Polymer Nanocomposite Materials. Группа авторов

Polymer Nanocomposite Materials - Группа авторов


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      27 27 Shen, J., Hu, Y., Li, C. et al. (2009). Synthesis of amphiphilic graphene nanoplatelets. Small 5: 82–85.

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      29 29 Umar, A. and Hahn, Y.B. (2006). ZnO nanosheet networks and hexagonal nanodiscs grown on silicon substrate: growth mechanism and structural and optical properties. Nanotechnology 17: 2174–2180.

      30 30 Bai, W., Zhu, X., Zhu, Z., and Chu, J. (2008). Synthesis of zinc oxide nanosheet thin films and their improved field emission and photoluminescence properties by annealing processing. Appl. Surf. Sci. 254: 6483–6488.

      31 31 Mani, G.K. and Rayappan, J.B.B. (2014). A simple and template free synthesis of branched ZnO nanoarchitectures for sensor applications. RSC Adv. 4: 64075–64084.

      32 32 Li, B.L., Setyawati, M.I., Chen, L. et al. (2017). Directing assembly and disassembly of 2D MoS2 nanosheets with DNA for drug delivery. ACS Appl. Mater. Interfaces 9: 15286–15296.

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      37 37 Fahmy, T.Y.A. and Mobarak, F. (2008). Nanocomposites from natural cellulose fibers filled with kaolin in presence of sucrose. Carbohydr. Polym. 72: 751–755.

      38 38 Lee, K.-Y., Bharadia, P., Blaker, J.J., and Bismarck, A. (2012). Short sisal fibre reinforced bacterial cellulose polylactide nanocomposites using hairy sisal fibres as reinforcement. Compos. Part A: Appl. Sci. Manuf. 43: 2065–2074.

      39 39 Ibrahim, I.D., Jamiru, T., Sadiku, E.R. et al. (2016). Impact of surface modification and nanoparticle on sisal fiber reinforced polypropylene nanocomposites. J. Nanotechnol. 2016: 1–9.

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      41 41 Xu, Y. and Hoa, S.V. (2008). Mechanical properties of carbon fiber reinforced epoxy/clay nanocomposites. Compos. Sci. Technol. 68: 854–861.

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      43 43 Ulus, H., Şahin, Ö.S., and Avcı, A. (2016). Enhancement of flexural and shear properties of carbon fiber/epoxy hybrid nanocomposites by boron nitride nano particles and carbon nano tube modification. Fibers Polym. 16: 2627–2635.

      44 44 Ye, G. (2017). Preparation of poly(7-formylindole)/carbon fibers nanocomposites and their high capacitance behaviors. Int. J. Electrochem. Sci. 12: 8467–8476.

      45 45 Lu, X., Chao, D., Chen, J. et al. (2006). Preparation and characterization of inorganic/organic hybrid nanocomposites based on Au nanoparticles and polypyrrole. Mater. Lett. 60: 2851–2854.

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      47 47 Ślosarczyk, A., Barełkowski, M., Niemier, S., and Jakubowska, P. (2015). Synthesis and characterisation of silica aerogel/carbon microfibers nanocomposites dried in supercritical and ambient pressure conditions. J. Sol–Gel Sci. Technol. 76: 227–232.

      48 48 Dhandapani, S., Nayak, S.K., and Mohanty, S. (2016). Compatibility effect of titanium dioxide nanofiber on reinforced biobased nanocomposites: thermal, mechanical, and morphology characterization. J. Vinyl Add. Technol. 22: 529–538.

      49 49 Ma, J.-L., Chan, T.-M., and Young, B. (2016). Experimental investigation of cold-formed high strength steel tubular beams. Eng. Struct. 126: 200–209.

      50 50 Saranya, M., Ramachandran, R., and Wang, F. (2016). Graphene-zinc oxide (G-ZnO) nanocomposite for electrochemical supercapacitor applications. J. Sci. Adv. Mater. Devices 1: 454–460.

      51 51 Shehata, N., Gaballah, S., Samir, E. et al. (2016). Fluorescent nanocomposite of embedded ceria nanoparticles in crosslinked PVA electrospun nanofibers. Nanomaterials 6: 102.

      52 52 Shehata, N., Samir, E., Gaballah, S. et al. (2016). Embedded ceria nanoparticles in crosslinked


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