silicone coatings
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Materials ◽  
2021 ◽  
Vol 14 (24) ◽  
pp. 7841
Author(s):  
Kristin Trommer ◽  
Minoj Gnanaseelan

The incorporation of MWCNTs in polymer systems up to the percolation range renders them electrically conductive. However, this conductivity is not high enough for heating applications in the low-voltage range (<24 V). The combination of nanoscaled MWCNTs with microscaled short SWCNT fibers that was investigated in this study causes an abrupt rise in the conductivity of the material by more than an order of magnitude. Silicone was used as a flexible and high-temperature-resistant matrix polymer. Conductive silicone coatings and films with SWCF contents of 1.5% to 5% and constant MWCNT contents of 3% and 5% were developed, and their electrical and thermal properties in the voltage range between 6 and 48 V were investigated. The electrical conductivity of 3% MWCNT composite materials rose with a 5% addition of SWCFs. Because of this spike in conductivity, output power of 1260 W/m2 was achieved, for example, for a 100 µm thick composite containing 3% MWCNT and 4% SWCF at 24 V with a line spacing of 20 cm. Thermal measurements show a temperature increase of 69 K under these conditions. These findings support the use of such conductive silicone composites for high-performance coatings and films for challenging and high-quality applications.


2021 ◽  
Vol 161 ◽  
pp. 106483
Author(s):  
Qinwen Zheng ◽  
Jian Lv ◽  
Jing Zhang ◽  
Jie Feng
Keyword(s):  

Author(s):  
Jiankun Hu ◽  
Haichun Zhang ◽  
Baoku Sun ◽  
Ading Lu ◽  
Guolun Zhong ◽  
...  
Keyword(s):  

Micromachines ◽  
2021 ◽  
Vol 12 (7) ◽  
pp. 761
Author(s):  
Arati Sridharan ◽  
Jit Muthuswamy

Several recent studies have reported improved histological and electrophysiological outcomes with soft neural interfaces that have elastic moduli ranging from 10 s of kPa to hundreds of MPa. However, many of these soft interfaces use custom fabrication processes. We test the hypothesis that a readily adoptable fabrication process for only coating the tips of microelectrodes with soft brain-like (elastic modulus of ~5 kPa) material improves the long-term electrical performance of neural interfaces. Conventional tungsten microelectrodes (n = 9 with soft coatings and n = 6 uncoated controls) and Pt/Ir microelectrodes (n = 16 with soft coatings) were implanted in six animals for durations ranging from 5 weeks to over 1 year in a subset of rats. Electrochemical impedance spectroscopy was used to assess the quality of the brain tissue–electrode interface under chronic conditions. Neural recordings were assessed for unit activity and signal quality. Electrodes with soft, silicone coatings showed relatively stable electrical impedance characteristics over 6 weeks to >1 year compared to the uncoated control electrodes. Single unit activity recorded by coated electrodes showed larger peak-to-peak amplitudes and increased number of detectable neurons compared to uncoated controls over 6–7 weeks. We demonstrate the feasibility of using a readily translatable process to create brain-like soft interfaces that can potentially overcome variable performance associated with chronic rigid neural interfaces.


Electronics ◽  
2021 ◽  
Vol 10 (11) ◽  
pp. 1362
Author(s):  
Shahood uz Zaman ◽  
Xuyuan Tao ◽  
Cédric Cochrane ◽  
Vladan Koncar

The development of specific user-based wearable smart textiles is gaining interest. The reliability and washability of e-textiles, especially electronic-based components of e-textiles, are under particular investigation nowadays. This is because e-textiles cannot be washed like normal textile products and washing electronic products is not common practice in our daily life. To adopt the e-textile products in our daily life, new standards, based on product usage, should be developed especially for flexibility and washability. The wearable motherboards are the main component for e-textile systems. They should be washing reliable and flexible for better adoption in the system. In this manuscript, flexible wearable PCBs were prepared with different conductive track widths and protected with silicone coatings. The samples were washed for 50 washing cycles in the household washing machine, and provoked damages were investigated. The PCBs were also investigated for bending tests (simulating mechanical stresses in the washing machine), and resultant damages were discussed and co-related with washing damages. The bending test was performed by bending the FPCBs at 90° over the circular rod and under the known hanging load.


Author(s):  
Guangmeng Chen ◽  
Shifeng Wen ◽  
Jiacheng Ma ◽  
Zhiyong Sun ◽  
Cunguo Lin ◽  
...  

2021 ◽  
Vol 153 ◽  
pp. 106116
Author(s):  
Émilie Portier ◽  
Fabrice Azemar ◽  
Belkacem Tarek Benkhaled ◽  
Jean-François Bardeau ◽  
Fabienne Faÿ ◽  
...  
Keyword(s):  

2020 ◽  
Vol 32 (29) ◽  
pp. 2070215
Author(s):  
Huaixia Zhao ◽  
Qiangqiang Sun ◽  
Ji Zhou ◽  
Xu Deng ◽  
Jiaxi Cui

2020 ◽  
Vol 32 (29) ◽  
pp. 2000870 ◽  
Author(s):  
Huaixia Zhao ◽  
Qiangqiang Sun ◽  
Ji Zhou ◽  
Xu Deng ◽  
Jiaxi Cui

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