Published October 1, 2016 | Version v1
Journal article

Ultrathin hexagonal MgO nanoflakes coated medical textiles and their enhanced antibacterial activity

  • 1. Nanosensor Laboratory, Nanotech Research, Innovation and Incubation Facility, PSG Institute of Advanced Studies, Coimbatore-641004 (India)
  • 2. Nanobiotechnology Laboratory, Nanotech Research, Innovation and Incubation Facility, PSG Institute of Advanced Studies, Coimbatore-641004 (India)

Description

A facile hydrothermal method for development of ultrathin MgO nanoplates from different precursors and their enhanced antibacterial activity after coating onto medical textiles is reported. Ultrathin MgO nanoplates having hexagonal structure were characterized using UV–visible spectroscopy, atomic force microscopy, field emission scanning electron microscopy, x-ray diffraction and high resolution transmission electron microscopy. The formation of MgO nanoplates was found to exhibit profound anionic effect leading to ultrathin, planar structures with exposed MgO [111] facets, which may be responsible for enhanced antimicrobial activity. Medical fabrics (bleached 100% cotton) were coated with MgO nanoplates using pad-dry-cure method. The antibacterial activity of these fabrics was tested against Bacillus subtilis and Escherichia coli . The MgO nanoplates coated onto the fabric were found to have good adherence properties owing to their two-dimensional structure and were durable even after repeated washings without substantial reduction in the antimicrobial activity. The enhanced antibacterial activity may be attributed to the presence of oxygen vacancies, surface oxygen anions and hydroxyl groups on the surface of MgO nanoplates. This cost-effective functional finish (anti-microbial) to cotton fabric using MgO nanoplates may be suitable for many prospective medical applications and can serve as an alternative to the costlier silver based antimicrobial textiles. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/2053-1591/3/10/105005

Additional details

Publishing Information

Journal Title
Materials Research Express (Online)
Journal Volume
3
Journal Issue
10
Journal Page Range
[11 p.]
ISSN
2053-1591