Development and Applications of Polypyrrole-Based Conductive Inks: An Overview

被引:0
|
作者
Meenakshy, Suresh [1 ]
Jesslyn, John [2 ]
Anas, Saithalavi [1 ,3 ]
机构
[1] Mahatma Gandhi Univ, Sch Chem Sci, Kottayam 686560, Kerala, India
[2] Indian Inst Sci Educ & Res, Dept Chem Sci, Kolkata 741246, W Bengal, India
[3] Mahatma Gandhi Univ, Adv Mol Mat Res Ctr AMMRC, Kottayam 686560, Kerala, India
关键词
conductive inks; electronics; polypyrrole; sensors; ENERGY-STORAGE; SUPERCAPACITORS; SUBSTRATE;
D O I
10.1002/admt.202401216
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Due to their flexibility, high conductivity, stability, monodispersity, and ease of processing; polypyrrole-based conductive inks hold significant advancements in printing, biomedical and electronic applications. These inks enable innovative solutions in flexible electronics, wearable devices, sensors, and energy storage systems and also facilitate high-quality printed films on various rigid and flexible substrates, supporting diverse applications from flexible circuits to smart textiles. Notably, in biomedicine, they exhibit excellent biocompatibility, and cell adhesion, aiding in tissue engineering and stem cell therapies. They serve as bioinks for 3D printing free-standing scaffolds, showing potential for creating electrically active tissue constructs. Additionally, polypyrrole inks are crucial for developing highly specific and sensitive sensors for detecting gases, chemicals, and biological analytes and efficient energy storage devices like supercapacitors. As research progresses, these inks are pivotal in the future of lightweight, flexible, portable, and wearable electronic materials and devices. This review covers a general overview of various types of polypyrrole-based conductive inks, highlighting their major applications and impacts.
引用
收藏
页数:17
相关论文
共 50 条
  • [41] Polypyrrole-based xanthine oxidase potentiometric biosensor for hypoxanthine
    Lawal, A.T.
    Adeloju, S.B.
    Journal of Applied Sciences, 2008, 8 (14) : 2599 - 2605
  • [42] Culture of human keratinocytes on polypyrrole-based conducting polymers
    Ateh, Davidson D.
    Vadgama, Pankaj
    Navsaria, Harshad A.
    TISSUE ENGINEERING, 2006, 12 (04): : 645 - 655
  • [43] Band gap modulation in polythiophene and polypyrrole-based systems
    Thaneshwor P. Kaloni
    Georg Schreckenbach
    Michael S. Freund
    Scientific Reports, 6
  • [44] Controlled exchange of metallic cations by polypyrrole-based resins
    Jérôme, C
    Martinot, L
    Strivay, D
    Weber, G
    Jérôme, R
    SYNTHETIC METALS, 2001, 118 (1-3) : 45 - 55
  • [45] Electrochemical formation of polypyrrole-based layer for immunosensor design
    Ramanavicius, A.
    Oztekin, Y.
    Ramanaviciene, A.
    SENSORS AND ACTUATORS B-CHEMICAL, 2014, 197 : 237 - 243
  • [46] Polypyrrole-based amperometric cation sensor with tunable sensitivity
    Venugopal, Vinithra
    Sundaresan, Vishnu Baba
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2016, 27 (12) : 1702 - 1709
  • [47] Polypyrrole-based optical probe for a hydrogen peroxide assay
    Wang, Haiyan
    Park, Su-Moon
    ANALYTICAL CHEMISTRY, 2007, 79 (01) : 240 - 245
  • [48] Influence of nanostructural additives on the properties of polypyrrole-based composites
    Gniadek, Marianna
    Krolikowska, Agata
    Malinowska, Sylwia
    Donten, Mikolaj
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2023, 938
  • [49] Fabrication of polypyrrole-based nanoelectrode arrays by colloidal lithography
    Valsesia, Andrea
    Lisboa, Patricia
    Colpo, Pascal
    Rossi, Francois
    ANALYTICAL CHEMISTRY, 2006, 78 (21) : 7588 - 7591
  • [50] Polypyrrole-based conducting polymers and interactions with biological tissues
    Ateh, D. D.
    Navsaria, H. A.
    Vadgama, P.
    JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2006, 3 (11) : 741 - 752