[1] Park, C.B., Baldwin, D.F., Suh, N.P., Effect of the pressure drop rate on cell nucleation in continuous processing of microcellular polymers. Polym Eng Sci, (35), 432-440, 1995.
[2] Nofar, M.., Salehiyan, R.., Ciftci, U., Jalali, A., Durmuş, A., Ductility improvements of PLA-based binary and ternary blends with controlled morphology using PBAT, PBSA, and nanoclay. J Composites Part B: Engineering , (182), 107661, 2020.
[3] Wang, P., Aliheidari, N., Zhang, X., Ameli, A.. Strong ultralight foams based on nanocrystalline cellulose for high-performance insulation. J Carbohydrate polymers, (218), 103-111, 2019.
[4] Nofar, M., Salehiyan ,R., Sinha Ray, S., Rheology of poly (lactic acid)-based systems. J Polymer Reviews, 59 (3), 465-509, 2019.
[5] Wang, C., Shaayegan, V., Ataei ,M., Costa, F., Han, S, Bussmann, M., Park, C.B., Accurate theoretical modeling of cell growth by comparing with visualized data in high-pressure foam injection molding. J European Polymer Journal, (119), 189-199, 2019.
[6] Tabatabaei, A., Barzegari, M.R., Mark, L.H., Park, C.B., Visualization of polypropylene's strain-induced crystallization under the influence of supercritical CO2 in extrusion. J Polymer, (122), 312-322, 2017.
[7] Jahani, D., Ameli, A., Jung, P., Barzegari, M., Park, C., and Naguib, H..J.M., Design Open-Cell Cavity-Integrated Injection-Molded Acoustic Polypropylene Foams, Materials . Design, (53),20-28, 2014.
[8] Jahani, D., Ameli, A., Saniei, M., Ding, W., Park, C.B., and Naguib, H.E., Engineering Characterization of the Structure Acoustic Property Thermal Conductivity and Mechanical Property of Highly Expanded Open‐Cell Polycarbonate Foams, Macromolecular, Materials, Engineering, (300), 48-56, 2015.
[9] Enayati, M.S., Familiy, M.H.N., Janani, H. Production of Polystyrene Open-Celled Microcellular Foam In Batch Process By Super Critical Co2. Iranian Journal of Polymer Science and Technology,23(107). 223-234 ,2010.
[10] Jahani, D., Azimi, H., and Nazari, A., An Experimental Study on the Micro-and Nanocellular Foaming of Polystyrene/Poly (Methyl Methacrylate) Blend Composites, Polym, Engineering, (39), 926-933, 2019.
[11] Nofar ,M., Batı, B., Kuçuk, E.B., and Jalali, A., Effect of Soft Segment Molecular Weight on the Microcellular Foaming Behavior of TPU Using Supercritical CO2, Supercritical. Fluids, (16),10-48, 2020.
[12] Noormohammad, A.; Molla-Abbasi, P., Porous Poly(vinyl alcohol)/Carbon Nanotube Sensitive Layer for Detection of Lung Cancer Biomarkers. Iranian journal of polymer science & technology ,33(2) Pages 147-158,2020.
[13] Ameli, A., Nofar, M., Jahani, D., Rizvi, G., Park, CB., Development of high void fraction polylactide composite foams using injection molding: Crystallization and foaming behaviors, J Chemical Engineering Journal; (262), 78-872015.
[14] Ameli, A, Jahani, D, Nofar, M, Jung, PU, Park, CB. Processing and characterization of solid and foamed injection-molded polylactide with talc; 49 (4), 351-374, 2013.
[15] Ding ,W., Jahani, D., Chang, E., Alemdar, A., Park, C.B., and Sain, M., Development of PLA/Cellulosic Fiber Composite Foams Using Injection Molding Crystallization and Foaming Behaviors Composites , Apply. Sci . Manufacturing, (83), 130-139, 2016.
[16] Yiu ,H.H., Botting, C.H., Botting, N.P., and Wright, P.A., Size Selective Protein Adsorption on Thiol-Functionalised SBA-15 Mesoporous Molecular Sieve, Physical, Chem. Chemical, Phys, (15), 2983-2985, 2001.
[17] Hussain, F., Hojjati, M., Okamoto, M., and Gorga, R.E., Polymer-Matrix Nanocomposites Processing Manufacturing and Application an Overview, Composite. Materials, (40), 1511-1575, 2006.
[18] Silvi, N., Buckley, D.J., Simon, D.A., Simone, D.L., and Pavlisko, J.A., Method of Making a Polymer Foam, Google Patents, 2017.
[19] Khalkhali .Zavieh, T., Hossein Khanli, H., Sarabi, F. Die Design For Polyethylene Foam Extrusion With Azodicarbonamide As Foaming Agent. Iranian Journal Of Polymer Science And Technology , 20 (87), P 3-9,2007.
[20] Fan ,D., Li, M., Xing, J., Jiang, H., and Tang, Z., Interfaces Novel Method for Preparing Auxetic Foam from Closed-Cell Polymer Foam Based on the Steam Penetration and Condensation Process , Apply. Materials, Interface, (10), 22669-22677, 2018.
[21] Rueger, Z., and Lakes, S.J., Experimental Cosserat Elasticity in Open-Cell Polymer Foam, J. Philosophical . Magazine, (12), 93-111, 2016.
[22] Shafi, M., and Flumerfelt, R.J., Initial Bubble Growth in Polymer Foam Processes. J, Chem, Engineering, Sci, (52), 627-633, 1997.
[23] Tomasko, D.L., Burley, A., Feng, L., Yeh, S.K., Nirmal-Kumar, K., Kusaka, S., and Koelling, I., Development of CO2 for Polymer Foam Applications, Supercritical. Fluids, (47), 493-499, 2009.
[24] Khosrokhavar ,R., Naderi, G., Bakhshandeh, G.R., and Ghoreishy, M.H., Effect of Processing Parameters on PP/EPDM/Organoclay Nanocomposites Using Taguchi Analysis Method Iranian. Polym, (20), 41-53, 2011.
[25] Shokoohi, S., Naderi, G.J.J., Development and Experimental Validation of Morphology Predictive Model for Compatibilized Ternary Polymer Blends Effect of Interfacial Tension. J,Springer, (68), 37-48, 2016.
[26] Lee, L.J., Zeng, C., Cao, X., Han ,X., Shen, J., and Xu, G.J., Technology Polymer Nanocomposite Foams, J.Composites, Sci, Technology, (65), 2344-2363, 2005.
[27] Ameli ,A., Jahani, D., Nofar, M., Jung, P.U., and Park, C.B., Processing and Characterization of Solid and Foamed Injection-Molded Polylactide with Talc. Cellular Plastics, (49), 351-374, 2013.
[28] Ameli A., Park C.B., and Potschke P., The Effect of Foaming on the Properties of Carbon Nanotubes/Polymer Composites, Processing of Nanocomposite Polymers, Elsevier, 235-254, 2019.
[29] Klempner, D., and Frisch, K.C., Handbook of Polymeric foams and foam Technology, J. Hanser. Munich, 1991.
[30] Karger-Kocsis, J., Polypropylene an AZ Reference, J, Springer, Sci, Business Media, 2012.
[31] Bao, J.B., Liu ,T., Zhao, L., Hu, G.H., Miao, X., and Li, X.J.P., Oriented Foaming of Polystyrene with Supercritical Carbon Dioxide for Toughening. J, Polym, (53), 5982-5993, 2012.
[32] Zakiyan, S.E., Famili, M.H.N., and Ako, S.T., Heterogeneous Nucleation in Batch Foaming of Polystyrene in Presence of Nanosilica as a Nucleating Agent. Iran, J,Polym, Sci,Technol.(Persian), (25), 231-240, 2012.
[33] Famili, M., Janani, H., and Enayati, M., Foaming of a Polymer–Nanoparticle System: Effect of the Particle Properties. Apply, Polym, Sci, (119), 2847-2856, 2011.
[34] Azimi, H.R., Rezaei, M., and Abbasi, F.P., The Effect of Expansion Conditions on the Batch Foaming Dynamics of St–MMA Copolymer. Cellular Plastics , (48), 125-140, 2012.
[35] Nakhaei, M.R., Naderi, G., Ghoreishy, M.H.R., Experimental Investigation of Mechanical Properties, Fracture Mechanism and Crack Propagation of PA6/NBR/Clay Nanocomposites. Iranian journal of polymer science & technology, 33(2), 159-172, 2020.
[36] Goodarzi, V., Fasihi, M., Microstructure mechanical and electrical characterizations of bimodal and nanocellular polypropylene/graphene nanoplatelet composite foams. Mater Today Commun, (25), 101-447, 2020.
[37] Jo, C., Fu, J., Naguib, H. E. Constitutive Modeling for Intercalated PMMA/Clay Nanocomposite Foams. Polymer Engineering and Science, 46(12), 1787-1796, 2006.
[38] Rafiee, R., Shahzadi, R., Predicting mechanical properties of nanoclay/polymer composites using stochastic approach. Composites Part B, (152), 31-42, 2018.
[39] Shettar, M., Kini, A., Sharma, S., Hiremath, P. Study on Mechanical Characteristics of Nanoclay Reinforced Polymer Composites. Advanced Materials, Manufacturing, Management and Thermal Science AMMMT, (4) 11158–11162,2017.
[40] Chan, M., Lau, K.T., Wong, T.T., Ho, M.P., Hui, D., Mechanism of reinforcement in a nanoclay/polymer composite. Composites Part B Engineering, 42(6),1708-1712, 2011.
[41] Keshtkar, M., Nofar, M., Park, C.B. , Carreau, P.J. Extruded PLA/clay nanocomposite foams blown with supercritical CO2, Polymer, (55), 4077-4090, 2014.
[42] Bragg, W.L., The Diffraction of Short Electromagnetic Waves by a Crystal. Proceedings of the Cambridge Philosophical Society. 23 (45),153, 1929.
[43] Lee, Y. H., Park, C. B., Sain, M., Kontopoulou, M., Zheng ,W., Effects of Clay Dispersion and Content on the Rheological /Mechanical Properties, and Flame Retardance of HDPE Clay Nanocomposites. Journal of Applied Polymer Science, (105), 1993–1999, 2007.
[44] Nofar, M., Majithiya, K. Kuboki, T. and Park, C. B. The foamability of low-melt-strength linear polypropylene with nanoclay and coupling agent. Journal of Cellular Plastics, 48(3), 271–287, 2012.
[45] Chen, B., Evans, J.R.G. Impact strength of polymer-clay nanocomposites. Journal of Soft Matter, (5), 3572-3584. 2009.