[1] Mohammadzadeh Jahani, P., et al., Recycling Silver from Sarcheshmeh Copper Anodic Sludge for Green Synthesis of Silver-Based Nanocomposites. Journal of Mineral Resources Engineering, 2021. 6(2): p. 123-138.
[2] Jordan, J., et al., Experimental trends in polymer nanocomposites—a review. Materials science and engineering: A, 2005. 393(1-2): p. 1-11.
[3] Berta, M., et al., Effect of chemical structure on combustion and thermal behaviour of polyurethane elastomer layered silicate nanocomposites. Polymer Degradation and Stability, 2006. 91(5): p. 1179-1191.
[4] Sanchez, C., et al., Applications of hybrid organic–inorganic nanocomposites. Journal of Materials Chemistry, 2005. 15(35-36): p. 3559-3592.
[5] Jeong, B., et al., Thermoreversible gelation of poly (ethylene oxide) biodegradable polyester block copolymers. Journal of Polymer Science Part A: Polymer Chemistry, 1999. 37(6): p. 751-760.
[6] Chen, T.K., J.Y. Chui, and T.S. Shieh, Glass transition behaviors of a polyurethane hard segment based on 4, 4 ‘-diisocyanatodiphenylmethane and 1, 4-butanediol and the calculation of microdomain composition. Macromolecules, 1997. 30(17): p. 5068-5074.
[7] Zia, K.M., et al., Molecular engineering of chitin based polyurethane elastomers. Carbohydrate Polymers, 2008. 74(2): p. 149-158.
[8] Manthiram, A., H.L. Marcus, and D.L. Bourell, Selective laser sintering using nanocomposite materials. 1995, Google Patents.
[9] Fornes, T., et al., Nylon 6 nanocomposites: the effect of matrix molecular weight. Polymer, 2001. 42(25): p. 09929-09940.
[10] Jose, A.J., M. Alagar, and A.S. Aprem, Thermal and barrier properties of organoclay-filled polysulfone nanocomposites. International Journal of Polymeric Materials, 2012. 61(7): p. 544-557.
[11] Gyoo, P.M., S. Venkataramani, and S.C. Kim, Morphology, thermal, and mechanical properties of polyamide 66/clay nanocomposites with epoxy‐modified organoclay. Journal of applied polymer science, 2006. 101(3): p. 1711-1722.
[12] Erdem, N., A.A. Cireli, and U.H. Erdogan, Flame retardancy behaviors and structural properties of polypropylene/nano‐SiO2 composite textile filaments. Journal of applied polymer science, 2009. 111(4): p. 2085-2091.
[13] Alexandre, M. and P. Dubois, Polymer-layered silicate nanocomposites: preparation, properties and uses of a new class of materials. Materials science and engineering: R: Reports, 2000. 28(1-2): p. 1-63.
[14] Merino, S., et al., Nanocomposite hydrogels: 3D polymer–nanoparticle synergies for on-demand drug delivery. ACS nano, 2015. 9(5): p. 4686-4697.
[15] Xu, H., et al., Polymer encapsulated upconversion nanoparticle/iron oxide nanocomposites for multimodal imaging and magnetic targeted drug delivery. Biomaterials, 2011. 32(35): p. 9364-9373.
[16] Abd-Rabou, A.A. and H.H. Ahmed, CS-PEG decorated PLGA nano-prototype for delivery of bioactive compounds: A novel approach for induction of apoptosis in HepG2 cell line. Advances in medical sciences, 2017. 62(2): p. 357-367.
[17] Barikani, M., et al., Preparation and application of chitin and its derivatives: a review. Iranian Polymer Journal, 2014. 23(4): p. 307-326.
[18] Feldman, D., Poly (Vinyl Alcohol) Recent Contributions to Engineering and Medicine. Journal of Composites Science, 2020. 4(4): p. 175.
[19] Shirode, A.B., et al., Nanoencapsulation of pomegranate bioactive compounds for breast cancer chemoprevention. International journal of nanomedicine, 2015. 10: p. 475.
[20] Heber, D., R.N. Schulman, and N.P. Seeram, Pomegranates: ancient roots to modern medicine. 2006: CRC press.
[21] Benzie, I.F. and S. Wachtel-Galor, Herbal medicine: biomolecular and clinical aspects. 2011.
[22] Gil, M.I., et al., Antioxidant activity of pomegranate juice and its relationship with phenolic composition and processing. Journal of Agricultural and Food chemistry, 2000. 48(10): p. 4581-4589.
[23] Seeram, N., et al., Rapid large scale purification of ellagitannins from pomegranate husk, a by-product of the commercial juice industry. Separation and purification technology, 2005. 41(1): p. 49-55.
[24] Larrosa, M., et al., Ellagitannins, ellagic acid and vascular health. Molecular aspects of medicine, 2010. 31(6): p. 513-539.
[25] Mohseni, M.S., et al., Green synthesis of Ag nanoparticles from pomegranate seeds extract and synthesis of Ag-Starch nanocomposite and characterization of mechanical properties of the films. Biocatalysis and Agricultural Biotechnology, 2020. 25: p. 101569.
[26] Ibraheem, D.R., et al., Ciprofloxacin-Loaded Silver Nanoparticles as Potent Nano-Antibiotics against Resistant Pathogenic Bacteria. Nanomaterials, 2022. 12(16): p. 2808.
[27] Ganjouzadeh, F., S. Khorrami, and S. Gharbi, Controlled cytotoxicity of Ag-GO nanocomposite biosynthesized using black peel pomegranate extract against MCF-7 cell line. Journal of Drug Delivery Science and Technology, 2022. 71: p. 103340.
[28] Amjad, A., A. Anjang Ab Rahman, and M.S.Z. Abidin, Effect of nanofillers on mechanical and water absorption properties of alkaline treated jute fiber reinforced epoxy bio nanocomposites. Journal of Natural Fibers, 2022: p. 1-17.
[29] Zafar, N., et al., Moringa concanensis-Mediated Synthesis and Characterizations of Ciprofloxacin Encapsulated into Ag/TiO2/Fe2O3/CS Nanocomposite: A Therapeutic Solution against Multidrug Resistant E. coli Strains of Livestock Infectious Diseases. Pharmaceutics, 2022. 14(8): p. 1719.
[30] Asadi, S., et al., Ciprofloxacin-Loaded Titanium Nanotubes Coated with Chitosan: A Promising Formulation with Sustained Release and Enhanced Antibacterial Properties. Pharmaceutics, 2022. 14(7): p. 1359.
[31] Badinezhad, M., M. Soleimani, and S. Jafari, Stimuli responsive nano-composite co-delivery of Doxorubicin and ciprofloxacin using HPLC-UV combined spectroscopy methods. Materials Today Communications, 2022. 30: p. 103128.
[32] Rami, M.R., et al., Synthesis of magnetic bio-nanocomposites for drug release and adsorption applications. South African Journal of Chemical Engineering, 2022. 42: p. 115-126.
[33] Shariatinia, Z. and M. Ziba, Smart pH-responsive drug release systems based on functionalized chitosan nanocomposite hydrogels. Surfaces and Interfaces, 2022. 29: p. 101739.
[34] Amjad, A., et al., Effect of nanofillers on mechanical and water absorption properties of alkaline treated flax/PLA fibre reinforced epoxy hybrid nanocomposites. Advanced composite materials, 2022. 31(4): p. 351-369.
[35] Beygi, M., et al., Mechanical and Thermal Expansion Properties of Wood-PVC/LDPE Nanocomposite. Fibers and Polymers, 2022: p. 1-8.
[36] Slowing, I.I., et al., Mesoporous silica nanoparticles as controlled release drug delivery and gene transfection carriers. Advanced drug delivery reviews, 2008. 60(11): p. 1278-1288.
[37] Khan, Y.A., et al., Chitosan-alginate hydrogels for simultaneous and sustained releases of ciprofloxacin, amoxicillin and vancomycin for combination therapy. Journal of Drug Delivery Science and Technology, 2021. 61: p. 102126.
[38] Orsu, P. and S. Matta, Fabrication and characterization of carboxymethyl guar gum nanocomposite for application of wound healing. International Journal of Biological Macromolecules, 2020. 164: p. 2267-2276.
[39] Zafar, N., et al., Synthesis and characterization of potent and safe ciprofloxacin-loaded Ag/TiO2/CS nanohybrid against mastitis causing E. coli. Crystals, 2021. 11(3): p. 319.
[40] Singh, J., S. Kumar, and A.S. Dhaliwal, Controlled release of amoxicillin and antioxidant potential of gold nanoparticles-xanthan gum/poly (Acrylic acid) biodegradable nanocomposite. Journal of Drug Delivery Science and Technology, 2020. 55: p. 101384.