Development of an electroactive biopolymer-based membrane and characterization of mechanical actuator properties for applications in electromechanical smart products
Electroactive polymers (EAPs) are functional materials that, stimulated by an electric field, change its composition or molecular structure so that the material expands, contracts, or bends (Guzmán et al. in J Appl Polymer Sci 112:3284–32931, 2009) and (Rappaport et al. in A glucose fuiel cell for i...
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creator | Cuellar-Monterrubio, A. A. Cortes-Ramirez, Jorge A. Stawski, D. Jimenez-Garcia, V. E. Puchalski, M. Chrzanowski, M. Cruz-Díaz, S. G. Gendaszewska-Darmach, E. Krucińska, I. Koziołkiewicz, M. |
description | Electroactive polymers (EAPs) are functional materials that, stimulated by an electric field, change its composition or molecular structure so that the material expands, contracts, or bends (Guzmán et al. in J Appl Polymer Sci 112:3284–32931, 2009) and (Rappaport et al. in A glucose fuiel cell for implantable brain machine interfaces, Massachusetts Institute of Technology, Cambridge, 2012). The literature has shown that Chitin and Chitosan are considerably versatile and promising biomaterials to be used as EAPs in medical and biomedical applications as cochlear implant, and due to its chemical structure, is considered a biocompatible, bio-adhesive and biodegradable polymer (Falguni et al. in Proceedings of the 2010 IEEE Students Technology Simposium, IIT Kharagpur, 2010). Their amino and hydroxyl groups can be easily modified by organic (Younes et al. in Process Biochem 47:2032–2039, 2012) or cross-linked reactions, to obtain sophisticated functional medical devices (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). This research collaboration aims to prove that Chitosan-based membranes could be synthetized as EAPs; as well as determine that there are useful ionic flow and movement responses on them. Chitosan-based membranes were prepared by the film-casting traditional method, treated with Tetraammineplatinum (II) chloride hydrate and Silver Nitrate by the ion exchange polymer method; and then cast with Sodium and Potassium Chloride as conductive salts. Membranes were tested at different voltages, as well as the chemical tests as FTIR, XRD, TGA and tensile strength and elongation as a function of the treatment applied. Film properties depended on its morphology, which is affected by Molecular Weight, degree of
N
-acetylation (DDA%), solvent evaporation and free amine regenerating mechanism (Younes et al. in Process Biochem 47:2032–2039, 2012) and (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). Samples exhibited good displacement increasing as the applied voltage increased; best tip displacement was located as 17 mm at 7 V; and best theoretical δ value is found at 29.6 mm. |
doi_str_mv | 10.1007/s12008-021-00783-z |
format | Article |
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N
-acetylation (DDA%), solvent evaporation and free amine regenerating mechanism (Younes et al. in Process Biochem 47:2032–2039, 2012) and (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). Samples exhibited good displacement increasing as the applied voltage increased; best tip displacement was located as 17 mm at 7 V; and best theoretical δ value is found at 29.6 mm.</description><identifier>ISSN: 1955-2513</identifier><identifier>EISSN: 1955-2505</identifier><identifier>DOI: 10.1007/s12008-021-00783-z</identifier><language>eng</language><publisher>Paris: Springer Paris</publisher><subject>Acetylation ; Actuators ; Aqueous solutions ; Bends ; Biocompatibility ; Biomedical materials ; Biopolymers ; CAE) and Design ; Chemical bonds ; Chemical tests ; Chitin ; Chitosan ; Chloride ; Cochlear implants ; Computer-Aided Engineering (CAD ; Crustaceans ; Electric fields ; Electroactive polymers ; Electron microscopes ; Electronics and Microelectronics ; Elongation ; Engineering ; Engineering Design ; Functional materials ; Hydroxyl groups ; Industrial Design ; Instrumentation ; Ion exchange ; Ion exchange resins ; Man-machine interfaces ; Mechanical Engineering ; Mechanical properties ; Medical devices ; Medical electronics ; Membranes ; Molecular structure ; Morphology ; Nitrates ; Original Paper ; Polymers ; Potassium ; Scanning electron microscopy ; Silver ; Smart materials ; Sodium ; Surgical implants ; Tensile strength</subject><ispartof>International journal on interactive design and manufacturing, 2022-09, Vol.16 (3), p.1113-1123</ispartof><rights>The Author(s), under exclusive licence to Springer-Verlag France SAS, part of Springer Nature 2022</rights><rights>The Author(s), under exclusive licence to Springer-Verlag France SAS, part of Springer Nature 2022.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-c270t-543941a82c58807672bda8694acb115cb8c2524b40ceecfe367fa602c23aafb73</cites><orcidid>0000-0003-3735-0795</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://link.springer.com/content/pdf/10.1007/s12008-021-00783-z$$EPDF$$P50$$Gspringer$$H</linktopdf><linktohtml>$$Uhttps://www.proquest.com/docview/2919324191?pq-origsite=primo$$EHTML$$P50$$Gproquest$$H</linktohtml><link.rule.ids>314,780,784,21387,27923,27924,33743,41487,42556,43804,51318,64384,64388,72240</link.rule.ids></links><search><creatorcontrib>Cuellar-Monterrubio, A. A.</creatorcontrib><creatorcontrib>Cortes-Ramirez, Jorge A.</creatorcontrib><creatorcontrib>Stawski, D.</creatorcontrib><creatorcontrib>Jimenez-Garcia, V. E.</creatorcontrib><creatorcontrib>Puchalski, M.</creatorcontrib><creatorcontrib>Chrzanowski, M.</creatorcontrib><creatorcontrib>Cruz-Díaz, S. G.</creatorcontrib><creatorcontrib>Gendaszewska-Darmach, E.</creatorcontrib><creatorcontrib>Krucińska, I.</creatorcontrib><creatorcontrib>Koziołkiewicz, M.</creatorcontrib><title>Development of an electroactive biopolymer-based membrane and characterization of mechanical actuator properties for applications in electromechanical smart products</title><title>International journal on interactive design and manufacturing</title><addtitle>Int J Interact Des Manuf</addtitle><description>Electroactive polymers (EAPs) are functional materials that, stimulated by an electric field, change its composition or molecular structure so that the material expands, contracts, or bends (Guzmán et al. in J Appl Polymer Sci 112:3284–32931, 2009) and (Rappaport et al. in A glucose fuiel cell for implantable brain machine interfaces, Massachusetts Institute of Technology, Cambridge, 2012). The literature has shown that Chitin and Chitosan are considerably versatile and promising biomaterials to be used as EAPs in medical and biomedical applications as cochlear implant, and due to its chemical structure, is considered a biocompatible, bio-adhesive and biodegradable polymer (Falguni et al. in Proceedings of the 2010 IEEE Students Technology Simposium, IIT Kharagpur, 2010). Their amino and hydroxyl groups can be easily modified by organic (Younes et al. in Process Biochem 47:2032–2039, 2012) or cross-linked reactions, to obtain sophisticated functional medical devices (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). This research collaboration aims to prove that Chitosan-based membranes could be synthetized as EAPs; as well as determine that there are useful ionic flow and movement responses on them. Chitosan-based membranes were prepared by the film-casting traditional method, treated with Tetraammineplatinum (II) chloride hydrate and Silver Nitrate by the ion exchange polymer method; and then cast with Sodium and Potassium Chloride as conductive salts. Membranes were tested at different voltages, as well as the chemical tests as FTIR, XRD, TGA and tensile strength and elongation as a function of the treatment applied. Film properties depended on its morphology, which is affected by Molecular Weight, degree of
N
-acetylation (DDA%), solvent evaporation and free amine regenerating mechanism (Younes et al. in Process Biochem 47:2032–2039, 2012) and (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). Samples exhibited good displacement increasing as the applied voltage increased; best tip displacement was located as 17 mm at 7 V; and best theoretical δ value is found at 29.6 mm.</description><subject>Acetylation</subject><subject>Actuators</subject><subject>Aqueous solutions</subject><subject>Bends</subject><subject>Biocompatibility</subject><subject>Biomedical materials</subject><subject>Biopolymers</subject><subject>CAE) and Design</subject><subject>Chemical bonds</subject><subject>Chemical tests</subject><subject>Chitin</subject><subject>Chitosan</subject><subject>Chloride</subject><subject>Cochlear implants</subject><subject>Computer-Aided Engineering (CAD</subject><subject>Crustaceans</subject><subject>Electric fields</subject><subject>Electroactive polymers</subject><subject>Electron microscopes</subject><subject>Electronics and Microelectronics</subject><subject>Elongation</subject><subject>Engineering</subject><subject>Engineering Design</subject><subject>Functional materials</subject><subject>Hydroxyl groups</subject><subject>Industrial Design</subject><subject>Instrumentation</subject><subject>Ion exchange</subject><subject>Ion exchange resins</subject><subject>Man-machine interfaces</subject><subject>Mechanical Engineering</subject><subject>Mechanical properties</subject><subject>Medical devices</subject><subject>Medical electronics</subject><subject>Membranes</subject><subject>Molecular structure</subject><subject>Morphology</subject><subject>Nitrates</subject><subject>Original Paper</subject><subject>Polymers</subject><subject>Potassium</subject><subject>Scanning electron microscopy</subject><subject>Silver</subject><subject>Smart materials</subject><subject>Sodium</subject><subject>Surgical implants</subject><subject>Tensile strength</subject><issn>1955-2513</issn><issn>1955-2505</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2022</creationdate><recordtype>article</recordtype><sourceid>AFKRA</sourceid><sourceid>BENPR</sourceid><sourceid>CCPQU</sourceid><sourceid>DWQXO</sourceid><recordid>eNp9kc1KxDAUhYsoOI6-gKuA62iS_qVLGX9hwI2uw216qx3apibpwMz7-J6mVtSVq-TenO-cwImic84uOWP5leOCMUmZ4DSMMqb7g2jBizSlImXp4c-dx8fRiXMbxjLJJFtEHze4xdYMHfaemJpAT7BF7a0B7ZstkrIxg2l3HVpagsOKdNiVFnoM0oroN7BBiLbZg29MP1l0GLZ9o6El4WkEbywZrBnQ-gYdqcMIw9AGwUQ40vxE_iFdB9ZPWDVq706joxpah2ff5zJ6ubt9Xj3Q9dP94-p6TbXImadpEhcJByl0KiXLs1yUFcisSECXnKe6lFqkIikTphF1jXGW15AxoUUMUJd5vIwuZt8Q_D6i82pjRtuHSCUKXsQi4QUPKjGrtDXOWazVYJvw353iTE11qLkOFepQX3WofYDiGXJB3L-i_bX-h_oEcFSTnQ</recordid><startdate>20220901</startdate><enddate>20220901</enddate><creator>Cuellar-Monterrubio, A. A.</creator><creator>Cortes-Ramirez, Jorge A.</creator><creator>Stawski, D.</creator><creator>Jimenez-Garcia, V. E.</creator><creator>Puchalski, M.</creator><creator>Chrzanowski, M.</creator><creator>Cruz-Díaz, S. G.</creator><creator>Gendaszewska-Darmach, E.</creator><creator>Krucińska, I.</creator><creator>Koziołkiewicz, M.</creator><general>Springer Paris</general><general>Springer Nature B.V</general><scope>AAYXX</scope><scope>CITATION</scope><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>AFKRA</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>L6V</scope><scope>M7S</scope><scope>PQBIZ</scope><scope>PQBZA</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PTHSS</scope><orcidid>https://orcid.org/0000-0003-3735-0795</orcidid></search><sort><creationdate>20220901</creationdate><title>Development of an electroactive biopolymer-based membrane and characterization of mechanical actuator properties for applications in electromechanical smart products</title><author>Cuellar-Monterrubio, A. A. ; Cortes-Ramirez, Jorge A. ; Stawski, D. ; Jimenez-Garcia, V. E. ; Puchalski, M. ; Chrzanowski, M. ; Cruz-Díaz, S. 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A.</creatorcontrib><creatorcontrib>Cortes-Ramirez, Jorge A.</creatorcontrib><creatorcontrib>Stawski, D.</creatorcontrib><creatorcontrib>Jimenez-Garcia, V. E.</creatorcontrib><creatorcontrib>Puchalski, M.</creatorcontrib><creatorcontrib>Chrzanowski, M.</creatorcontrib><creatorcontrib>Cruz-Díaz, S. G.</creatorcontrib><creatorcontrib>Gendaszewska-Darmach, E.</creatorcontrib><creatorcontrib>Krucińska, I.</creatorcontrib><creatorcontrib>Koziołkiewicz, M.</creatorcontrib><collection>CrossRef</collection><collection>ProQuest SciTech Collection</collection><collection>ProQuest Technology Collection</collection><collection>Materials Science & Engineering Collection</collection><collection>ProQuest Central UK/Ireland</collection><collection>ProQuest Central</collection><collection>Technology Collection</collection><collection>ProQuest One Community College</collection><collection>ProQuest Central Korea</collection><collection>SciTech Premium Collection</collection><collection>ProQuest Engineering Collection</collection><collection>Engineering Database</collection><collection>ProQuest One Business</collection><collection>ProQuest One Business (Alumni)</collection><collection>ProQuest One Academic Eastern Edition (DO NOT USE)</collection><collection>ProQuest One Academic</collection><collection>ProQuest One Academic UKI Edition</collection><collection>Engineering Collection</collection><jtitle>International journal on interactive design and manufacturing</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Cuellar-Monterrubio, A. A.</au><au>Cortes-Ramirez, Jorge A.</au><au>Stawski, D.</au><au>Jimenez-Garcia, V. E.</au><au>Puchalski, M.</au><au>Chrzanowski, M.</au><au>Cruz-Díaz, S. G.</au><au>Gendaszewska-Darmach, E.</au><au>Krucińska, I.</au><au>Koziołkiewicz, M.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Development of an electroactive biopolymer-based membrane and characterization of mechanical actuator properties for applications in electromechanical smart products</atitle><jtitle>International journal on interactive design and manufacturing</jtitle><stitle>Int J Interact Des Manuf</stitle><date>2022-09-01</date><risdate>2022</risdate><volume>16</volume><issue>3</issue><spage>1113</spage><epage>1123</epage><pages>1113-1123</pages><issn>1955-2513</issn><eissn>1955-2505</eissn><abstract>Electroactive polymers (EAPs) are functional materials that, stimulated by an electric field, change its composition or molecular structure so that the material expands, contracts, or bends (Guzmán et al. in J Appl Polymer Sci 112:3284–32931, 2009) and (Rappaport et al. in A glucose fuiel cell for implantable brain machine interfaces, Massachusetts Institute of Technology, Cambridge, 2012). The literature has shown that Chitin and Chitosan are considerably versatile and promising biomaterials to be used as EAPs in medical and biomedical applications as cochlear implant, and due to its chemical structure, is considered a biocompatible, bio-adhesive and biodegradable polymer (Falguni et al. in Proceedings of the 2010 IEEE Students Technology Simposium, IIT Kharagpur, 2010). Their amino and hydroxyl groups can be easily modified by organic (Younes et al. in Process Biochem 47:2032–2039, 2012) or cross-linked reactions, to obtain sophisticated functional medical devices (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). This research collaboration aims to prove that Chitosan-based membranes could be synthetized as EAPs; as well as determine that there are useful ionic flow and movement responses on them. Chitosan-based membranes were prepared by the film-casting traditional method, treated with Tetraammineplatinum (II) chloride hydrate and Silver Nitrate by the ion exchange polymer method; and then cast with Sodium and Potassium Chloride as conductive salts. Membranes were tested at different voltages, as well as the chemical tests as FTIR, XRD, TGA and tensile strength and elongation as a function of the treatment applied. Film properties depended on its morphology, which is affected by Molecular Weight, degree of
N
-acetylation (DDA%), solvent evaporation and free amine regenerating mechanism (Younes et al. in Process Biochem 47:2032–2039, 2012) and (Wongpaint et al. in Micromol Biosci 5:1001–1012, 2005). Samples exhibited good displacement increasing as the applied voltage increased; best tip displacement was located as 17 mm at 7 V; and best theoretical δ value is found at 29.6 mm.</abstract><cop>Paris</cop><pub>Springer Paris</pub><doi>10.1007/s12008-021-00783-z</doi><tpages>11</tpages><orcidid>https://orcid.org/0000-0003-3735-0795</orcidid></addata></record> |
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subjects | Acetylation Actuators Aqueous solutions Bends Biocompatibility Biomedical materials Biopolymers CAE) and Design Chemical bonds Chemical tests Chitin Chitosan Chloride Cochlear implants Computer-Aided Engineering (CAD Crustaceans Electric fields Electroactive polymers Electron microscopes Electronics and Microelectronics Elongation Engineering Engineering Design Functional materials Hydroxyl groups Industrial Design Instrumentation Ion exchange Ion exchange resins Man-machine interfaces Mechanical Engineering Mechanical properties Medical devices Medical electronics Membranes Molecular structure Morphology Nitrates Original Paper Polymers Potassium Scanning electron microscopy Silver Smart materials Sodium Surgical implants Tensile strength |
title | Development of an electroactive biopolymer-based membrane and characterization of mechanical actuator properties for applications in electromechanical smart products |
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