TY - JOUR
T1 - One-dimensional conducting polymer nanocomposites
T2 - Synthesis, properties and applications
AU - Lu, Xiaofeng
AU - Zhang, Wanjin
AU - Wang, Ce
AU - Wen, Ten Chin
AU - Wei, Yen
N1 - Funding Information:
This work was supported by the research grants from the National 973 Project (No. 2007CB936203 and S2009061009 ), National 863 Project (2007 AA03z324) and the National Natural Science Foundation of China (NSFC Nos. 50973038 and 50873045 ). Y. Wei thanks the support by the Chinese Ministry of Education via the Chang-Jiang Scholar Program and by the Cheng Kung University in Taiwan via a Visiting Chair Professor appointment. We wish to dedicate this article to late Professor Alan G. MacDiarmid (1927–2007) for his professional guidance and personal friendship. We also dedicate this article to the memory of our co-author and colleague, Professor Wanjin Zhang, who sadly passed away in March, 2010.
PY - 2011/5
Y1 - 2011/5
N2 - Intrinsically conducting polymers have been studied extensively due to their intriguing electronic and redox properties and numerous potential applications in many fields since their discovery in 1970s. To improve and extend their functions, the fabrication of multi-functionalized conducting polymer nanocomposites has attracted a great deal of attention because of the emergence of nanotechnology. This article presents an overview of the synthesis of one-dimensional (1D) conducting polymer nanocomposites and their properties and applications. Nanocomposites consist of conducting polymers and one or more components, which can be carbon nanotubes, metals, oxide nanomaterials, chalcogenides, insulating or conducting polymers, biological materials, metal phthalocyanines and porphyrins, etc. The properties of 1D conducting polymer nanocomposites will be widely discussed. Special attention is paid to the difference in the properties between 1D conducting polymer nanocomposites and bulk conducting polymers. Applications of 1D conducting polymer nanocomposites described include electronic nanodevices, chemical and biological sensors, catalysis and electrocatalysis, energy, microwave absorption and electromagnetic interference (EMI) shielding, electrorheological (ER) fluids, and biomedicine. The advantages of 1D conducting polymer nanocomposites over the parent conducting polymers are highlighted. Combined with the intrinsic properties and synergistic effect of each component, it is anticipated that 1D conducting polymer nanocomposites will play an important role in various fields of nanotechnology.
AB - Intrinsically conducting polymers have been studied extensively due to their intriguing electronic and redox properties and numerous potential applications in many fields since their discovery in 1970s. To improve and extend their functions, the fabrication of multi-functionalized conducting polymer nanocomposites has attracted a great deal of attention because of the emergence of nanotechnology. This article presents an overview of the synthesis of one-dimensional (1D) conducting polymer nanocomposites and their properties and applications. Nanocomposites consist of conducting polymers and one or more components, which can be carbon nanotubes, metals, oxide nanomaterials, chalcogenides, insulating or conducting polymers, biological materials, metal phthalocyanines and porphyrins, etc. The properties of 1D conducting polymer nanocomposites will be widely discussed. Special attention is paid to the difference in the properties between 1D conducting polymer nanocomposites and bulk conducting polymers. Applications of 1D conducting polymer nanocomposites described include electronic nanodevices, chemical and biological sensors, catalysis and electrocatalysis, energy, microwave absorption and electromagnetic interference (EMI) shielding, electrorheological (ER) fluids, and biomedicine. The advantages of 1D conducting polymer nanocomposites over the parent conducting polymers are highlighted. Combined with the intrinsic properties and synergistic effect of each component, it is anticipated that 1D conducting polymer nanocomposites will play an important role in various fields of nanotechnology.
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U2 - 10.1016/j.progpolymsci.2010.07.010
DO - 10.1016/j.progpolymsci.2010.07.010
M3 - Review article
AN - SCOPUS:79952984832
SN - 0079-6700
VL - 36
SP - 671
EP - 712
JO - Progress in Polymer Science (Oxford)
JF - Progress in Polymer Science (Oxford)
IS - 5
ER -