Modelling of electrical conductivity of the systems based on polyethers and carbon nanotubes
Saved in:
| Date: | 2016 |
|---|---|
| Main Authors: | E. A. Lysenkov, V. V. Klepko |
| Format: | Article |
| Language: | English |
| Published: |
2016
|
| Series: | Electronic modeling |
| Online Access: | http://jnas.nbuv.gov.ua/article/UJRN-0000800436 |
| Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
| Journal Title: | Library portal of National Academy of Sciences of Ukraine | LibNAS |
Institution
Library portal of National Academy of Sciences of Ukraine | LibNASSimilar Items
Combined model for description of electrical conductivity of the systems based on polyethers and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2016)
by: E. A. Lysenkov, et al.
Published: (2016)
Influence of external pressure on conductivity of systems based on polyethylene oxide and carbon nanotubes
by: Lysenkov, E.A., et al.
Published: (2016)
by: Lysenkov, E.A., et al.
Published: (2016)
Electrical and optical percolation in systems based on polypropylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2013)
by: E. A. Lysenkov, et al.
Published: (2013)
Simulation of contact phenomena in systems based on oligoethers and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2018)
by: E. A. Lysenkov, et al.
Published: (2018)
Electric field effect on the percolative behavior of systems based on polyethylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Electric field effect on the percolative behavior of systems based on polyethylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Pressure effects on the percolation behavior of systems based on polyethylene oxide and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2016)
by: E. A. Lysenkov, et al.
Published: (2016)
Pressure effects on the percolation behavior of systems based on polyethylene oxide and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2016)
by: E. A. Lysenkov, et al.
Published: (2016)
Percolation properties of systems based on polypropylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2013)
by: E. A. Lysenkov, et al.
Published: (2013)
Percolation properties of systems based on polypropylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2013)
by: E. A. Lysenkov, et al.
Published: (2013)
Nonisothermal crystallization kinetics of the systems based on polyethylene oxide and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Electrical and mechanical properties of the systems based on the cross-linked polyurethanes modified with multiwalled carbon nanotubes
by: Z. O. Haholkina, et al.
Published: (2015)
by: Z. O. Haholkina, et al.
Published: (2015)
Features of percolation transition in systems on the basis of oligoglycols and carbon nanotubes
by: V. V. Klepko, et al.
Published: (2015)
by: V. V. Klepko, et al.
Published: (2015)
Features of percolation transition in systems on the basis of oligoglycols and carbon nanotubes
by: V. V. Klepko, et al.
Published: (2015)
by: V. V. Klepko, et al.
Published: (2015)
Influence of temperature on percolation behaviour of systems based on polyethylene oxide and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Influence of the preparation method on percolative behavior of systems based on polyethylene oxide and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Influence of hydroxylic endgroups on the percolation behavior of the systems based on olygoethylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2017)
by: E. A. Lysenkov, et al.
Published: (2017)
Effect of impurities on the electric conductivity and magnetoresistance in carbon nanotubes
by: A. D. Shevchenko, et al.
Published: (2014)
by: A. D. Shevchenko, et al.
Published: (2014)
Effect of impurities on the electric conductivity and magnetoresistance in carbon nanotubes
by: A. D. Shevchenko, et al.
Published: (2014)
by: A. D. Shevchenko, et al.
Published: (2014)
Influence of the filler's surface functionalization on percolative behavior of systems based on polyethylene glykol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)
by: E. A. Lysenkov, et al.
Published: (2014)
Simulation of the Percolation Behavior of the Properties of Polymer Nanocomposites Filled with Carbon Nanotubes
by: E. A. Lysenkov, et al.
Published: (2022)
by: E. A. Lysenkov, et al.
Published: (2022)
Influence of the introduction method of the filler on thermophysical properties of the systems based on thermoplastic polymers and carbon nanotubes
by: R. V. Dinzhos, et al.
Published: (2014)
by: R. V. Dinzhos, et al.
Published: (2014)
Influence of various preparation methods on percolation behavior of systems based on cross-linked polyurethanes and carbon nanotubes
by: Lysenkov, E.A., et al.
Published: (2018)
by: Lysenkov, E.A., et al.
Published: (2018)
Electrical conductivity of polymer/carbon nanotubes nanocomposites at low temperatures
by: L. Bardash, et al.
Published: (2018)
by: L. Bardash, et al.
Published: (2018)
The influence of carbon nanotubes on the sensitivity of humidity sensors based on organic-inorganic polymer materials
by: Lysenkov, E.A., et al.
Published: (2015)
by: Lysenkov, E.A., et al.
Published: (2015)
Structural features of polymer nanocomposites based on polypropylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2015)
by: E. A. Lysenkov, et al.
Published: (2015)
Structure-property relationships in polymer nanocomposites based on cross-linked polyurethanes and carbon nanotubes
by: Lysenkov, E.A., et al.
Published: (2015)
by: Lysenkov, E.A., et al.
Published: (2015)
Influence of carbon nanotubes on the electrical conductivity of PVDF/PANI/MWCNT nanocomposites at low temperatures
by: R. M. Rudenko, et al.
Published: (2022)
by: R. M. Rudenko, et al.
Published: (2022)
Influence of carbon nanotubes on the electrical conductivity of PVDF/PANI/MWCNT nanocomposites at low temperatures
by: R. M. Rudenko, et al.
Published: (2022)
by: R. M. Rudenko, et al.
Published: (2022)
Structural models for describing x-ray scattering from carbon nanotubes
by: E. A. Lisenkov, et al.
Published: (2018)
by: E. A. Lisenkov, et al.
Published: (2018)
Optical transmittance and electric conductivity in nematic dispersions containing carbon nanotubes and organomodified montmorillonite
by: Minenko, S.S., et al.
Published: (2009)
by: Minenko, S.S., et al.
Published: (2009)
The influence of carbon nanotubes on mechanical properties of the cross-linked polyurethanes
by: E. A. Lysenkov, et al.
Published: (2017)
by: E. A. Lysenkov, et al.
Published: (2017)
Study of the structural features of multilayer carbon nanotubes by X-ray analysis
by: E. A. Lysenkov, et al.
Published: (2015)
by: E. A. Lysenkov, et al.
Published: (2015)
Viscosity of solution of polyamic acid based on card diamines filled by carbon nanotubes
by: T. A. Shantalii, et al.
Published: (2017)
by: T. A. Shantalii, et al.
Published: (2017)
Synthesis and properties of sulfonated nucleus-fluorinated aromatic polyethers
by: I. M. Tkachenko, et al.
Published: (2014)
by: I. M. Tkachenko, et al.
Published: (2014)
Modelling of the structural relaxation in the glassing area of polymer composite materials filled by carbon nanotubes
by: R. Dinzhos, et al.
Published: (2015)
by: R. Dinzhos, et al.
Published: (2015)
Influence of temperature variation on the electrical conductivity of zigzag carbon nanotubes under homogeneous axial dc field
by: M. Amekpewu, et al.
Published: (2021)
by: M. Amekpewu, et al.
Published: (2021)
Effect of molecular weight on the properties of polyethylene glycol doped by multiwalled carbon nanotubes
by: L. A. Bulavin, et al.
Published: (2015)
by: L. A. Bulavin, et al.
Published: (2015)
Magnetoresistance of nanocarbon materials based on carbon nanotubes
by: T. A. Len, et al.
Published: (2011)
by: T. A. Len, et al.
Published: (2011)
Influence of noncovalent modification of carbon nanotubes by polyethylene glycol on their distribution in the polymer matrix
by: E. Lysenkov, et al.
Published: (2022)
by: E. Lysenkov, et al.
Published: (2022)
Similar Items
-
Combined model for description of electrical conductivity of the systems based on polyethers and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2016) -
Influence of external pressure on conductivity of systems based on polyethylene oxide and carbon nanotubes
by: Lysenkov, E.A., et al.
Published: (2016) -
Electrical and optical percolation in systems based on polypropylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2013) -
Simulation of contact phenomena in systems based on oligoethers and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2018) -
Electric field effect on the percolative behavior of systems based on polyethylene glycol and carbon nanotubes
by: E. A. Lysenkov, et al.
Published: (2014)