| Literature DB >> 25136278 |
Fei Tao1, Pritesh Hiralal2, Lianbing Ren3, Yong Wang3, Qing Dai4, Gehan Aj Amaratunga2, Hang Zhou1.
Abstract
Subwavelength nanostructures are considered as promising building blocks for antireflection and light trapping applications. In this study, we demonstrate excellent broadband antireflection effect from thin films of monolayer silica nanospheres with a diameter of 100 nm prepared by Langmuir-Blodgett method on glass substrates. With a single layer of compact silica nanosphere thin film coated on both sides of a glass, we achieved maximum transmittance of 99% at 560 nm. Furthermore, the optical transmission peak of the nanosphere thin films can be tuned over the UV-visible range by changing processing parameters during Langmuir-Blodgett deposition. The tunable optical transmission peaks of the Langmuir-Blodgett films were correlated with deposition parameters such as surface pressure, surfactant concentration, ageing of suspensions and annealing effect. Such peak-tunable broadband antireflection coating has wide applications in diversified industries such as solar cells, windows, displays and lenses.Entities:
Keywords: Antireflection; Langmuir-Blodgett; Light trapping; Peak tunable; Solar cells; Spheres
Year: 2014 PMID: 25136278 PMCID: PMC4128290 DOI: 10.1186/1556-276X-9-361
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Digital photographs of bare glass, single-side AR and double-side AR on a piece of paper with texts.
Figure 2Transmission spectra of bare glass, single AR and double AR. (a) Experimental results. (b) Simulated results.
Figure 3Transmission spectra. (a) AR films deposited at different pressures. (b) AR films deposited from fresh suspension with 1.0 mM, fresh suspension with 1.9 mM CTAB concentration and ageing suspension with 1.9 mM CTAB.
Figure 4SEM images. (a) CCTAB = 1.0 mM fresh suspension. (b) CCTAB = 1.9 mM fresh suspension. (c) CCTAB = 1.9 mM ageing suspension. Aggregations were indicated by black arrows. Scale bar = 500 nm.
Figure 5Effects on the radius of the nanospheres on the transmission spectra.