Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review

The development of polyaniline (PANI)/biomaterial composites as humidity sensor materials represents an emerging area of advanced materials with promising applications. The increasing attention to biopolymer materials as desiccants for humidity sensor components can be explained by their sustainabil...

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Main Authors: Yuriy A. Anisimov, Richard W. Evitts, Duncan E. Cree, Lee D. Wilson
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/16/2722
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spelling doaj-995eb3e2d3b043638b5a11f780eba4d82021-08-26T14:15:21ZengMDPI AGPolymers2073-43602021-08-01132722272210.3390/polym13162722Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A ReviewYuriy A. Anisimov0Richard W. Evitts1Duncan E. Cree2Lee D. Wilson3Department of Chemistry, University of Saskatchewan, 110 Science Place (Room 156 Thorvaldson Building), Saskatoon, SK S7N 5C9, CanadaDepartment of Chemical and Biological Engineering, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK S7N 5A9, CanadaDepartment of Mechanical Engineering, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK S7N 5A9, CanadaDepartment of Chemistry, University of Saskatchewan, 110 Science Place (Room 156 Thorvaldson Building), Saskatoon, SK S7N 5C9, CanadaThe development of polyaniline (PANI)/biomaterial composites as humidity sensor materials represents an emerging area of advanced materials with promising applications. The increasing attention to biopolymer materials as desiccants for humidity sensor components can be explained by their sustainability and propensity to absorb water. This review represents a literature survey, covering the last decade, which is focused on the interrelationship between the core properties and moisture responsiveness of multicomponent polymer/biomaterial composites. This contribution provides an overview of humidity-sensing materials and the corresponding sensors that emphasize the resistive (impedance) type of PANI devices. The key physicochemical properties that affect moisture sensitivity include the following: swelling, water vapor adsorption capacity, porosity, electrical conductivity, and enthalpies of adsorption and vaporization. Some key features of humidity-sensing materials involve the response time, recovery time, and hysteresis error. This work presents a discussion on various types of humidity-responsive composite materials that contain PANI and biopolymers, such as cellulose, chitosan and structurally related systems, along with a brief overview of carbonaceous and ceramic materials. The effect of additive components, such as polyvinyl alcohol (PVA), for film fabrication and their adsorption properties are also discussed. The mechanisms of hydration and proton transfer, as well as the relationship with conductivity is discussed. The literature survey on hydration reveals that the textural properties (surface area and pore structure) of a material, along with the hydrophile–lipophile balance (HLB) play a crucial role. The role of HLB is important in PANI/biopolymer materials for understanding hydration phenomena and hydrophobic effects. Fundamental aspects of hydration studies that are relevant to humidity sensor materials are reviewed. The experimental design of humidity sensor materials is described, and their relevant physicochemical characterization methods are covered, along with some perspectives on future directions in research on PANI-based humidity sensors.https://www.mdpi.com/2073-4360/13/16/2722humidity sensorpolyanilinebiopolymerhydrationadsorptionelectrical conductivity
collection DOAJ
language English
format Article
sources DOAJ
author Yuriy A. Anisimov
Richard W. Evitts
Duncan E. Cree
Lee D. Wilson
spellingShingle Yuriy A. Anisimov
Richard W. Evitts
Duncan E. Cree
Lee D. Wilson
Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
Polymers
humidity sensor
polyaniline
biopolymer
hydration
adsorption
electrical conductivity
author_facet Yuriy A. Anisimov
Richard W. Evitts
Duncan E. Cree
Lee D. Wilson
author_sort Yuriy A. Anisimov
title Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
title_short Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
title_full Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
title_fullStr Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
title_full_unstemmed Polyaniline/Biopolymer Composite Systems for Humidity Sensor Applications: A Review
title_sort polyaniline/biopolymer composite systems for humidity sensor applications: a review
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-08-01
description The development of polyaniline (PANI)/biomaterial composites as humidity sensor materials represents an emerging area of advanced materials with promising applications. The increasing attention to biopolymer materials as desiccants for humidity sensor components can be explained by their sustainability and propensity to absorb water. This review represents a literature survey, covering the last decade, which is focused on the interrelationship between the core properties and moisture responsiveness of multicomponent polymer/biomaterial composites. This contribution provides an overview of humidity-sensing materials and the corresponding sensors that emphasize the resistive (impedance) type of PANI devices. The key physicochemical properties that affect moisture sensitivity include the following: swelling, water vapor adsorption capacity, porosity, electrical conductivity, and enthalpies of adsorption and vaporization. Some key features of humidity-sensing materials involve the response time, recovery time, and hysteresis error. This work presents a discussion on various types of humidity-responsive composite materials that contain PANI and biopolymers, such as cellulose, chitosan and structurally related systems, along with a brief overview of carbonaceous and ceramic materials. The effect of additive components, such as polyvinyl alcohol (PVA), for film fabrication and their adsorption properties are also discussed. The mechanisms of hydration and proton transfer, as well as the relationship with conductivity is discussed. The literature survey on hydration reveals that the textural properties (surface area and pore structure) of a material, along with the hydrophile–lipophile balance (HLB) play a crucial role. The role of HLB is important in PANI/biopolymer materials for understanding hydration phenomena and hydrophobic effects. Fundamental aspects of hydration studies that are relevant to humidity sensor materials are reviewed. The experimental design of humidity sensor materials is described, and their relevant physicochemical characterization methods are covered, along with some perspectives on future directions in research on PANI-based humidity sensors.
topic humidity sensor
polyaniline
biopolymer
hydration
adsorption
electrical conductivity
url https://www.mdpi.com/2073-4360/13/16/2722
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