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Does Size Matter? The Case of Piezoresistive Properties of Carbon Nanotubes/Elastomer Nanocomposite Synthesized Through Mechanochemistry

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Date 2022 Nov 11
PMID 36364523
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Abstract

The growing interest in piezoresistive sensors has favored the development of numerous approaches and materials for their fabrication. Within this framework, carbon nanotubes (CNTs) are often employed. However, CNTs are a heterogeneous material with different morphological characteristics in terms of length and diameter, and, so far, experimental studies have not usually considered the effect of these parameters on the final sensor performances. Here, we observe how, by simply changing the CNTs length in a solvent-free mechanochemistry fabrication method, different porous 3D elastomeric nanocomposites with different electrical and mechanical properties can be obtained. In particular, the use of longer carbon nanotubes allows the synthesis of porous nanocomposites with better mechanical stability and conductivity, and with a nine-times-lower limit of detection (namely 0.2 Pa) when used as a piezoresistive sensor. Moreover, the material prepared with longer carbon nanotubes evidenced a faster recovery of its shape and electrical properties during press/release cycles, thus allowing faster response at different pressures. These results provide evidence as to how CNTs length can be a key aspect in obtaining piezoresistive sensors with better properties.

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References
1.
Yan C, Wang J, Kang W, Cui M, Wang X, Foo C . Highly stretchable piezoresistive graphene-nanocellulose nanopaper for strain sensors. Adv Mater. 2013; 26(13):2022-7. DOI: 10.1002/adma.201304742. View

2.
Turco A, Moglianetti M, Corvaglia S, Rella S, Catelani T, Marotta R . Sputtering-Enabled Intracellular X-ray Photoelectron Spectroscopy: A Versatile Method To Analyze the Biological Fate of Metal Nanoparticles. ACS Nano. 2018; 12(8):7731-7740. DOI: 10.1021/acsnano.8b01612. View

3.
Turco A, Monteduro A, Mazzotta E, Maruccio G, Malitesta C . An Innovative Porous Nanocomposite Material for the Removal of Phenolic Compounds from Aqueous Solutions. Nanomaterials (Basel). 2018; 8(5). PMC: 5977348. DOI: 10.3390/nano8050334. View

4.
Khan Y, Ostfeld A, Lochner C, Pierre A, Arias A . Monitoring of Vital Signs with Flexible and Wearable Medical Devices. Adv Mater. 2016; 28(22):4373-95. DOI: 10.1002/adma.201504366. View

5.
Yang J, Mun J, Kwon S, Park S, Bao Z, Park S . Electronic Skin: Recent Progress and Future Prospects for Skin-Attachable Devices for Health Monitoring, Robotics, and Prosthetics. Adv Mater. 2019; 31(48):e1904765. DOI: 10.1002/adma.201904765. View