Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications

Electrically-conducting polymers (CPs) were first developed as a revolutionary class of organic compounds that possess optical and electrical properties comparable to that of metals as well as inorganic semiconductors and display the commendable properties correlated with traditional polymers, like...

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Main Authors: Shubham Sharma, P. Sudhakara, Abdoulhdi A. Borhana Omran, Jujhar Singh, R. A. Ilyas
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/17/2898
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spelling doaj-f19f32dad6574cffa465380e6cb4d8002021-09-09T13:54:16ZengMDPI AGPolymers2073-43602021-08-01132898289810.3390/polym13172898Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional ApplicationsShubham Sharma0P. Sudhakara1Abdoulhdi A. Borhana Omran2Jujhar Singh3R. A. Ilyas4Regional Centre for Extension and Development, CSIR-Central Leather Research Institute, Leather Complex, Kapurthala Road, Jalandhar 144021, Punjab, IndiaRegional Centre for Extension and Development, CSIR-Central Leather Research Institute, Leather Complex, Kapurthala Road, Jalandhar 144021, Punjab, IndiaDepartment of Mechanical Engineering, College of Engineering, Universiti Tenaga Nasional, Jalan Ikram-Uniten, Kajang 43000, Selangor, MalaysiaDepartment of Mechanical Engineering, IK Gujral Punjab Technical University, Jalandhar-Kapurthala, Highway, VPO, Ibban 144603, Punjab, IndiaSchool of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Johor Bahru 81310, Johor, MalaysiaElectrically-conducting polymers (CPs) were first developed as a revolutionary class of organic compounds that possess optical and electrical properties comparable to that of metals as well as inorganic semiconductors and display the commendable properties correlated with traditional polymers, like the ease of manufacture along with resilience in processing. Polymer nanocomposites are designed and manufactured to ensure excellent promising properties for anti-static (electrically conducting), anti-corrosion, actuators, sensors, shape memory alloys, biomedical, flexible electronics, solar cells, fuel cells, supercapacitors, LEDs, and adhesive applications with desired-appealing and cost-effective, functional surface coatings. The distinctive properties of nanocomposite materials involve significantly improved mechanical characteristics, barrier-properties, weight-reduction, and increased, long-lasting performance in terms of heat, wear, and scratch-resistant. Constraint in availability of power due to continuous depletion in the reservoirs of fossil fuels has affected the performance and functioning of electronic and energy storage appliances. For such reasons, efforts to modify the performance of such appliances are under way through blending design engineering with organic electronics. Unlike conventional inorganic semiconductors, organic electronic materials are developed from conducting polymers (CPs), dyes and charge transfer complexes. However, the conductive polymers are perhaps more bio-compatible rather than conventional metals or semi-conductive materials. Such characteristics make it more fascinating for bio-engineering investigators to conduct research on polymers possessing antistatic properties for various applications. An extensive overview of different techniques of synthesis and the applications of polymer bio-nanocomposites in various fields of sensors, actuators, shape memory polymers, flexible electronics, optical limiting, electrical properties (batteries, solar cells, fuel cells, supercapacitors, LEDs), corrosion-protection and biomedical application are well-summarized from the findings all across the world in more than 150 references, exclusively from the past four years. This paper also presents recent advancements in composites of rare-earth oxides based on conducting polymer composites. Across a variety of biological and medical applications, the fact that numerous tissues were receptive to electric fields and stimuli made CPs more enticing.https://www.mdpi.com/2073-4360/13/17/2898biomedicalconducting polymerscorrosiondopedelectronicsshape memory polymers
collection DOAJ
language English
format Article
sources DOAJ
author Shubham Sharma
P. Sudhakara
Abdoulhdi A. Borhana Omran
Jujhar Singh
R. A. Ilyas
spellingShingle Shubham Sharma
P. Sudhakara
Abdoulhdi A. Borhana Omran
Jujhar Singh
R. A. Ilyas
Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
Polymers
biomedical
conducting polymers
corrosion
doped
electronics
shape memory polymers
author_facet Shubham Sharma
P. Sudhakara
Abdoulhdi A. Borhana Omran
Jujhar Singh
R. A. Ilyas
author_sort Shubham Sharma
title Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
title_short Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
title_full Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
title_fullStr Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
title_full_unstemmed Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications
title_sort recent trends and developments in conducting polymer nanocomposites for multifunctional applications
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-08-01
description Electrically-conducting polymers (CPs) were first developed as a revolutionary class of organic compounds that possess optical and electrical properties comparable to that of metals as well as inorganic semiconductors and display the commendable properties correlated with traditional polymers, like the ease of manufacture along with resilience in processing. Polymer nanocomposites are designed and manufactured to ensure excellent promising properties for anti-static (electrically conducting), anti-corrosion, actuators, sensors, shape memory alloys, biomedical, flexible electronics, solar cells, fuel cells, supercapacitors, LEDs, and adhesive applications with desired-appealing and cost-effective, functional surface coatings. The distinctive properties of nanocomposite materials involve significantly improved mechanical characteristics, barrier-properties, weight-reduction, and increased, long-lasting performance in terms of heat, wear, and scratch-resistant. Constraint in availability of power due to continuous depletion in the reservoirs of fossil fuels has affected the performance and functioning of electronic and energy storage appliances. For such reasons, efforts to modify the performance of such appliances are under way through blending design engineering with organic electronics. Unlike conventional inorganic semiconductors, organic electronic materials are developed from conducting polymers (CPs), dyes and charge transfer complexes. However, the conductive polymers are perhaps more bio-compatible rather than conventional metals or semi-conductive materials. Such characteristics make it more fascinating for bio-engineering investigators to conduct research on polymers possessing antistatic properties for various applications. An extensive overview of different techniques of synthesis and the applications of polymer bio-nanocomposites in various fields of sensors, actuators, shape memory polymers, flexible electronics, optical limiting, electrical properties (batteries, solar cells, fuel cells, supercapacitors, LEDs), corrosion-protection and biomedical application are well-summarized from the findings all across the world in more than 150 references, exclusively from the past four years. This paper also presents recent advancements in composites of rare-earth oxides based on conducting polymer composites. Across a variety of biological and medical applications, the fact that numerous tissues were receptive to electric fields and stimuli made CPs more enticing.
topic biomedical
conducting polymers
corrosion
doped
electronics
shape memory polymers
url https://www.mdpi.com/2073-4360/13/17/2898
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