Electrically switchable polymer stabilised broadband infrared reflectors and their potential as smart windows for energy saving in buildings

Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised cholesteric liquid crystals. The IR reflectors can change their reflection/transmission properties by applying a voltage in response to changes in...

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Vydané v:Scientific reports Ročník 5; číslo 1; s. 11773
Hlavní autori: Khandelwal, Hitesh, Loonen, Roel C. G. M., Hensen, Jan L. M., Debije, Michael G., Schenning, Albertus P. H. J.
Médium: Journal Article
Jazyk:English
Vydavateľské údaje: London Nature Publishing Group UK 01.07.2015
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ISSN:2045-2322, 2045-2322
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Abstract Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised cholesteric liquid crystals. The IR reflectors can change their reflection/transmission properties by applying a voltage in response to changes in environmental conditions. Simulations predict that a significant amount of energy can be saved on heating, cooling and lighting of buildings in places such as Madrid by using this switchable IR reflector. We have also fabricated a switchable IR reflector which can also generate electricity. These polymer based switchable IR reflectors are of high potential as windows of automobiles and buildings to control interior temperatures and save energy.
AbstractList Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised cholesteric liquid crystals. The IR reflectors can change their reflection/transmission properties by applying a voltage in response to changes in environmental conditions. Simulations predict that a significant amount of energy can be saved on heating, cooling and lighting of buildings in places such as Madrid by using this switchable IR reflector. We have also fabricated a switchable IR reflector which can also generate electricity. These polymer based switchable IR reflectors are of high potential as windows of automobiles and buildings to control interior temperatures and save energy.Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised cholesteric liquid crystals. The IR reflectors can change their reflection/transmission properties by applying a voltage in response to changes in environmental conditions. Simulations predict that a significant amount of energy can be saved on heating, cooling and lighting of buildings in places such as Madrid by using this switchable IR reflector. We have also fabricated a switchable IR reflector which can also generate electricity. These polymer based switchable IR reflectors are of high potential as windows of automobiles and buildings to control interior temperatures and save energy.
Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised cholesteric liquid crystals. The IR reflectors can change their reflection/transmission properties by applying a voltage in response to changes in environmental conditions. Simulations predict that a significant amount of energy can be saved on heating, cooling and lighting of buildings in places such as Madrid by using this switchable IR reflector. We have also fabricated a switchable IR reflector which can also generate electricity. These polymer based switchable IR reflectors are of high potential as windows of automobiles and buildings to control interior temperatures and save energy.
ArticleNumber 11773
Author Hensen, Jan L. M.
Schenning, Albertus P. H. J.
Debije, Michael G.
Khandelwal, Hitesh
Loonen, Roel C. G. M.
Author_xml – sequence: 1
  givenname: Hitesh
  surname: Khandelwal
  fullname: Khandelwal, Hitesh
  organization: Functional Organic Materials and Devices, Department of Chemical Engineering and Chemistry, Eindhoven, University of Technology, Dutch Polymer Institute (DPI)
– sequence: 2
  givenname: Roel C. G. M.
  surname: Loonen
  fullname: Loonen, Roel C. G. M.
  organization: Unit Building Physics and Services, Department of the Built Environment, Eindhoven University of Technology
– sequence: 3
  givenname: Jan L. M.
  surname: Hensen
  fullname: Hensen, Jan L. M.
  organization: Unit Building Physics and Services, Department of the Built Environment, Eindhoven University of Technology
– sequence: 4
  givenname: Michael G.
  surname: Debije
  fullname: Debije, Michael G.
  organization: Functional Organic Materials and Devices, Department of Chemical Engineering and Chemistry, Eindhoven, University of Technology
– sequence: 5
  givenname: Albertus P. H. J.
  surname: Schenning
  fullname: Schenning, Albertus P. H. J.
  organization: Functional Organic Materials and Devices, Department of Chemical Engineering and Chemistry, Eindhoven, University of Technology
BackLink https://www.ncbi.nlm.nih.gov/pubmed/26132328$$D View this record in MEDLINE/PubMed
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Snippet Electrically switchable broadband infrared reflectors that are relatively transparent in the visible region have been fabricated using polymer stabilised...
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SubjectTerms 639/301
639/638
Buildings
Crystals
Energy
Energy conservation
Environmental changes
Environmental conditions
Humanities and Social Sciences
Motor vehicles
multidisciplinary
Polymers
Science
Title Electrically switchable polymer stabilised broadband infrared reflectors and their potential as smart windows for energy saving in buildings
URI https://link.springer.com/article/10.1038/srep11773
https://www.ncbi.nlm.nih.gov/pubmed/26132328
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Volume 5
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