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Antimicrobial controlled release systems for the knitted cotton fabrics based on natural substances
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  • 作者:Angela Cerempei ; Eleonora Guguianu ; Emil Ioan Muresan…
  • 关键词:Tea tree essential oil ; Eucalyptus essential oil ; Sage essential oil ; Beeswax ; Cellulose ; In vitro release
  • 刊名:Fibers and Polymers
  • 出版年:2015
  • 出版时间:August 2015
  • 年:2015
  • 卷:16
  • 期:8
  • 页码:1688-1695
  • 全文大小:880 KB
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  • 作者单位:Angela Cerempei (1)
    Eleonora Guguianu (2)
    Emil Ioan Muresan (3)
    Cristina Horhogea (2)
    Cristina R卯mbu (2)
    Oana Borhan (1)

    1. Department of Chemical Engineering in Textile and Leather, Textile-Leather and Industrial Management Faculty, 鈥淕heorghe Asachi鈥?Technical University, Iasi, 700050, Romania
    2. Public Health Department, Faculty of Veterinary Medicine, University of Agricultural Sciences and Veterinary Medicine, Iasi, 700489, Romania
    3. Department of Organic, Biochemical and Food Engineering, Faculty of Chemical Engineering and Environmental Protection, 鈥淕heorghe Asachi鈥?Technical University, Iasi, 700050, Romania
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Polymer Sciences
  • 出版者:The Korean Fiber Society
  • ISSN:1875-0052
文摘
Materials with antibacterial properties, that can be used as barrier materials, hygiene products, plasters or bandages, have been obtained by applying some systems consisting of essential oils incorporated in beeswax and beeswax/chitosan. The influence of oil, wax and chitosan amounts on emultion stability has been analyzed by optical microscopy. The controlled release of essential oils of Eucalyptus (EEO), Tea Tree (TTEO) and Sage (SEO) incorporated in beeswax and beeswax/chitosan from the treated material was estimated through UV/Visible spectrophotometric analyses. The antibacterial effect of the emulsions and of the materials obtained by treating them with these emulsions have been investigated against the Staphylococcus aureus ATCC 29213 and Escherichia Coli ATCC 25922 bacteria. Comfort performances (air and vapor permeability and hygroscopicity) for the treated materials have also been evaluated. The best antimicrobial activity and the highest amount of essential oil released in vitro were obtained for the treatment variants that contain 7.14 % beeswax and 26.67 % essential oil, and respectively 26.67 % essential oil, 3.33 % beeswax and 3.33 % chitosan. Keywords Tea tree essential oil Eucalyptus essential oil Sage essential oil Beeswax Cellulose In vitro release

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