dc.contributor
Universitat Politècnica de Catalunya. Departament d'Enginyeria Química
dc.contributor
Universitat Politècnica de Catalunya. IMEM - Innovació, Modelització i Enginyeria en (BIO) Materials
dc.contributor
Universitat Politècnica de Catalunya. PSEP - Polimers Sintètics: Estructura i Propietats. Polimers Biodegradables
dc.contributor.author
Llorens Domenjó, Elena
dc.contributor.author
Armelín Diggroc, Elaine Aparecida
dc.contributor.author
Pérez Madrigal, Maria del Mar
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Valle Mendoza, Luis Javier del
dc.contributor.author
Alemán Llansó, Carlos
dc.contributor.author
Puiggalí Bellalta, Jordi
dc.date.issued
2013-09-01
dc.identifier
Llorens, E. [et al.]. Nanomembranes and nanofibers from biodegradable conducting polymers. "Polymers", 01 Setembre 2013, vol. 5, núm. 3, p. 1115-1157.
dc.identifier
https://hdl.handle.net/2117/22597
dc.identifier
10.3390/polym5031115
dc.description.abstract
This review provides a current status report of the field concerning preparation of fibrous mats based on biodegradable (e. g., aliphatic polyesters such as polylactide or polycaprolactone) and conducting polymers (e. g., polyaniline, polypirrole or polythiophenes). These materials have potential biomedical applications (e. g., tissue engineering or drug delivery systems) and can be combined to get free-standing nanomembranes and nanofibers that retain the better properties of their corresponding individual components. Systems based on biodegradable and conducting polymers constitute nowadays one of the most promising solutions to develop advanced materials enable to cover aspects like local stimulation of desired tissue, time controlled drug release and stimulation of either the proliferation or differentiation of various cell types. The first sections of the review are focused on a general overview of conducting and biodegradable polymers most usually employed and the explanation of the most suitable techniques for preparing nanofibers and nanomembranes (i.e., electrospinning and spin coating). Following sections are organized according to the base conducting polymer (e. g., Sections 4-6 describe hybrid systems having aniline, pyrrole and thiophene units, respectively). Each one of these sections includes specific subsections dealing with applications in a nanofiber or nanomembrane form. Finally, miscellaneous systems and concluding remarks are given in the two last sections.
dc.description.abstract
Postprint (published version)
dc.format
application/pdf
dc.relation
http://www.mdpi.com/2073-4360/5/3/1115
dc.rights
http://creativecommons.org/licenses/by-nc-nd/3.0/es/
dc.rights
Attribution-NonCommercial-NoDerivs 3.0 Spain
dc.subject
Àrees temàtiques de la UPC::Enginyeria dels materials::Materials plàstics i polímers
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Àrees temàtiques de la UPC::Enginyeria biomèdica::Biomaterials
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Tissue engineering
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Conducting polymers
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biodegradable polymers
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conducting polymers
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TISSUE ENGINEERING APPLICATIONS
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ELECTROACTIVE PAPER ACTUATORS
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SOLID-PHASE MICROEXTRACTION
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ATOMIC-FORCE MICROSCOPY
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BIOMEDICAL APPLICATIONS
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ELECTROSPUN NANOFIBERS
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ANILINE PENTAMER
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ELECTRICAL-STIMULATION
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POTENTIAL APPLICATION
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NERVE REGENERATION
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Enginyeria de teixits
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Polímers conductors
dc.title
Nanomembranes and nanofibers from biodegradable conducting polymers