Stretchable Conductive Polymers and Composites Based on PEDOT and PEDOT:PSS

被引:925
作者
Kayser, Laure, V [1 ]
Lipomi, Darren J. [1 ]
机构
[1] Univ Calif San Diego, Dept NanoEngn, 9500 Gilman Dr,Mail Code 0448, La Jolla, CA 92093 USA
基金
美国国家卫生研究院;
关键词
bioelectronics; conductive hydrogels; conductive textiles; PEDOT:PSS; stretchable electronics; ORGANIC SOLAR-CELLS; POLY(3,4-ETHYLENEDIOXYTHIOPHENE) PEDOT; ELECTROCHEMICAL POLYMERIZATION; TRANSPARENT ELECTRODES; ELASTOMERIC COMPOSITE; SCIENTIFIC IMPORTANCE; THIN-FILMS; PSS; 3,4-ETHYLENEDIOXYTHIOPHENE; HYDROGELS;
D O I
10.1002/adma.201806133
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The conductive polymer poly(3,4-ethylenedioxythiophene) (PEDOT), and especially its complex with poly(styrene sulfonate) (PEDOT:PSS), is perhaps the most well-known example of an organic conductor. It is highly conductive, largely transmissive to light, processible in water, and highly flexible. Much recent work on this ubiquitous material has been devoted to increasing its deformability beyond flexibility-a characteristic possessed by any material that is sufficiently thin-toward stretchability, a characteristic that requires engineering of the structure at the molecular- or nanoscale. Stretchability is the enabling characteristic of a range of applications envisioned for PEDOT in energy and healthcare, such as wearable, implantable, and large-area electronic devices. High degrees of mechanical deformability allow intimate contact with biological tissues and solution-processable printing techniques (e.g., roll-to-roll printing). PEDOT:PSS, however, is only stretchable up to around 10%. Here, the strategies that have been reported to enhance the stretchability of conductive polymers and composites based on PEDOT and PEDOT:PSS are highlighted. These strategies include blending with plasticizers or polymers, deposition on elastomers, formation of fibers and gels, and the use of intrinsically stretchable scaffolds for the polymerization of PEDOT.
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页数:13
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共 162 条
[1]   Interfacing Conducting Polymer Nanotubes with the Central Nervous System: Chronic Neural Recording using Poly (3,4-ethylenedioxythiophene) Nanotubes [J].
Abidian, Mohammad Reza ;
Ludwig, Kip A. ;
Marzullo, Timothy C. ;
Martin, David C. ;
Kipke, Daryl R. .
ADVANCED MATERIALS, 2009, 21 (37) :3764-3770
[2]   Multifunctional Nanobiomaterials for Neural Interfaces [J].
Abidian, Mohammad Reza ;
Martin, David C. .
ADVANCED FUNCTIONAL MATERIALS, 2009, 19 (04) :573-585
[3]   Metallic conductivity at low temperatures in poly(3,4-ethylenedioxythiophene) doped with PF6 [J].
Aleshin, A ;
Kiebooms, R ;
Menon, R ;
Wudl, F ;
Heeger, AJ .
PHYSICAL REVIEW B, 1997, 56 (07) :3659-3663
[4]  
Aregueta-Robles Ulises A, 2014, Front Neuroeng, V7, P15, DOI 10.3389/fneng.2014.00015
[5]   Electroactive polymers for neural interfaces [J].
Asplund, Maria ;
Nyberg, Tobias ;
Inganas, Olle .
POLYMER CHEMISTRY, 2010, 1 (09) :1374-1391
[6]   All-Printed Stretchable Electrochemical Devices [J].
Bandodkar, Amay J. ;
Nunez-Flores, Rogelio ;
Jia, Wenzhao ;
Wang, Joseph .
ADVANCED MATERIALS, 2015, 27 (19) :3060-3065
[7]   A soft, stretchable and conductive biointerface for cell mechanobiology [J].
Bernardeschi, Irene ;
Greco, Francesco ;
Ciofani, Gianni ;
Marino, Attilio ;
Mattoli, Virgilio ;
Mazzolai, Barbara ;
Beccai, Lucia .
BIOMEDICAL MICRODEVICES, 2015, 17 (02)
[8]   Conductive polymers for thermoelectric power generation [J].
Bharti, Meetu ;
Singh, Ajay ;
Samanta, Soumen ;
Aswal, D. K. .
PROGRESS IN MATERIALS SCIENCE, 2018, 93 :270-310
[9]   Fully Printed Electrodes on Stretchable Textiles for Long-Term Electrophysiology [J].
Bihar, Eloise ;
Roberts, Timothee ;
Ismailova, Esma ;
Saadaoui, Mohamed ;
Isik, Mehmet ;
Sanchez-Sanchez, Ana ;
Mecerreyes, David ;
Herve, Thierry ;
De Graaf, Jozina B. ;
Malliaras, George G. .
ADVANCED MATERIALS TECHNOLOGIES, 2017, 2 (04)
[10]  
Bowen Y., 2017, ADV MATER, V29