New Molecular Architecture for Electrically Conducting Materials Based on Unsymmetrical Organometallic-Dithiolene Complexes

Author(s):  
Kazuya Kubo ◽  
Reizo Kato
Materials ◽  
2020 ◽  
Vol 14 (1) ◽  
pp. 65
Author(s):  
Monika Rdest ◽  
Dawid Janas

More and more electrically conducting materials are required to sustain the technological progress of civilization. Faced with the performance limits of classical materials, the R&D community has put efforts into developing nanomaterials, which can offer sufficiently high operational parameters. In this work, single-walled carbon nanotubes (SWCNTs) were doped with polyethyleneimine (PEI) to create such material. The results show that it is most fruitful to combine these components at the synthesis stage of an SWCNT network from their dispersion. In this case, the electrical conductivity of the material is boosted from 249 ± 21 S/cm to 1301 ± 56 S/cm straightforwardly and effectively.


2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Katarzyna Krukiewicz ◽  
James Britton ◽  
Daria Więcławska ◽  
Małgorzata Skorupa ◽  
Jorge Fernandez ◽  
...  

AbstractBy providing a bidirectional communication channel between neural tissues and a biomedical device, it is envisaged that neural interfaces will be fundamental in the future diagnosis and treatment of neurological disorders. Due to the mechanical mismatch between neural tissue and metallic neural electrodes, soft electrically conducting materials are of great benefit in promoting chronic device functionality. In this study, carbon nanotubes (CNT), silver nanowires (AgNW) and poly(hydroxymethyl 3,4-ethylenedioxythiophene) microspheres (MSP) were employed as conducting fillers within a poly(ε-decalactone) (EDL) matrix, to form a soft and electrically conducting composite. The effect of a filler type on the electrical percolation threshold, and composite biocompatibility was investigated in vitro. EDL-based composites exhibited favourable electrochemical characteristics: EDL/CNT—the lowest film resistance (1.2 ± 0.3 kΩ), EDL/AgNW—the highest charge storage capacity (10.7 ± 0.3 mC cm− 2), and EDL/MSP—the highest interphase capacitance (1478.4 ± 92.4 µF cm−2). All investigated composite surfaces were found to be biocompatible, and to reduce the presence of reactive astrocytes relative to control electrodes. The results of this work clearly demonstrated the ability of high aspect ratio structures to form an extended percolation network within a polyester matrix, resulting in the formulation of composites with advantageous mechanical, electrochemical and biocompatibility properties.


Metallurgist ◽  
1978 ◽  
Vol 22 (1) ◽  
pp. 27-27
Author(s):  
P. A. Polovoi ◽  
V. I. Grankovskii ◽  
A. M. Nikolaenko ◽  
M. Yu. Pazyuk ◽  
K. V. Molokankin

1997 ◽  
Vol 86 (1-3) ◽  
pp. 1791-1793 ◽  
Author(s):  
A.E. Pullen ◽  
K.A. Abboud ◽  
J.R. Reynolds ◽  
J. Piotraschke ◽  
S. Zeltner ◽  
...  

Materials ◽  
2020 ◽  
Vol 13 (11) ◽  
pp. 2645
Author(s):  
Rudolf Hufenus ◽  
Ali Gooneie ◽  
Tutu Sebastian ◽  
Pietro Simonetti ◽  
Andreas Geiger ◽  
...  

Safety workwear often requires antistatic protection to prevent the build-up of static electricity and sparks, which can be extremely dangerous in a working environment. In order to make synthetic antistatic fibers, electrically conducting materials such as carbon black are added to the fiber-forming polymer. This leads to unwanted dark colors in the respective melt-spun fibers. To attenuate the undesired dark color, we looked into various possibilities including the embedding of the conductive element inside a dull side-by-side bicomponent fiber. The bicomponent approach, with an antistatic compound as a minor element, also helped in preventing the severe loss of tenacity often caused by a high additive loading. We could melt-spin a bicomponent fiber with a specific resistance as low as 0.1 Ωm and apply it in a fabric that fulfills the requirements regarding the antistatic properties, luminance and flame retardancy of safety workwear.


2005 ◽  
pp. 239-246
Author(s):  
Alex Dommann ◽  
Marco Cucinelli ◽  
Matthias Werner ◽  
Marc-Aurele Nicolet

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