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1.
Int J Mol Sci ; 21(20)2020 Oct 15.
Article in English | MEDLINE | ID: mdl-33076446

ABSTRACT

Carbon nanocomposites present a new class of nanomaterials in which conducting carbon nanoparticles are a small additive to a non-conducting matrix. A typical example of such composites is a polymer matrix doped with carbon nanotubes (CNT). Due to a high aspect ratio of CNTs, inserting rather low quantity of nanotubes (on the level of 0.01%) results in the percolation transition, which causes the enhancement in the conductivity of the material by 10-12 orders of magnitude. Another type of nanocarbon composite is a film produced as a result of reduction of graphene oxide (GO). Such a film is consisted of GO fragments whose conductivity is determined by the degree of reduction. A distinctive peculiarity of both types of nanocomposites relates to the dependence of the conductivity of those materials on the applied voltage. Such a behavior is caused by a non-ideal contact between neighboring carbon nanoparticles incorporated into the composite. The resistance of such a contact depends sharply on the electrical field strength and therefore on the distance between neighboring nanoparticles. Experiments demonstrating non-linear, non-Ohmic behavior of both above-mentioned types of carbon nanocomposites are considered in the present article. There has been a model description presented of such a behavior based on the quasi-classical approach to the problem of electron tunneling through the barrier formed by the electric field. The calculation results correspond qualitatively to the available experimental data.


Subject(s)
Graphite/chemistry , Nanocomposites/chemistry , Filtration , Nanotubes, Carbon/chemistry
2.
Eur J Pharm Biopharm ; 87(1): 64-72, 2014 May.
Article in English | MEDLINE | ID: mdl-24530427

ABSTRACT

When nanocarriers are used for drug delivery they can often achieve superior therapeutic outcomes over standard drug formulations. However, concerns about their adverse effects are growing due to the association between exposure to certain nanosized particles and cardiovascular events. Here we examine the impact of intravenously injected drug-free nanocarriers on the cardiovasculature at both the systemic and organ levels. We combine in vivo and in vitro methods to enable monitoring of hemodynamic parameters in conscious rats, assessments of the function of the vessels after sub-chronic systemic exposure to nanocarriers and evaluation of the direct effect of nanocarriers on vascular tone. We demonstrate that nanocarriers can decrease blood pressure and increase heart rate in vivo via various mechanisms. Depending on the type, nanocarriers induce the dilation of the resistance arteries and/or change the responses induced by vasoconstrictor or vasodilator drugs. No direct correlation between physicochemical properties and cardiovascular effects of nanoparticles was observed. The proposed combination of methods empowers the studies of cardiovascular adverse effects of the nanocarriers.


Subject(s)
Cardiovascular Physiological Phenomena/drug effects , Cardiovascular System/drug effects , Nanoparticles/adverse effects , Nanotubes, Carbon/adverse effects , Animals , Aorta, Thoracic/drug effects , Blood Pressure/drug effects , Endothelium, Vascular/drug effects , Heart Rate/drug effects , In Vitro Techniques , Injections, Intravenous , Male , Nanoparticles/administration & dosage , Nanoparticles/chemistry , Nanotubes, Carbon/chemistry , Particle Size , Polymethacrylic Acids/administration & dosage , Polymethacrylic Acids/adverse effects , Polymethacrylic Acids/chemistry , Porosity , Rats, Wistar , Silicon/administration & dosage , Silicon/adverse effects , Silicon/chemistry , Surface Properties , Vascular Resistance/drug effects , Vasodilation/drug effects
3.
Nanomaterials (Basel) ; 3(3): 393-442, 2013 Jul 17.
Article in English | MEDLINE | ID: mdl-28348342

ABSTRACT

Theoretical problems arising in connection with development and operation of electron field emitters on the basis of carbon nanotubes are reviewed. The physical aspects of electron field emission that underlie the unique emission properties of carbon nanotubes (CNTs) are considered. Physical effects and phenomena affecting the emission characteristics of CNT cathodes are analyzed. Effects given particular attention include: the electric field amplification near a CNT tip with taking into account the shape of the tip, the deviation from the vertical orientation of nanotubes and electrical field-induced alignment of those; electric field screening by neighboring nanotubes; statistical spread of the parameters of the individual CNTs comprising the cathode; the thermal effects resulting in degradation of nanotubes during emission. Simultaneous consideration of the above-listed effects permitted the development of the optimization procedure for CNT array in terms of the maximum reachable emission current density. In accordance with this procedure, the optimum inter-tube distance in the array depends on the region of the external voltage applied. The phenomenon of self-misalignment of nanotubes in an array has been predicted and analyzed in terms of the recent experiments performed. A mechanism of degradation of CNT-based electron field emitters has been analyzed consisting of the bombardment of the emitters by ions formed as a result of electron impact ionization of the residual gas molecules.

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