-
1
-
-
33644514646
-
Conducting-Polymer Nanotubes for Controlled Drug Release
-
Abidian, M. R.; Kim, D.-H.; Martin, D. C. Conducting-Polymer Nanotubes for Controlled Drug Release Adv. Mater. 2006, 18, 405-409 10.1002/adma.200501726
-
(2006)
Adv. Mater.
, vol.18
, pp. 405-409
-
-
Abidian, M.R.1
Kim, D.-H.2
Martin, D.C.3
-
2
-
-
84922966805
-
A Detailed Insight into Drug Delivery from PEDOT Based on Analytical Methods: Effects and Side Effects
-
Boehler, C.; Asplund, M. A Detailed Insight into Drug Delivery from PEDOT Based on Analytical Methods: Effects and Side Effects J. Biomed. Mater. Res., Part A 2015, 103, 1200-1207 10.1002/jbm.a.35252
-
(2015)
J. Biomed. Mater. Res., Part A
, vol.103
, pp. 1200-1207
-
-
Boehler, C.1
Asplund, M.2
-
3
-
-
33646538099
-
Biosensing and Drug Delivery by Polypyrrole
-
Geetha, S.; Rao, C. R. K.; Vijayan, M.; Trivedi, D. C. Biosensing and Drug Delivery by Polypyrrole Anal. Chim. Acta 2006, 568, 119-125 10.1016/j.aca.2005.10.011
-
(2006)
Anal. Chim. Acta
, vol.568
, pp. 119-125
-
-
Geetha, S.1
Rao, C.R.K.2
Vijayan, M.3
Trivedi, D.C.4
-
4
-
-
84928432179
-
Advancing the Delivery of Anticancer Drugs: Conjugated Polymer/Triterpenoid Composite
-
Krukiewicz, K.; Jarosz, T.; Zak, J. K.; Lapkowski, M.; Ruszkowski, P.; Bobkiewicz-Kozlowska, T.; Bednarczyk-Cwynar, B. Advancing the Delivery of Anticancer Drugs: Conjugated Polymer/Triterpenoid Composite Acta Biomater. 2015, 19, 158-165 10.1016/j.actbio.2015.03.006
-
(2015)
Acta Biomater.
, vol.19
, pp. 158-165
-
-
Krukiewicz, K.1
Jarosz, T.2
Zak, J.K.3
Lapkowski, M.4
Ruszkowski, P.5
Bobkiewicz-Kozlowska, T.6
Bednarczyk-Cwynar, B.7
-
5
-
-
84947783201
-
-
Carpi, F. Smela, E. John Wiley & Sons, Ltd: Chichester, U.K.
-
Abidian, M. R.; Martin, D. C. In Biomedical Applications of Electroactive Polymer Actuators; Carpi, F.; Smela, E., Eds.; John Wiley & Sons, Ltd: Chichester, U.K., 2009; pp 279-299.
-
(2009)
Biomedical Applications of Electroactive Polymer Actuators
, pp. 279-299
-
-
Abidian, M.R.1
Martin, D.C.2
-
6
-
-
38349059795
-
Experimental and Theoretical Characterization of Implantable Neural Microelectrodes Modified with Conducting Polymer Nanotubes
-
Abidian, M. R.; Martin, D. C. Experimental and Theoretical Characterization of Implantable Neural Microelectrodes Modified with Conducting Polymer Nanotubes Biomaterials 2008, 29, 1273-1283 10.1016/j.biomaterials.2007.11.022
-
(2008)
Biomaterials
, vol.29
, pp. 1273-1283
-
-
Abidian, M.R.1
Martin, D.C.2
-
7
-
-
78649703976
-
Electroactive Polymers for Neural Interfaces
-
Asplund, M.; Nyberg, T.; Inganäs, O. Electroactive Polymers for Neural Interfaces Polym. Chem. 2010, 1, 1374-1391 10.1039/c0py00077a
-
(2010)
Polym. Chem.
, vol.1
, pp. 1374-1391
-
-
Asplund, M.1
Nyberg, T.2
Inganäs, O.3
-
8
-
-
84901752770
-
The Biological and Electrical Trade-Offs Related to the Thickness of Conducting Polymers for Neural Applications
-
Baek, S.; Green, R. A.; Poole-Warren, L. A. The Biological and Electrical Trade-Offs Related to the Thickness of Conducting Polymers for Neural Applications Acta Biomater. 2014, 10, 3048-3058 10.1016/j.actbio.2014.04.004
-
(2014)
Acta Biomater.
, vol.10
, pp. 3048-3058
-
-
Baek, S.1
Green, R.A.2
Poole-Warren, L.A.3
-
9
-
-
84869090134
-
Histocompatibility and in vivo Signal Throughput for PEDOT, PEDOP, P3MT, and Polycarbazole Electrodes
-
Forcelli, P. A.; Sweeney, C. T.; Kammerich, A. D.; Lee, B. C.-W.; Rubinson, L. H.; Kayinamura, Y. P.; Gale, K.; Rubinson, J. F. Histocompatibility and in vivo Signal Throughput for PEDOT, PEDOP, P3MT, and Polycarbazole Electrodes J. Biomed. Mater. Res., Part A 2012, 100A, 3455-3462 10.1002/jbm.a.34285
-
(2012)
J. Biomed. Mater. Res., Part A
, vol.100
, pp. 3455-3462
-
-
Forcelli, P.A.1
Sweeney, C.T.2
Kammerich, A.D.3
Lee, B.C.-W.4
Rubinson, L.H.5
Kayinamura, Y.P.6
Gale, K.7
Rubinson, J.F.8
-
10
-
-
46549085224
-
Conducting Polymers for Neural Interfaces: Challenges in Developing an Effective Long-Term Implant
-
Green, R. A.; Lovell, N. H.; Wallace, G. G.; Poole-Warren, L. A. Conducting Polymers for Neural Interfaces: Challenges in Developing an Effective Long-Term Implant Biomaterials 2008, 29, 3393-3399 10.1016/j.biomaterials.2008.04.047
-
(2008)
Biomaterials
, vol.29
, pp. 3393-3399
-
-
Green, R.A.1
Lovell, N.H.2
Wallace, G.G.3
Poole-Warren, L.A.4
-
11
-
-
79952769262
-
Application of Conductive Polymers, Scaffolds and Electrical Stimulation for Nerve Tissue Engineering
-
Ghasemi-Mobarakeh, L.; Prabhakaran, M. P.; Morshed, M.; Nasr-Esfahani, M. H.; Baharvand, H.; Kiani, S.; Al-Deyab, S. S.; Ramakrishna, S. Application of Conductive Polymers, Scaffolds and Electrical Stimulation for Nerve Tissue Engineering J. Tissue Eng. Regener. Med. 2011, 5, e17-e35 10.1002/term.383
-
(2011)
J. Tissue Eng. Regener. Med.
, vol.5
, pp. e17-e35
-
-
Ghasemi-Mobarakeh, L.1
Prabhakaran, M.P.2
Morshed, M.3
Nasr-Esfahani, M.H.4
Baharvand, H.5
Kiani, S.6
Al-Deyab, S.S.7
Ramakrishna, S.8
-
12
-
-
84869084274
-
Biomimetic Electrochemistry from Conducting Polymers. A Review: Artificial Muscles, Smart Membranes, Smart Drug Delivery and Computer/Neuron Interfaces
-
Otero, T. F.; Martinez, J. G.; Arias-Pardilla, J. Biomimetic Electrochemistry from Conducting Polymers. A Review: Artificial Muscles, Smart Membranes, Smart Drug Delivery and Computer/Neuron Interfaces Electrochim. Acta 2012, 84, 112-128 10.1016/j.electacta.2012.03.097
-
(2012)
Electrochim. Acta
, vol.84
, pp. 112-128
-
-
Otero, T.F.1
Martinez, J.G.2
Arias-Pardilla, J.3
-
13
-
-
0028294863
-
Electrically Conducting Polymers Can Noninvasively Control the Shape and Growth of Mammalian Cells
-
Wong, J. Y.; Langer, R.; Ingber, D. E. Electrically Conducting Polymers Can Noninvasively Control the Shape and Growth of Mammalian Cells Proc. Natl. Acad. Sci. U. S. A. 1994, 91, 3201-3204 10.1073/pnas.91.8.3201
-
(1994)
Proc. Natl. Acad. Sci. U. S. A.
, vol.91
, pp. 3201-3204
-
-
Wong, J.Y.1
Langer, R.2
Ingber, D.E.3
-
14
-
-
84903549674
-
Biocompatible Electromechanical Actuators Composed of Silk-Conducting Polymer Composites
-
Romero, I. S.; Bradshaw, N. P.; Larson, J. D.; Severt, S. Y.; Roberts, S. J.; Schiller, M. L.; Leger, J. M.; Murphy, A. R. Biocompatible Electromechanical Actuators Composed of Silk-Conducting Polymer Composites Adv. Funct. Mater. 2014, 24, 3866-3873 10.1002/adfm.201303292
-
(2014)
Adv. Funct. Mater.
, vol.24
, pp. 3866-3873
-
-
Romero, I.S.1
Bradshaw, N.P.2
Larson, J.D.3
Severt, S.Y.4
Roberts, S.J.5
Schiller, M.L.6
Leger, J.M.7
Murphy, A.R.8
-
15
-
-
0037451521
-
Conjugated Polymer Actuators for Biomedical Applications
-
Smela, E. Conjugated Polymer Actuators for Biomedical Applications Adv. Mater. 2003, 15, 481-494 10.1002/adma.200390113
-
(2003)
Adv. Mater.
, vol.15
, pp. 481-494
-
-
Smela, E.1
-
16
-
-
33645880444
-
Polymer Actuator Valves Toward Controlled Drug Delivery Application
-
Xu, H.; Wang, C.; Wang, C.; Zoval, J.; Madou, M. Polymer Actuator Valves Toward Controlled Drug Delivery Application Biosens. Bioelectron. 2006, 21, 2094-2099 10.1016/j.bios.2005.10.020
-
(2006)
Biosens. Bioelectron.
, vol.21
, pp. 2094-2099
-
-
Xu, H.1
Wang, C.2
Wang, C.3
Zoval, J.4
Madou, M.5
-
17
-
-
77957164515
-
Applications of Conducting Polymers and Their Issues in Biomedical Engineering
-
Ravichandran, R.; Sundarrajan, S.; Venugopal, J. R.; Mukherjee, S.; Ramakrishna, S. Applications of Conducting Polymers and Their Issues in Biomedical Engineering J. R. Soc., Interface 2010, 7, S559-S579 10.1098/rsif.2010.0120.focus
-
(2010)
J. R. Soc., Interface
, vol.7
, pp. S559-S579
-
-
Ravichandran, R.1
Sundarrajan, S.2
Venugopal, J.R.3
Mukherjee, S.4
Ramakrishna, S.5
-
18
-
-
84882264696
-
Biodegradable and Electrically Conducting Polymers for Biomedical Applications
-
Guo, B.; Glavas, L.; Albertsson, A. C. Biodegradable and Electrically Conducting Polymers for Biomedical Applications Prog. Polym. Sci. 2013, 38, 1263-1286 10.1016/j.progpolymsci.2013.06.003
-
(2013)
Prog. Polym. Sci.
, vol.38
, pp. 1263-1286
-
-
Guo, B.1
Glavas, L.2
Albertsson, A.C.3
-
19
-
-
84920553650
-
Conducting Polymer-Hydrogels for Medical Electrode Applications
-
Green, R. A.; Baek, S.; Poole-Warren, L. A.; Martens, P. J. Conducting Polymer-Hydrogels for Medical Electrode Applications Sci. Technol. Adv. Mater. 2010, 11, 014107 10.1088/1468-6996/11/1/014107
-
(2010)
Sci. Technol. Adv. Mater.
, vol.11
, pp. 014107
-
-
Green, R.A.1
Baek, S.2
Poole-Warren, L.A.3
Martens, P.J.4
-
20
-
-
84929463196
-
Electrically Conductive Polymers and Composites for Biomedical Applications
-
Kaur, G.; Adhikari, R.; Cass, P.; Bown, M.; Gunatillake, P. Electrically Conductive Polymers and Composites for Biomedical Applications RSC Adv. 2015, 5, 37553-37567 10.1039/C5RA01851J
-
(2015)
RSC Adv.
, vol.5
, pp. 37553-37567
-
-
Kaur, G.1
Adhikari, R.2
Cass, P.3
Bown, M.4
Gunatillake, P.5
-
21
-
-
84873653231
-
Enhancing the Interface in Silk-Polypyrrole Composites Through Chemical Modification of Silk Fibroin
-
Romero, I. S.; Schurr, M. L.; Lally, J. V.; Kotlik, M. Z.; Murphy, A. R. Enhancing the Interface in Silk-Polypyrrole Composites Through Chemical Modification of Silk Fibroin ACS Appl. Mater. Interfaces 2013, 5, 553-564 10.1021/am301844c
-
(2013)
ACS Appl. Mater. Interfaces
, vol.5
, pp. 553-564
-
-
Romero, I.S.1
Schurr, M.L.2
Lally, J.V.3
Kotlik, M.Z.4
Murphy, A.R.5
-
22
-
-
0037290140
-
Silk-Based Biomaterials
-
Altman, G. H.; Diaz, F.; Jakuba, C.; Calabro, T.; Horan, R. L.; Chen, J.; Lu, H.; Richmond, J.; Kaplan, D. L. Silk-Based Biomaterials Biomaterials 2003, 24, 401-416 10.1016/S0142-9612(02)00353-8
-
(2003)
Biomaterials
, vol.24
, pp. 401-416
-
-
Altman, G.H.1
Diaz, F.2
Jakuba, C.3
Calabro, T.4
Horan, R.L.5
Chen, J.6
Lu, H.7
Richmond, J.8
Kaplan, D.L.9
-
23
-
-
33748975682
-
Stem Cell-Based Tissue Engineering with Silk Biomaterials
-
Wang, Y.; Kim, H.-J.; Vunjak-Novakovic, G.; Kaplan, D. L. Stem Cell-Based Tissue Engineering with Silk Biomaterials Biomaterials 2006, 27, 6064-6082 10.1016/j.biomaterials.2006.07.008
-
(2006)
Biomaterials
, vol.27
, pp. 6064-6082
-
-
Wang, Y.1
Kim, H.-J.2
Vunjak-Novakovic, G.3
Kaplan, D.L.4
-
24
-
-
10044274310
-
Three-Dimensional Aqueous-Derived Biomaterial Scaffolds from Silk Fibroin
-
Kim, U.-J.; Park, J.; Kim, H. J.; Wada, M.; Kaplan, D. L. Three-Dimensional Aqueous-Derived Biomaterial Scaffolds from Silk Fibroin Biomaterials 2005, 26, 2775-2785 10.1016/j.biomaterials.2004.07.044
-
(2005)
Biomaterials
, vol.26
, pp. 2775-2785
-
-
Kim, U.-J.1
Park, J.2
Kim, H.J.3
Wada, M.4
Kaplan, D.L.5
-
25
-
-
77951726175
-
Sensing and Tactile Artificial Muscles from Reactive Materials
-
Conzuelo, L. V.; Arias-Pardilla, J.; Cauich-Rodríguez, J. V.; Smit, M. A.; Otero, T. F. Sensing and Tactile Artificial Muscles from Reactive Materials Sensors 2010, 10, 2638-2674 10.3390/s100402638
-
(2010)
Sensors
, vol.10
, pp. 2638-2674
-
-
Conzuelo, L.V.1
Arias-Pardilla, J.2
Cauich-Rodríguez, J.V.3
Smit, M.A.4
Otero, T.F.5
-
26
-
-
0034402232
-
The Mechanisms of Pyrrole Electropolymerization
-
Sabouraud, G.; Sadki, S.; Schottland, P.; Brodie, N. The Mechanisms of Pyrrole Electropolymerization Chem. Soc. Rev. 2000, 29, 283-293 10.1039/a807124a
-
(2000)
Chem. Soc. Rev.
, vol.29
, pp. 283-293
-
-
Sabouraud, G.1
Sadki, S.2
Schottland, P.3
Brodie, N.4
-
27
-
-
77955694288
-
Electrochemistry of Conducting Polymers - Persistent Models and New Concepts
-
Heinze, J.; Frontana-Uribe, B. A.; Ludwigs, S. Electrochemistry of Conducting Polymers - Persistent Models and New Concepts Chem. Rev. 2010, 110, 4724-4771 10.1021/cr900226k
-
(2010)
Chem. Rev.
, vol.110
, pp. 4724-4771
-
-
Heinze, J.1
Frontana-Uribe, B.A.2
Ludwigs, S.3
-
28
-
-
84861199722
-
Combined Chemical and Electrochemical Synthesis Methods for Metal-Free Polypyrrole Actuators
-
Temmer, R.; Must, I.; Kaasik, F.; Aabloo, A.; Tamm, T. Combined Chemical and Electrochemical Synthesis Methods for Metal-Free Polypyrrole Actuators Sens. Actuators, B 2012, 166-167, 411-418 10.1016/j.snb.2012.01.075
-
(2012)
Sens. Actuators, B
, vol.166-167
, pp. 411-418
-
-
Temmer, R.1
Must, I.2
Kaasik, F.3
Aabloo, A.4
Tamm, T.5
-
29
-
-
84884576188
-
In Search of Better Electroactive Polymer Actuator Materials: PPy Versus PEDOT Versus PEDOT-PPy Composites
-
Temmer, R.; Maziz, A.; Plesse, C.; Aabloo, A.; Vidal, F.; Tamm, T. In Search of Better Electroactive Polymer Actuator Materials: PPy Versus PEDOT Versus PEDOT-PPy Composites Smart Mater. Struct. 2013, 22, 104006 10.1088/0964-1726/22/10/104006
-
(2013)
Smart Mater. Struct.
, vol.22
, pp. 104006
-
-
Temmer, R.1
Maziz, A.2
Plesse, C.3
Aabloo, A.4
Vidal, F.5
Tamm, T.6
-
30
-
-
84884416774
-
Biomimetic Conducting Polymer-Based Tissue Scaffolds
-
Hardy, J. G.; Lee, J. Y.; Schmidt, C. E. Biomimetic Conducting Polymer-Based Tissue Scaffolds Curr. Opin. Biotechnol. 2013, 24, 847-854 10.1016/j.copbio.2013.03.011
-
(2013)
Curr. Opin. Biotechnol.
, vol.24
, pp. 847-854
-
-
Hardy, J.G.1
Lee, J.Y.2
Schmidt, C.E.3
-
31
-
-
77955281419
-
Electrochemically Controlled Drug Delivery Based on Intrinsically Conducting Polymers
-
Svirskis, D.; Travas-Sejdic, J.; Rodgers, A.; Garg, S. Electrochemically Controlled Drug Delivery Based on Intrinsically Conducting Polymers J. Controlled Release 2010, 146, 6-15 10.1016/j.jconrel.2010.03.023
-
(2010)
J. Controlled Release
, vol.146
, pp. 6-15
-
-
Svirskis, D.1
Travas-Sejdic, J.2
Rodgers, A.3
Garg, S.4
-
32
-
-
67349186335
-
Cell Attachment Functionality of Bioactive Conducting Polymers for Neural Interfaces
-
Green, R. A.; Lovell, N. H.; Poole-Warren, L. A. Cell Attachment Functionality of Bioactive Conducting Polymers for Neural Interfaces Biomaterials 2009, 30, 3637-3644 10.1016/j.biomaterials.2009.03.043
-
(2009)
Biomaterials
, vol.30
, pp. 3637-3644
-
-
Green, R.A.1
Lovell, N.H.2
Poole-Warren, L.A.3
-
33
-
-
33947213876
-
Nerve growth factor-immobilized polypyrrole: Bioactive Electrically Conducting Polymer for Enhanced Neurite Extension
-
Gomez, N.; Schmidt, C. E. Nerve growth factor-immobilized polypyrrole: Bioactive Electrically Conducting Polymer for Enhanced Neurite Extension J. Biomed. Mater. Res., Part A 2007, 81A, 135-149 10.1002/jbm.a.31047
-
(2007)
J. Biomed. Mater. Res., Part A
, vol.81 A
, pp. 135-149
-
-
Gomez, N.1
Schmidt, C.E.2
|