Characterization of fabrics coated with doped TiO 2 -graphene
Author(s) -
Iuliana Dumitrescu,
O. Iordache,
Elena-Cornelia Mitran,
Elena Perdum,
IRINA-MARIANA SĂNDULACHE,
Lucia-Oana Secareanu,
ARCADII SOBETKII
Publication year - 2020
Publication title -
industria textila
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.281
H-Index - 14
ISSN - 1222-5347
DOI - 10.35530/it.071.02.1625
Subject(s) - materials science , graphene , photocatalysis , scanning electron microscope , visible spectrum , contact angle , composite material , differential scanning calorimetry , wetting , chemical engineering , woven fabric , photodegradation , nanotechnology , optoelectronics , chemistry , organic chemistry , physics , engineering , thermodynamics , catalysis
This study presents the results of laboratory experiments to prepare cotton woven fabrics with photoactive properties.The fabric was treated with TiO 2 – Fe(1%) – N + 2% graphene by exhaustion followed by a fluorocarbon polymertreatment. The fabric was analyzed by Scanning Electron Microscope coupled with Energy Dispersive Spectroscopy(SEM/EDAX), Differential scanning calorimetry (DSC), Contact Angle measurement, physical properties (weight,thickness, breaking strength, elongation, air/water permeability, electrical resistance). The photocatalytic activity wasdetermined initially and after 5 washings by measuring the trichromatic coordinates of the treated fabrics stained withmethylene blue and exposed to UV and visible light on a Hunterlab UV-Vis spectrophotometer.The results demonstrate a uniform deposition of doped TiO 2 -graphene particles on material surface. The thermalstability of the coated cotton fabric is practically unmodified in comparison with blank cotton fabric.The decrease of the surface resistivity demonstrates the deposition of graphene layer, known for its good electricalconductivity. The wetting capacity of initial hydrophilic cotton fabric is dramatically modified, the fabric becominghydrophobic after treatment. The photocatalytic efficiency is higher under visible light than under UV-radiation due to theTiO 2 doping and decoration with graphene, which extend the light absorption from UV to visible range. The goodphotocatalytic activity under visible light is maintained after 5 washing cycles.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom