4.6 Article

Investigation of x-ray response for flexible nanocomposite membranes of metal oxides and poly(vinyl alcohol)

期刊

JOURNAL OF APPLIED POLYMER SCIENCE
卷 139, 期 13, 页码 -

出版社

WILEY
DOI: 10.1002/app.51850

关键词

crosslinking; nanoparticles; nanowires and nanocrystals; sensors and actuators; synthesis and processing techniques

资金

  1. Qatar Foundation [UREP26-056-2-014]

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Flexible composite membranes consisting of CuO, ZnO nanoparticles, PVA, and GL plasticizer were fabricated for X-ray detector applications. The addition of nanoparticles led to a shift in glass transition temperature and improved thermal resistance. The composite membranes showed a negative temperature coefficient of resistance and a decent x-ray response proportional to the energy, with the best response observed for membranes containing both CuO and ZnO nanoparticles.
In this work, flexible composite membranes of nanoparticles (CuO, ZnO, or both), poly(vinyl alcohol) (PVA), and glycerol (GL) plasticizer are fabricated of for X-ray detector applications. The nanoparticles are synthesized by a modified solvothermal technique and introduced to PVA + GL solution to fabricate the membranes. The mean sizes of nanoparticles are 10 -/+ 4nm and 8 -/+ 3nm, for CuO and ZnO in order. The composition of nanoparticles and membranes are investigated by energy dispersive x-ray spectroscopy and x-ray spectroscopy. Increasing nanoparticle concentration within the membranes causes their glass transition temperature to shift to low temperatures and enhances their thermal resistance. Fourier-transform infrared spectroscopy demonstrates the formation of hydrogen bonds between nanoparticles and PVA that are generated by the intermolecular and intramolecular hydrogen bonds. Impedance spectroscopy characterization reveals that the membranes hold negative temperature coefficient of the resistance. The activation energy decreases with increasing nanoparticle concentration. The composite membranes exhibit a decent response to x-ray that is proportional to its energy. The best x-ray response is for the membranes with both CuO and ZnO nanoparticles, because of their different bandgaps that cause a wide range of excitation energy to be involved. The fabricated membranes have numerous advantages such as their semiconductor features, flexibility, and feasibility of fabrication on a large scale with reasonable cost.

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