Brookite TiO2Nanoneedles" 147 : 240-245, 2016

    27 Hočevar, M., "Cubic WO3 Stabilized by Inclusion of Ti: Applicable in Photochromic Glazing" 154 : 57-64, 2016

    28 Gong, X., "Copolymer Solution-Based “Smart Window”" 95 : 251907-, 2009

    29 Huovila, P., "Buildings and Climate Change: Status, Challenges, and Opportunities" UNEP/Earthprint 2007

    더보기

    동일학술지(권/호) 다른 논문

    동일학술지 더보기

    더보기

    분석정보

    View

    상세정보조회

    0

    Usage

    원문다운로드

    0

    대출신청

    0

    복사신청

    0

    EDDS신청

    0

    동일 주제 내 활용도 TOP

    더보기

    주제

    연도별 연구동향

    연도별 활용동향

    연관논문

    연구자 네트워크맵

    공동연구자 (7)

    유사연구자 (20) 활용도상위20명

    인용정보 인용지수 설명보기

    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2012-06-04 학술지명변경 외국어명 : 미등록 -> POLYMER(KOREA) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2006-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2004-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2001-07-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    1999-01-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
    더보기

    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.58 0.47 0.5
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.45 0.43 0.401 0.13
    더보기

    이 자료와 함께 이용한 RISS 자료

    나만을 위한 추천자료

    해외이동버튼