﻿<?xml version="1.0" encoding="utf-8"?><doi_batch xmlns="http://www.crossref.org/schema/4.3.7" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.crossref.org/schema/4.3.7 http://www.crossref.org/schema/deposit/crossref4.3.7.xsd"><head><doi_batch_id>irdpt-2026051920</doi_batch_id><timestamp>20260519200939</timestamp><depositor><depositor_name>CMV Verlag</depositor_name><email_address>khoffmann@cmv-verlag.com</email_address></depositor><registrant>CMV Verlag</registrant></head><body><journal><journal_metadata language="fa"><full_title>Iran Polymer Technology, Research and Development</full_title><abbrev_title>irdpt</abbrev_title><issn media_type="electronic">2538-3345</issn></journal_metadata><journal_issue><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><journal_volume><volume>7</volume></journal_volume><issue>2</issue></journal_issue><journal_article publication_type="full_text"><titles><title>A Review On Biodegradable Mealworms Mechanism </title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>SeyedAmirHossein</given_name><surname> Mousavi Aghabagher</surname></person_name><person_name contributor_role="author" sequence="additional"><given_name>reza</given_name><surname>jahan mardi</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>5</first_page><last_page>16</last_page></pages><doi_data><doi>10.66224/irdpt.39418.7.2.5</doi><resource>http://irdpt.ir/en/Article/39418</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39418</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39418</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>1. Jambeck J.R., Geyer R., Wilcox C., Siegler T.R., Perryman M., Andrady A., Narayan R., Law K.L., Plastic Waste Inputs from Land Into the Ocean, Science, 347,768–771, 2015.</unstructured_citation></citation><citation key="ref2"><unstructured_citation>2. Fendall L.S., Sewell M.A., Contributing to Marine Pollution By Washing Your Face: Microplastics In Facial Cleansers, Marine Pollution Bulletin, 58, 1225–1228, 2009.</unstructured_citation></citation><citation key="ref3"><unstructured_citation>3. Jiang S., Su T., Zhao J., Wang Z., Biodegradation of Polystyrene by Tenebrio Molitor, Galleria Mellonella, and Zophobas Atratus Larvae and Comparison of Their Degradation Effects, Polymers, 13, 3539, 2021. </unstructured_citation></citation><citation key="ref4"><unstructured_citation>4. Wu W.M., Yang J. Criddle S.C., Microplastics Pollution and Reduction Strategies. Front, Environ. Sci. Eng. 11, 6-DOI 10.1007/S11783-017-0897-7, 2017.</unstructured_citation></citation><citation key="ref5"><unstructured_citation>5. Yang Y., Yang J., Wu W.M., Zhao J., Song Y.L., Gao L.C., Yang R.F, Jiang L., Biodegradation and Mineralization of Polystyrene by Plastic-Eating Mealworms: Part 1. Chemical and Physical Characterization and Isotopic Tests, Environ. Sci. Technol. 49 12080- 12086, 2015.</unstructured_citation></citation><citation key="ref6"><unstructured_citation>6. Kyu-Jin Jeong, Yuri Heo, Jun-Ran Kim, Ki-Jeong Hong, Pictorial Keys and Molecular Analysis of the Two Newly Recorded Species of Genus Tribolium (Coleoptera: Tenebrionidae), 2022.</unstructured_citation></citation><citation key="ref7"><unstructured_citation>7. Roberson W.H., Urban Insects and Arachnids, A Handbook of Urban Entomology. 554 Cambridge University Press. Cambridge, UK, Pp.126-127, 2005.</unstructured_citation></citation><citation key="ref8"><unstructured_citation>8. Brandon A.M., Gao S.H., Tian R., Ning D., Yang S.S., Zhou J., Wu W.M., Criddle C.S.,  Biodegradation of Polyethylene and Plastic Mixtures in Mealworms (Larvae of Tenebrio Molitor) and Effects on the Gut Microbiome. Environ Sci Technol., 52, 6526-6533, 2018.</unstructured_citation></citation><citation key="ref9"><unstructured_citation>9. Yang Y, Yang J, Wu W.M., Zhao J., Song Y.L., Gao L.C., Yang R.F and Jiang L., Biodegradation and Mineralization of Polystyrene by Plastic-Eating Mealworms: Part 2. Role of Gut Microorganisms, Environ. Sci. Technol., 49 12087-12093, 2015.</unstructured_citation></citation><citation key="ref10"><unstructured_citation>10. Yang Sh., Brandon A., Christopher J., Flanagan A., Yang J., Ning D., Yang Cai Sh., Fan H., Wang Zh., Ren J., Benbow E., Ren N., Robert M. Biodegradation of Polystyrene Wastes in Yellow Mealworms (Larvae of Tenebrio Molitor Linnaeus): Factors Affectin Biodegradation Rates and the Ability of Polystyrene-Fed Larvae to Complete their Life Cycle, Chemosphere, ISSN 0045-6535, 2017.</unstructured_citation></citation><citation key="ref11"><unstructured_citation>11. Boyandin A.N., Prudnikova S.V., Karpov V.A., Ivonin V.N., Đỗ N.L., Nguyễn T.H., Lê T.M.H., Filichev N.L., Levin A.L., Filipenko M.L., Microbial Degradation of Polyhydroxyalkanoates in Tropical Soils, International Biodeterioration &amp; Biodegradation, 83, 77-84, 2013.</unstructured_citation></citation><citation key="ref12"><unstructured_citation>12. Peng B.Y., Su Y., Chen Z., Chen J., Zhou X., Benbow M.E., Criddle C.S., Wu W.M., Zhang Y.,  Biodegradation of Polystyrene by Dark (Tenebrio Obscurus) and Yellow (Tenebrio Molitor) Mealworms (Coleoptera: Tenebrionidae), Environ. Sci. Technol, 53, 5256–5265, 2019.</unstructured_citation></citation><citation key="ref13"><unstructured_citation>13.  Bresan S., Sznajder A., Hauf W., Forchhammer K., Pfeiffer D., Jendrossek D., Polyhydroxyalkanoate (PHA) Granules Have No Phospholipids. Scientific Reports, 6, 2016.</unstructured_citation></citation><citation key="ref14"><unstructured_citation>14. Yang S.S., Ding M.Q., He L., Zhang C.H., Li Q.X., Xing D.F., Cao G.L., Zhao L., Ding J., Ren N.Q., Wu W.M., Biodegradation of Polypropylene by Yellow Mealworms (Tenebrio Molitor) and Superworms (Zophobas Atratus) Via Gut-Microbe-Dependent Depolymerization, Sci Total Environ. 2020.</unstructured_citation></citation><citation key="ref15"><unstructured_citation>15. Santo M., Weitsman R., Sivan A., The Role of the Copper-Binding Enzyme–Laccase–In the Biodegradation of Polyethylene by the Actinomycete Rhodococcus Ruber, Int. Biodeterior, Biodegrad. 84, 204-210, 2013.</unstructured_citation></citation><citation key="ref16"><unstructured_citation>16. Jeon H.J., Kim M.N., Isolation of Mesophilic Bacterium for Biodegradation of Polypropylene, Int. Biodeter. Biodegr. 115, 244-249. 2016.</unstructured_citation></citation><citation key="ref17"><unstructured_citation>17. Bombelli P., Howe C.J., Bertocchini F., Polyethylene Bio-Degradation by Caterpillars of the Wax Moth Galleria Mellonella, Curr. Biol, 27, R283–R293, 2017.</unstructured_citation></citation><citation key="ref18"><unstructured_citation>18. Riudavets J., Salas I., Pons M.J., Damage Characteristics Produced by Insect Pests in Packaging Film, J. Stored Prod. Res, 43, 564−570, 2007.</unstructured_citation></citation><citation key="ref19"><unstructured_citation>19. Farrelly T.A., Shaw I.C., Polystyrene As Hazardous Household Waste, in: Mmereki, D. (Eds), Household Hazardous Waste Management, Intechopen, London, 45−60, 2017.</unstructured_citation></citation><citation key="ref20"><unstructured_citation>20. Wang Y., Zhang Y., Investigation of Gut-Associated Bacteria in Tenebrio Molitor (Coleoptera: Tenebrionidae) Larvae Using Culture-Dependent and DGGE Methods, Ann. Entomol. Soc. Am., 108, 941–949. 2015.</unstructured_citation></citation><citation key="ref21"><unstructured_citation>21. Raddadi N., Fava F., Biodegradation of Oil-Based Plastics in the Environment: Existing Knowledge and Needs of Research and Innovation, Sci. Total. Environ, 679, 148-158. 2019.</unstructured_citation></citation><citation key="ref22"><unstructured_citation>22. Kundungal H., Gangarapu M., Sarangapani S., Patchaiyappan A., Devipriya S.P., Role of Pretreatment and Evidence for the Enhanced Biodegradation and Mineralization of Low-Density Polyethylene Films by Greater Waxworm, Environ Technol., Feb, 2021.</unstructured_citation></citation><citation key="ref23"><unstructured_citation>23. Kundungal H., Gangarapu M., Sarangapani S., Patchaiyappan A., Devipriya S.P., Efficient Biodegradation of Polyethylene (HDPE) Waste by the Plastic-Eating Lesser Waxworm (Achroia Grisella), Environ. Sci. Pollut. R., 26, 18509–18519, 2019.</unstructured_citation></citation></citation_list></journal_article><journal_article publication_type="full_text"><titles><title>Self-Assembly of Peptides and its Applications: A Review</title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>Soheila</given_name><surname>Emamyari</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>17</first_page><last_page>26</last_page></pages><doi_data><doi>10.66224/irdpt.39419.7.2.17</doi><resource>http://irdpt.ir/en/Article/39419</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39419</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39419</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>1. 1. Boncheva M., Whitesides G. M., Making Things by Self-Assembly, MRS Bull., 30, 736-742, 2005.</unstructured_citation></citation><citation key="ref2"><unstructured_citation>2. Jones R. A. L., Soft Condensed Matter, Oxford University Press, Oxford, First ed., 2002. </unstructured_citation></citation><citation key="ref3"><unstructured_citation>3. Jing H., Wang Y., Desai P. R., Ramamurthi K. S., Das S., Lipid Flip-Flop and Desorption from Supported Lipid Bilayers is Independent of Curvature, PLoS ONE, 15, e0244460, 2020. </unstructured_citation></citation><citation key="ref4"><unstructured_citation>4. Rathore S. S., Liu Y., Yu H., Wan C., Lee M., Yin Q., Stowell M. H. B., Shen J., Intracellular Vesicle Fusion Requires a Membrane-Destabilizing Peptide Located at the Juxtamembrane Region of the v-SNARE, Cell Rep., 29, 4583-4592.e3, 2019. </unstructured_citation></citation><citation key="ref5"><unstructured_citation>5. Peyret A., Zhao H., Lecommandoux S., Preparation and Properties of Asymmetric Synthetic Membranes Based on Lipid and Polymer Self-Assembly, Langmuir, 34, 3376-3385, 2018. </unstructured_citation></citation><citation key="ref6"><unstructured_citation>6. McManus J. J., Charbonneau P.,   Zaccarelli E.,  Asherie N., The Physics of Protein Self-Assembly, Curr. Opin. Colloid Interface Sci., 22, 73-79, 2016. </unstructured_citation></citation><citation key="ref7"><unstructured_citation>7. Gui H., Guan G., Zhang T., Guo Q., Microphase-Separated, Hierarchical Macroporous Polyurethane from a Nonaqueous Emulsion-Templated Reactive Block Copolymer, Chem. Eng. J., 365, 369-377, 2019.</unstructured_citation></citation><citation key="ref8"><unstructured_citation>8. Glagolev M. K., Glagoleva A. A., Vasilevskaya V. V., Microphase Separation in Helix-Coil Block Copolymer Melts: Computer Simulation, Soft Matter, 17, 8331-8342, 2021. </unstructured_citation></citation><citation key="ref9"><unstructured_citation>9. Tornesello A. L., Borrelli A., Buonaguro L., Buonaguro F. M., Tornesello M. L., Antimicrobial Peptides as Anticancer Agents: Functional Properties and Biological Activities, Molecules, 25, 2850, 2020. </unstructured_citation></citation><citation key="ref10"><unstructured_citation>10. Ghadiri M. R., Granja J. R., Milligan R. A., McRee D. E., Khazanovich N., Self-Assembling Organic Nanotubes Based on a Cyclic Peptide Architecture, Nature, 366, 324-327, 1993. </unstructured_citation></citation><citation key="ref11"><unstructured_citation>11. Hu K., Xiong W., Sun C., Wang C., Li J., Yin F., Jiang Y., Zhang M.-R., Li Z., Wang X., Li Z., Self-Assembly of Constrained Cyclic Peptides Controlled by Ring Size, CCS Chem., 2, 42-51, 2020.</unstructured_citation></citation><citation key="ref12"><unstructured_citation>12. Jian H., Wang M., Dong Q., Li J., Wang A., Li X., Ren P., Bai S., Dipeptide Self-Assembled Hydrogels with Tunable Mechanical Properties and Degradability for 3D Bioprinting, ACS Appl. Mater. Interfaces, 11, 46419-46426, 2019. </unstructured_citation></citation><citation key="ref13"><unstructured_citation>13. Hartgerink J. D., Beniash E., Stupp S. I., Self-Assembly and Mineralization of Peptide-Amphiphile Nanofibers, Science, 294, 1684-1688, 2001. </unstructured_citation></citation><citation key="ref14"><unstructured_citation>14. Sun L., Zheng C., Webster T. J., Self-Assembled Peptide Nanomaterials for Biomedical Applications: Promises and Pitfalls, Int. J. Nanomedicine., 12, 73-86, 2017. </unstructured_citation></citation><citation key="ref15"><unstructured_citation>15. Vauthey S., Santoso S., Gong H., Watson N., Zhang S., Molecular Self-Assembly of Surfactant-Like Peptides to Form Nanotubes and Nanovesicles, Proc. Natl. Acad. Sci. USA, 99, 5355-5360, 2002. </unstructured_citation></citation><citation key="ref16"><unstructured_citation>16. Rodrigo E., Walter M., Reza M., Castelletto V., Ruokolainen J., Connon C., Alves W., Hamley I., Self-Assembled Arginine-Capped Peptide Bolaamphiphile Nanosheets for Cell Culture and Controlled Wettability Surfaces, Biomacromolecules, 16, 3180-3190, 2015. </unstructured_citation></citation><citation key="ref17"><unstructured_citation>17. Jun S., Hong Y., Imamura H., Ha B. Y., Bechhoefer J., Chen P., Self-Assembly of the Ionic Peptide EAK16: The Effect of Charge Distributions on Self-Assembly, Biophys. J., 87, 1249-1259, 2004. </unstructured_citation></citation><citation key="ref18"><unstructured_citation>18. Wu F., Fu D., Self-Assembling Peptide as a Carrier for Hydrophobic Anticancer Drug Combretastatin A4-Characterization and In Vitro Delivery, J. Comput. Theor. Nanosci., 13, 2334-2339, 2016. </unstructured_citation></citation><citation key="ref19"><unstructured_citation>19. Emamyari S., Fazli H., All-Atom Molecular Dynamics Study of EAK16 Peptide: The Effect of pH on Single-Chain Conformation, Dimerization and Self-Assembly Behavior, Eur. Biophys. J., 43, 143-155, 2014. </unstructured_citation></citation><citation key="ref20"><unstructured_citation>20. Emamyari S., Fazli H., pH-Dependent Self-Assembly of EAK16 Peptides in the Presence of a Hydrophobic Surface: Coarse-Grained Molecular Dynamics Simulation, Soft Matter, 10, 4248-4257, 2014. </unstructured_citation></citation><citation key="ref21"><unstructured_citation>21. Li B., You N., Liang Y., Zhang Q., Zhang W., Chen M., Pang X., Organic Templates for Inorganic Nanocrystal Growth, Energy Environ. Mater., 2, 38-54, 2019. </unstructured_citation></citation><citation key="ref22"><unstructured_citation>22. Wang C.-C., Wei S.-C., Luo S.-C., Recent Advances and Biomedical Applications of Peptide-Integrated Conducting Polymers, ACS Appl. Bio Mater., 5, 1916-1933, 2022.</unstructured_citation></citation><citation key="ref23"><unstructured_citation>23. Reches, M., Gazit E., Casting Metal Nanowires within Discrete Self-Assembled Peptide Nanotubes, Science, 300, 625-627, 2003. </unstructured_citation></citation><citation key="ref24"><unstructured_citation>24. Gelain F., Luo Z., Zhang S., Self-Assembling Peptide EAK16 and RADA16 Nanofiber Scaffold Hydrogel, Chem. Rev., 120, 13434-13460, 2020. </unstructured_citation></citation><citation key="ref25"><unstructured_citation>25. Gelain F., Luo Z., Rioult M., Zhang S., Self-assembling Peptide Scaffolds in the Clinic, NPJ Regen. Med., 6, 9, 2021. </unstructured_citation></citation><citation key="ref26"><unstructured_citation>26. Kisiday J., Jin M., Kurz B., Hung H., Semino C., Zhang S., Grodzinsky A. J., Self-Assembling Peptide Hydrogel Fosters Chondrocyte Extracellular Matrix Production and Cell Division: Implications for Cartilage Tissue Repair, Proc. Natl. Acad. Sci. USA, 99, 9996-10001, 2002. </unstructured_citation></citation><citation key="ref27"><unstructured_citation>27. Hudalla G. H., Murphy W. L. Mimicking the Extracellular Matrix: The Intersection of Matrix Biology and Biomaterials, Royal Society of Chemistry, Cambridge, UK, 2016. </unstructured_citation></citation><citation key="ref28"><unstructured_citation>28. Keyes-Baig C., Duhamel J., Fung S., Bezaire J., Chen P., Self-Assembling Peptide as a Potential Carrier of Hydrophobic Compounds, J. Am. Chem. Soc., 126, 7522-7532, 2004. </unstructured_citation></citation><citation key="ref29"><unstructured_citation>29. Yemini M., Reches M., Rishpon J., Gazit E., Novel Electrochemical Biosensing Platform Using Self-Assembled Peptide Nanotubes, Nano Lett., 5, 183-186, 2005.</unstructured_citation></citation><citation key="ref30"><unstructured_citation>30. Tublin J. M., Adelstein J. M., Monte F. d., Combs C. K., Wold L. E., Getting to the Heart of Alzheimer Disease, Circ. Res., 124,142-149, 2019.</unstructured_citation></citation></citation_list></journal_article><journal_article publication_type="full_text"><titles><title>The studying on mechanism, properties and application of shape memory polymers</title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>Hamidreza</given_name><surname>Haydari</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>27</first_page><last_page>35</last_page></pages><doi_data><doi>10.66224/irdpt.39420.7.2.27</doi><resource>http://irdpt.ir/en/Article/39420</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39420</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39420</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>1 . Zhang X., Chen L., Lim K.H., Gonuguntla S., Lim K. W., Pranantyo D., Yong W.P., Yam W.J.T., Low Z., Teo W.J., Nien H. P., Loh W Q., Soh S.,. The Pathway to Intelligence: Using Stimuli-Responsive Materials as Building Blocks for Constructing Smart an Functional Systems, Adv. Mater., 31, 1804540, 2019.</unstructured_citation></citation><citation key="ref2"><unstructured_citation>2. Hager M.D., Bode S., Weber C., Schubert U.S., Shape Mem ory Polymers: Past, Present and Future Developments, Prog. Poly. Sci., 3-33, 2015.</unstructured_citation></citation><citation key="ref3"><unstructured_citation>3. Hu J., Zhu Y., Huang H., Lu J., Recent Advances in Shape–memory Polymers: Structure, Mechanism, Functionality, Mod eling and Applications., Prog Pol. Sci., 37, 1720-1763, 2012.</unstructured_citation></citation><citation key="ref4"><unstructured_citation>4. Liu W., Electroactive Shape Memory Composites with TiO2 Whiskers for Switching an Electrical Circuit., Mater.  De s.,143, 196-203, 2018.</unstructured_citation></citation><citation key="ref5"><unstructured_citation>5. Zhang F., Nano/Microstructures of Shape Memory Polymers: From Materials to Applications., Nanoscale Horiz., 5, 1155-1173, 2020.</unstructured_citation></citation><citation key="ref6"><unstructured_citation>6. Zhang F., Zhao T., Ruiz-Molina D., Liu Y., Roscini C., Leng J., &amp; Smoukov S. K., Shape Memory Polyurethane Mi cro cap sules with Active Deformation, ACS Appl. Mater. In terfaces, 12, 47059-47064, 2020.</unstructured_citation></citation><citation key="ref7"><unstructured_citation>7. Lan X., Liu L., Zhang F., Liu Z., Wang L., Li Q., Peng F., Hao S., Dai W., Wan X and Tang Y. World’s First Spaceflight on-Orbit Demonstration of a Flexible Solar Array System Based on Shape Memory Polymer Composites, Sci. China Technol. Sci., 63, 1436-1451, 2020.</unstructured_citation></citation><citation key="ref8"><unstructured_citation>8. Xia Y., He Y., Zhang F., Liu Y., Leng J., A Review of Shape Memory Polymers and Composites: Mechanisms, Materials, and Applications, Adv. Mater., 33, 2000713, 2021.</unstructured_citation></citation><citation key="ref9"><unstructured_citation>9. Huang X., Zhang F., Leng J., Metal Mesh Embedded in Colorless Shape Memory Polyimide for Flexible Transparent Electric-heater and Actuators, Appl. Mater. Today., 21, 100797, 2020.</unstructured_citation></citation><citation key="ref10"><unstructured_citation>10. Huang X., Zhang F., Liu Y., &amp;  Leng J., Active and Deformable Organic Electronic Devices Based on Conductive Shape Memory Polyimide, ACS Appl. Mater. Interfaces, 12, 23236-23243, 2020.</unstructured_citation></citation><citation key="ref11"><unstructured_citation>11. Lendlein A., Kelch S., Shape-memory Polymers, Angew Chem Int Ed, 41, 2034-2057, 2002.</unstructured_citation></citation><citation key="ref12"><unstructured_citation>12. Leng J., Lan X., Liu Y., Du S., Shape-Memory Polymers and Their Composites: Stimulus Methods and Applications, Prog. Mater. Sci., 56, 1077-1135, 2001.</unstructured_citation></citation><citation key="ref13"><unstructured_citation>13. Zhao Q., Qi H.J., Xie T., Recent Progress in Shape Memory Polymer: New Behavior, Enabling Materials, and Mechanistic Understanding, Prog. Polym. Sci., 79-120, 2015.</unstructured_citation></citation><citation key="ref14"><unstructured_citation>14. Lendlein A., Oliver EC., Gould. Reprogrammable Re cov ery and Actuation Behavior of Shape-Memory Poly mers, Nat. Rev. Mater., 4, 116-133, 2019.</unstructured_citation></citation><citation key="ref15"><unstructured_citation>15. Aoki D., Teramoto Y., Nishio Y., SH-Containing Cellu lose Acetate Derivatives: Preparation and Characterization as a Shape Memory-Recovery Material, Biomacromolecules, 8, 3749-3757, 2007.</unstructured_citation></citation><citation key="ref16"><unstructured_citation>16. Chen S,. Hu J., Zhuo H., Yuen C., Chan L., Study on the Thermal-induced Shape Memory Effect of Pyridine Containing Supramolecular Polyurethane, Polymer, 51, 240-248, 2010.</unstructured_citation></citation><citation key="ref17"><unstructured_citation>17. Chen S., Hu J., Yuen C.W., Chan L., Supramolecular Poly urethane Networks Containing Pyridine Moieties for Shape Memory Materials, Mater. Lett., 63, 1462-1464, 2009.</unstructured_citation></citation><citation key="ref18"><unstructured_citation>18. Chen S., Hu J., Yuen C-W., Chan L., Novel Moisture-sensitive Shape Memory Polyurethanes Containing Pyridine Moi eties, Polymer, 50, 4424-4428, 2009.</unstructured_citation></citation><citation key="ref19"><unstructured_citation>19. Ying S., Yoonessi M., and Weiss R.A., High Temperature Shape Memory Polymers, Macromolecules, 46, 4160−4167, 2013.</unstructured_citation></citation><citation key="ref20"><unstructured_citation>20. Whittell G.R., Hager M.D., Schubert U.S., Manners I., Functional Soft Materials from Metallopolymers and Metallosupramolecular Polymers, Nat. Mater., 10, 176-188, 2011.</unstructured_citation></citation><citation key="ref21"><unstructured_citation>21. Liu C., Qin H., and Mather P. T., Review of Progress in Shape-Memory Polymers, J. Mater. Chem., 17, 1543–1558, 2007.</unstructured_citation></citation><citation key="ref22"><unstructured_citation>22. Liem H., Yeung L. Y., and Hu J. L., A Prerequisite for the Effective Transfer of the Shape-Memory Effect to Cotton Fi bers, Smart Materials and Structures, 16, 45-57, 2007.</unstructured_citation></citation><citation key="ref23"><unstructured_citation>23. Wang L., Zhang F., Liu Y., &amp; Leng J., Shape Memo ry Poly mer Fibers: Materials, Structures, and Applications, Ad v. Fib. Mater., 1-19, 2021.</unstructured_citation></citation><citation key="ref24"><unstructured_citation>24. Zhao J., &amp; Cui W., Functional Electrospun Fibers for Local Therapy of Cancer, Ad v. Fib. Mater., 2, 229-245, 2020.</unstructured_citation></citation><citation key="ref25"><unstructured_citation>25. Maitland D.J., Metzger M.F., Schumann D., Lee A., Wil son T S, Photothermal Properties of Shape Memory Poly mer Mi cro-actuators for Treating Stroke, Lasers. Surg. Med., 30, 1-11, 2002.</unstructured_citation></citation><citation key="ref26"><unstructured_citation>26. Metzger M.F., Wilson T.S., Schumann D., Matthews D L., Maitland D J., Mechanical Properties of Mechanical Actuator for Treating Ischemic Stroke, Bio. Micro., 4, 89-96, 2002.</unstructured_citation></citation><citation key="ref27"><unstructured_citation>27. Rolland P.H., Mekkaoui C., Vidal V., Berry J.L., Moore J.E., Moreno M., Amabile P., Bartoli J M., Compliance Matching Stent Placement in the Carotid Artery of the Swine Pro motes Optimal Blood Flow and Attenuates Restenosis, Eur. J. Vasc. En dovasc. Surg., 28, 431-438, 2004.</unstructured_citation></citation><citation key="ref28"><unstructured_citation>28. Higashida R.T., Meyers P.M., Intracranial Angioplasty and Stenting for Cerebral Atherosclerosis: New Treatments for Stroke are Needed, Neuroradiology, 48, 367-372, 2006.</unstructured_citation></citation><citation key="ref29"><unstructured_citation>29. Ajili S H., Ebrahimi N G., Soleimani M., Polyurethane/polycaprolactane Blend With Shape Memory Effect as a Pro posed Material for Cardiovascular Implants, Acta. Bio ma ter., 5, 1519-1530, 2009.</unstructured_citation></citation><citation key="ref30"><unstructured_citation>30. Li F., Yanju L., Leng J., Progress of Shape Memory Polymers and Their Composites in Aerospace Ap pli cations, Smart Mater. Struct., 28, 103003, 2019.</unstructured_citation></citation><citation key="ref31"><unstructured_citation>31. Schueler R.M. Self-deploying Trusses Containing Shape-memory Polymers, NASA Tech Briefs, 20-1, 2008.</unstructured_citation></citation><citation key="ref32"><unstructured_citation>32. Liu Y., Du H., Liu L., Leng J., Shape Memory Polymers and Their Composites in Aerospace Applications: A Review, Smart Mater. Struct., 23, 1-22, 2014.</unstructured_citation></citation><citation key="ref33"><unstructured_citation>33. Tengfei L., Tang Z., and Guo B., New Design Strate gy for Reversible Plasticity Shape Memory Polymers with De form able Glassy Aggregates, ACS Appl. Mater. Interfaces., 6, 21060-21068, 2014.</unstructured_citation></citation></citation_list></journal_article><journal_article publication_type="full_text"><titles><title>Semi-Experimental Methods for Determination of Flory-Huggins Interaction Parameter in Polymeric Mixtures: A Review</title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>Zahra</given_name><surname>Khoubi-Arani</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>37</first_page><last_page>44</last_page></pages><doi_data><doi>10.66224/irdpt.39421.7.2.37</doi><resource>http://irdpt.ir/en/Article/39421</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39421</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39421</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>1. Gao M., Liang Z., Geng Y., Ye L., Significance of Thermodynamic Interaction Parameters in Guiding the Optimization of Polymer: Nonfullerene Solar Cells, Chemical Communications, 56, 12463-12478, 2020.</unstructured_citation></citation><citation key="ref2"><unstructured_citation>2. Ye L., Collins B.A., Jiao X.C., Zhao J. B., Yan H., Ade H., Miscibility-Function Relations in Organic Solar Cells: Significance of Optimal Miscibility in Relation to Percolation, Advanced Energy Materials, 8, 1703058, 2018.</unstructured_citation></citation><citation key="ref3"><unstructured_citation>3. Ségolène A., Zhishuai G., Everett S. Zofchak M.C., Fredrickson G.H., Ganesan V., Hawker C.J., Lynd N.A., Non-Intuitive Trends in Flory–Huggins Interaction Parameters in Polyether-Based Polymers, Macromolecules, 54, 6670–6677, 2021.</unstructured_citation></citation><citation key="ref4"><unstructured_citation>4. Aid S., Eddhahak A., Khelladi S., Ortega Z., Chaabani S., Tcharkhtchi A., On the Miscibility of PVDF/Pmma Polymer Blends: Thermodynamics, Experimental and Numerical Investigations, Polymer Testing, 73, 222-231, 2019.</unstructured_citation></citation><citation key="ref5"><unstructured_citation>5. Ma R., Li G., Li D., Liu T., Luo Z., Zhang G., Zhang M., Wang Z., Luo S., Yang T., Liu F., Yan H., Tang B., Understanding the Effect of End Group Halogenation in Tuning Miscibility and Morphology of High-Performance Small Molecular Acceptors, Solar RRL, 4, 2000250, 2020.</unstructured_citation></citation><citation key="ref6"><unstructured_citation>6. Paulin J.A., Lopez-Aguilar J.E., Fouconnier B., Vargas R.O., Lopez-Serrano F., Revisiting the Flory–Rehner Equation: Taking a Closer Look at the Flory–Huggins Interaction Parameter and Its Functionality with Temperature and Concentration with Nipa as a Case Example, Polymer Bulletin, 79, 6709–6732, 2022.</unstructured_citation></citation><citation key="ref7"><unstructured_citation>7. Liu Y., Xian K., Peng Z., Gao M., Shi Y., Deng Y., Geng Y., Ye L., Tuning the Molar Mass of P3ht Via Direct Arylation Polycondensation Yields Optimal Interaction and High Efficiency in Nonfullerene Organic Solar Cells, Journal of Materials Chemistry A, 9, 19874-19885, 2021.</unstructured_citation></citation><citation key="ref8"><unstructured_citation>8. Friedrich C., Riemann R.E., Rheological and Thermodynamic Study of the Miscible Blend Polystyrene/Poly(Cyclohexyl Methacrylate), Polymer, 37, 2499-2507, 1996.</unstructured_citation></citation><citation key="ref9"><unstructured_citation>9. Chopra D., Kontopoulou M., Vlassopoulos D., Hatzikiriakos S. G., Effect of Maleic Anhydride Content on the Rheology and Phase Behavior of Poly(Styrene-Co-Maleic Anhydride)/Poly(Methyl Methacrylate) Blends, Rheologica Acta, 41, 10-24, 2002.</unstructured_citation></citation><citation key="ref10"><unstructured_citation>10. Huang Y., Jiang S., Li G., Chen D., Effect of Fillers on the Phase Stability of Binary Polymer Blends: A Dynamic Shear Rheology Study, Acta Materialia, 53, 5117–5124, 2005.</unstructured_citation></citation><citation key="ref11"><unstructured_citation>11. Lee J.H., Balsara N.P., Chakraborty A.K., Krishnamoorti R., Hammouda B., Thermodynamics and Phase Behavior of Block Copolymer/Homopolymer Blends with Attractive and Repulsive Interactions, Macromolecules, 35, 7748–7757, 2002.</unstructured_citation></citation><citation key="ref12"><unstructured_citation>12. Huang J.C., Determination of Polymer–Polymer Interaction Parameters Using Inverse Gas Chromatography, Journal of Applied Polymer Science, 671-680, 90, 2003. </unstructured_citation></citation><citation key="ref13"><unstructured_citation>13. Ugraskan V., Isik B., Yazici O., Cakar F., Thermodynamic Characterization of Sodium Alginate by Inverse Gas Chromatography, Journal of Chemical &amp; Engineering Data, 65, 1795-1801, 2020.</unstructured_citation></citation><citation key="ref14"><unstructured_citation>14. Emerson J.A., Toolan D.T., Howse J.R., Furs E. M., Thomas H. Epps I., Determination of Solvent−Polymer and Polymer−Polymer Flory− Huggins Interaction Parameters for Poly(3-Hexylthiophene) Via Solvent Vapor Swelling, Macromolecules, 46, 6533−6540, 2013.</unstructured_citation></citation><citation key="ref15"><unstructured_citation>15. Zhang L., Yi N., Zhou W., Yu Z., Liu F., Chen Y., Miscibility Tuning for Optimizing Phase Separation and Vertical Distribution toward Highly Efficient Organic Solar Cells, Advanced Science, 6, 1900565, 2019.</unstructured_citation></citation><citation key="ref16"><unstructured_citation>16. Ai Q., Zhou W., Zhang L., Huang L., Yin J., Yu Z., Liu S., Ma W., Zeng J., Chen Y., Ternary Organic Solar Cells: Compatibility Controls for Morphology Evolution of Active Layers, Journal of Materials Chemistry C, 5, 10801-10812, 2017.</unstructured_citation></citation><citation key="ref17"><unstructured_citation>17. Flory P.J., Principles of Polymer Chemistry, Cornell University Press, USA, 1953.</unstructured_citation></citation><citation key="ref18"><unstructured_citation>18. Ghasemi M., Ye L., Zhang Q., Yan L., Kim J.H., Awartani O., You W., Gadisa A., Ade H., Panchromatic Sequentially Cast Ternary Polymer Solar Cells, Advanced Materials, 29, 1604603, 2017.</unstructured_citation></citation><citation key="ref19"><unstructured_citation>19. Kim J. Y., Order–Disorder Phase Equilibria of Regioregular Poly (3-Hexylthiophene-2, 5-Diyl) Solution, Macromolecules, 51, 9026-9034, 2018.</unstructured_citation></citation><citation key="ref20"><unstructured_citation>20. Wang Q., Li M., Peng Z., Kirby N., Deng Y., Ye L., Geng Y., Calculation Aided Miscibility Manipulation Enables Highly Efficient Polythiophene:Nonfullerene Photovoltaic Cells, Science China Chemistry, 64, 478-487, 2021.</unstructured_citation></citation><citation key="ref21"><unstructured_citation>21. Dowland S.A., Salvador M., Perea J.D., Gasparini N., Langner S., Rajoelson S., Ramanitra H.H., Lindner B.D., Osvet A., Brabec C.J., Suppression of Thermally Induced Fullerene Aggregation in Polyfullerene-Based Multiacceptor Organic Solar Cells, ACS Applied Materials &amp; Interfaces, 9, 10971-10982, 2017.</unstructured_citation></citation><citation key="ref22"><unstructured_citation>22. Liang Z., Li M., Wang Q., Qin Y., Stuard S.J., Peng Z., Deng Y., Ade H., Ye L., Geng Y., Optimization Requirements of Efficient Polythiophene: Nonfullerene Organic Solar Cells, Joule, 1278-1295, 2020.</unstructured_citation></citation><citation key="ref23"><unstructured_citation>23. Kouijzer S., Michels J.J., van den Berg M., Gevaerts V.S., Turbiez M., Wienk M. M., Janssen R. A.J., Predicting Morphologies of Solution Processed Polymer:Fullerene Blends, Journal of the American Chemical Society, 135, 12057-12067, 2013.</unstructured_citation></citation><citation key="ref24"><unstructured_citation>24. Lv J., Tang H., Huang J., Yan C., Liu K., Yang Q., Hu D., Singh R., Lee J., Lu S., Additive-Induced Miscibility Regulation and Hierarchical Morphology Enable 17.5% Binary Organic Solar Cells, Energy &amp; Environmental Science, 14, 3044-3052, 2021.</unstructured_citation></citation><citation key="ref25"><unstructured_citation>25. Nilsson S., Bernasik A., Budkowski A., Moons E., Morphology and Phase Segregation of Spin-Casted Films of Polyfluorene/Pcbm Blends, Macromolecules, 40, 8291-8301, 2007.</unstructured_citation></citation><citation key="ref26"><unstructured_citation>26. Li D., Neumann A., A Reformulation of the Equation of State for Interfacial Tensions, Journal of Colloid and Interface Science, 137, 304-307, 1990.</unstructured_citation></citation><citation key="ref27"><unstructured_citation>27. Li D., Neumann A., Contact Angles on Hydrophobic Solid Surfaces and Their Interpretation, Journal of Colloid and Interface Science, 148, 190-200, 1992.</unstructured_citation></citation><citation key="ref28"><unstructured_citation>28. Kim D.Y., Park J.W., Lee D.Y., Seo K.H., Correlation between the Crosslink Characteristics and Mechanical Properties of Natural Rubber Compound Via Accelerators and Reinforcement, Polymers, 12, 2020, 2020.</unstructured_citation></citation><citation key="ref29"><unstructured_citation>29. Riedl B., Prud'homme R. E., The Determination of the Thermodynamic Interaction Parameter Χ in Polymer Blends, Polymer Engineering &amp; Science, 24, 1291-1299, 1984.</unstructured_citation></citation><citation key="ref30"><unstructured_citation>30. Mohammadi-Jam S., Waters K.E., Inverse Gas Chromatography Applications: A Review, Advances in Colloid and Interface Science, 212, 21-44, 2014.</unstructured_citation></citation><citation key="ref31"><unstructured_citation>31. Fernandez-Berridi M.J., Eguiazabal J.I., Elorza J.M., Iruin J.J., Vapor-Pressure Osmometry and Inverse Gas Chromatography in the Analysis of Thermodynamic Properties of Polymer Solutions, Journal of Polymer Science Part B: Polymer Physics, 21, 859-868, 1983.</unstructured_citation></citation></citation_list></journal_article><journal_article publication_type="full_text"><titles><title>Terminology to Support Manufacturing Process Characterization and Assessment for Sustainable Production</title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>HamidReza</given_name><surname>Sabbaghi</surname></person_name><person_name contributor_role="author" sequence="additional"><given_name>Ali</given_name><surname>Abbasian</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>45</first_page><last_page>49</last_page></pages><doi_data><doi>10.66224/irdpt.39422.7.2.45</doi><resource>http://irdpt.ir/en/Article/39422</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39422</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39422</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>Ian C. Garretson, Mahesh Mani, Swee Leong, Kevin W. Lyons, Karl R. Haapala; “Terminology to support manufacturing process characterization and assessment for sustainable production”; ELSEVIER, Journal of Cleaner Production 139 (August 2016) 986-1000</unstructured_citation></citation></citation_list></journal_article><journal_article publication_type="full_text"><titles><title>Terminology to Support Manufacturing Process Characterization and Assessment for Sustainable Production</title></titles><contributors><person_name contributor_role="author" sequence="first"><given_name>HamidReza</given_name><surname>Sabbaghi</surname></person_name><person_name contributor_role="author" sequence="additional"><given_name>Ali</given_name><surname>Abbasian</surname></person_name></contributors><publication_date media_type="online"><month>9</month><day>21</day><year>2022</year></publication_date><pages><first_page>51</first_page><last_page>67</last_page></pages><doi_data><doi>10.66224/irdpt.39423.7.2.51</doi><resource>http://irdpt.ir/en/Article/39423</resource><collection property="crawler-based"><item crawler="iParadigms"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item><item crawler="google"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item><item crawler="msn"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item><item crawler="altavista"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item><item crawler="yahoo"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item><item crawler="scirus"><resource>http://irdpt.ir/en/Article/Download/39423</resource></item></collection><collection property="text-mining"><item><resource mime_type="application/pdf">http://irdpt.ir/en/Article/Download/39423</resource></item></collection></doi_data><citation_list><citation key="ref1"><unstructured_citation>Ian C. Garretson, Mahesh Mani, Swee Leong, Kevin W. Lyons, Karl R. Haapala; “Terminology to support manufacturing process characterization and assessment for sustainable production”; ELSEVIER, Journal of Cleaner Production 139 (August 2016) 986-1000</unstructured_citation></citation></citation_list></journal_article></journal></body></doi_batch>