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for photoluminescence quantum yield measurements in solution (IUPAC Technical Report). Pure Appl Chem 2011, 83:2213–2228.CrossRef 34. Baba K, Kasai H, Okada S, Nakanishi H, Oikawa H: Fabrication of diacetylene nanofibers and their dynamic behavior in the course of solid-state polymerization. Mol Cryst Liq Cryst 2006, 445:161–166.CrossRef 35. Takahashi S, Miura H, Kasai H, Okada S, Oikawa H, Nakanishi H: Single-crystal-to-single-crystal transformation of diolefin derivatives in nanocrystals. J Am Cheml Soc 2002, 124:10944–10945.CrossRef 36. Baba K, Kasai H, Okada S, Oikawa H, Nakanishi H: Fabrication of organic nanocrystals using microwave irradiation and their optical properties. Opt Mater 2003, 21:591–594.CrossRef Competing interests The authors

declare that they have no competing interests. Authors’ contributions KB contributed to the conception of the study, carried out all the experiments, and drafted the manuscript. KN contributed to the interpretation of the data and revision of the manuscript. Fenbendazole Both authors read and approved the final manuscript.”
“Background In recent years, there is an explosive development of inorganic semiconductor nanostructures, particularly low-dimensional nanostructures. A variety of low-dimensional JNK-IN-8 mw nanostructures such as zero-dimensional (0D) nanoparticles; one-dimensional (1D) nanowires, nanotubes, nanorods, and nanobelts; and two-dimensional (2D) nanosheets are investigated extensively due to their novel and fascinating properties compared to their bulk counterparts [1–3]. In addition, as the dimension of a material is reduced to the nanometer scale level, a large percentage of atoms are located at the surface, which significantly affects the structural and optical properties.

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