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Nanostructured Conducting Polymers and Their Applications in Energy Storage Devices

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Publisher MDPI
Date 2023 Mar 29
PMID 36987228
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Abstract

Due to the energy requirements for various human activities, and the need for a substantial change in the energy matrix, it is important to research and design new materials that allow the availability of appropriate technologies. In this sense, together with proposals that advocate a reduction in the conversion, storage, and feeding of clean energies, such as fuel cells and electrochemical capacitors energy consumption, there is an approach that is based on the development of better applications for and batteries. An alternative to commonly used inorganic materials is conducting polymers (CP). Strategies based on the formation of composite materials and nanostructures allow outstanding performances in electrochemical energy storage devices such as those mentioned. Particularly, the nanostructuring of CP stands out because, in the last two decades, there has been an important evolution in the design of various types of nanostructures, with a strong focus on their synergistic combination with other types of materials. This bibliographic compilation reviews state of the art in this area, with a special focus on how nanostructured CP would contribute to the search for new materials for the development of energy storage devices, based mainly on the morphology they present and on their versatility to be combined with other materials, which allows notable improvements in aspects such as reduction in ionic diffusion trajectories and electronic transport, optimization of spaces for ion penetration, a greater number of electrochemically active sites and better stability in charge/discharge cycles.

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References
1.
Jang J, Yoon H . Formation mechanism of conducting polypyrrole nanotubes in reverse micelle systems. Langmuir. 2005; 21(24):11484-9. DOI: 10.1021/la051447u. View

2.
Zhao Y, Ma L, Zhu Y, Qin P, Li H, Mo F . Inhibiting Grain Pulverization and Sulfur Dissolution of Bismuth Sulfide by Ionic Liquid Enhanced Poly(3,4-ethylenedioxythiophene):Poly(styrenesulfonate) for High-Performance Zinc-Ion Batteries. ACS Nano. 2019; 13(6):7270-7280. DOI: 10.1021/acsnano.9b02986. View

3.
Meng Y, Zhao Y, Hu C, Cheng H, Hu Y, Zhang Z . All-graphene core-sheath microfibers for all-solid-state, stretchable fibriform supercapacitors and wearable electronic textiles. Adv Mater. 2013; 25(16):2326-31. DOI: 10.1002/adma.201300132. View

4.
Ryu H, Yoon H, Kim S . Hybrid Energy Harvesters: Toward Sustainable Energy Harvesting. Adv Mater. 2019; 31(34):e1802898. DOI: 10.1002/adma.201802898. View

5.
Walcarius A, Sibottier E, Etienne M, Ghanbaja J . Electrochemically assisted self-assembly of mesoporous silica thin films. Nat Mater. 2007; 6(8):602-8. DOI: 10.1038/nmat1951. View