Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application
Conductive thin films have great potential for application in the biomedical field. Herein, we designed thermoresponsive and conductive thin films with hydrophilicity, strain sensing, and biocompatibility. The crosslinked dense thin films were synthesized and prepared through a Schiff base reaction...
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doaj-5a56e858ac19480ca23e61cb462c89932021-01-21T00:03:13ZengMDPI AGPolymers2073-43602021-01-011332632610.3390/polym13030326Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating ApplicationJunpeng Xu0Chih-Yu Fu1Yu-Liang Tsai2Chui-Wei Wong3Shan-hui Hsu4Institute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, TaiwanInstitute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, TaiwanInstitute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, TaiwanInstitute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, TaiwanInstitute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, TaiwanConductive thin films have great potential for application in the biomedical field. Herein, we designed thermoresponsive and conductive thin films with hydrophilicity, strain sensing, and biocompatibility. The crosslinked dense thin films were synthesized and prepared through a Schiff base reaction and ionic interaction from dialdehyde polyurethane, N-carboxyethyl chitosan, and double-bonded chitosan grafted polypyrrole. The thin films were air-dried under room temperature. These thin films showed hydrophilicity and conductivity (above 2.50 mS/cm) as well as responsiveness to the deformation. The tensile break strength (9.72 MPa to 15.07 MPa) and tensile elongation (5.76% to 12.77%) of conductive thin films were enhanced by heating them from 25 °C to 50 °C. In addition, neural stem cells cultured on the conductive thin films showed cell clustering, proliferation, and differentiation. The application of the materials as a conductive surface coating was verified by different coating strategies. The conductive thin films are potential candidates for surface modification and biocompatible polymer coating.https://www.mdpi.com/2073-4360/13/3/326conductive thin filmthermoresponsivepolyurethanechitosanbiocompatibilitypolymer coating |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Junpeng Xu Chih-Yu Fu Yu-Liang Tsai Chui-Wei Wong Shan-hui Hsu |
spellingShingle |
Junpeng Xu Chih-Yu Fu Yu-Liang Tsai Chui-Wei Wong Shan-hui Hsu Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application Polymers conductive thin film thermoresponsive polyurethane chitosan biocompatibility polymer coating |
author_facet |
Junpeng Xu Chih-Yu Fu Yu-Liang Tsai Chui-Wei Wong Shan-hui Hsu |
author_sort |
Junpeng Xu |
title |
Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application |
title_short |
Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application |
title_full |
Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application |
title_fullStr |
Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application |
title_full_unstemmed |
Thermoresponsive and Conductive Chitosan-Polyurethane Biocompatible Thin Films with Potential Coating Application |
title_sort |
thermoresponsive and conductive chitosan-polyurethane biocompatible thin films with potential coating application |
publisher |
MDPI AG |
series |
Polymers |
issn |
2073-4360 |
publishDate |
2021-01-01 |
description |
Conductive thin films have great potential for application in the biomedical field. Herein, we designed thermoresponsive and conductive thin films with hydrophilicity, strain sensing, and biocompatibility. The crosslinked dense thin films were synthesized and prepared through a Schiff base reaction and ionic interaction from dialdehyde polyurethane, N-carboxyethyl chitosan, and double-bonded chitosan grafted polypyrrole. The thin films were air-dried under room temperature. These thin films showed hydrophilicity and conductivity (above 2.50 mS/cm) as well as responsiveness to the deformation. The tensile break strength (9.72 MPa to 15.07 MPa) and tensile elongation (5.76% to 12.77%) of conductive thin films were enhanced by heating them from 25 °C to 50 °C. In addition, neural stem cells cultured on the conductive thin films showed cell clustering, proliferation, and differentiation. The application of the materials as a conductive surface coating was verified by different coating strategies. The conductive thin films are potential candidates for surface modification and biocompatible polymer coating. |
topic |
conductive thin film thermoresponsive polyurethane chitosan biocompatibility polymer coating |
url |
https://www.mdpi.com/2073-4360/13/3/326 |
work_keys_str_mv |
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