Evgenia Gilshteyn
Skolkovo Institute of Science and Technology
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Publication
Featured researches published by Evgenia Gilshteyn.
RSC Advances | 2016
Evgenia Gilshteyn; Tanja Kallio; Petri Kanninen; Ekaterina O. Fedorovskaya; Anton S. Anisimov; Albert G. Nasibulin
Stretchable all-solid supercapacitors based on aerosol synthesized single-walled carbon nanotubes (SWCNTs) have been successfully fabricated and tested. High quality SWCNT films with excellent optoelectrical and mechanical properties were used as the current collectors and active electrodes of the stretchable supercapacitors. A transmittance of up to 75% was achieved for supercapacitors made from the assembly of two PDMS/SWCNT electrodes and a gel electrolyte in between. The transparent supercapacitor has a specific capacitance of 17.5 F g−1 and can be stretched up to 120% with practically no variation in the electrochemical performance after 1000 stretching cycles and 1000 charging–discharging cycles.
Scientific Reports | 2017
Evgenia Gilshteyn; Daler Amanbayev; Anton S. Anisimov; Tanja Kallio; Albert G. Nasibulin
We report high-performance, stable, low equivalent series resistance all-nanotube stretchable supercapacitor based on single-walled carbon nanotube film electrodes and a boron nitride nanotube separator. A layer of boron nitride nanotubes, fabricated by airbrushing from isopropanol dispersion, allows avoiding problem of high internal resistance and short-circuiting of supercapacitors. The device, fabricated in a two-electrode test cell configuration, demonstrates electrochemical double layer capacitance mechanism and retains 96% of its initial capacitance after 20 000 electrochemical charging/discharging cycles with the specific capacitance value of 82 F g−1 and low equivalent series resistance of 4.6 Ω. The stretchable supercapacitor prototype withstands at least 1000 cycles of 50% strain with a slight increase in the volumetric capacitance from 0.4 to 0.5 mF cm−3 and volumetric power density from 32 mW cm−3 to 40 mW cm−3 after stretching, which is higher than reported before. Moreover, a low resistance of 250 Ω for the as-fabricated stretchable prototype was obtained, which slightly decreased with the strain applied up to 200 Ω. Simple fabrication process of such devices can be easily extended making the all-nanotube stretchable supercapacitors, presented here, promising elements in future wearable devices.
Nanotechnology | 2017
E. S. Zhukova; Artem Grebenko; A.V. Bubis; Anatoly S. Prokhorov; M. A. Belyanchikov; Alexey Tsapenko; Evgenia Gilshteyn; Daria S. Kopylova; Yu G Gladush; Anton S. Anisimov; V B Anzin; Albert G. Nasibulin; B. P. Gorshunov
Broad-band (4-20 000 cm-1) spectra of real and imaginary conductance of a set of high-quality pristine and AuCl3-doped single-walled carbon nanotube (SWCNT) films with different transparency are systematically measured. It is shown that while the high-energy (≥1 eV) response is determined by well-known interband transitions, the lower-energy electrodynamic properties of the films are fully dominated by unbound charge carriers. Their main spectral effect is seen as the free-carrier Drude-type contribution. Partial localization of these carriers leads to a weak plasmon resonance around 100 cm-1. At the lowest frequencies, below 10 cm-1, a gap-like feature is detected whose origin is associated with the energy barrier experienced by the carriers at the intersections between SWCNTs. It is assumed that these three mechanisms are universal and determine the low-frequency terahertz-infrared electrodynamics of SWCNT wafer-scale films.
Nanotechnology | 2018
Pramod Mulbagal Rajanna; Evgenia Gilshteyn; Timur Yagafarov; Alena Alekseeva; Anton S. Anisimov; Oleg Sergeev; Alex Neumueller; Sergei Bereznev; Jelena Maricheva; Albert G. Nasibulin
We report a simple approach to fabricate hybrid solar cells (HSCs) based on a single-walled carbon nanotube (SWCNT) film and a thin film hydrogenated amorphous silicon (a-Si:H). Randomly oriented high quality SWCNTs with an enhanced conductivity by means of poly(3,4-ethylenedioxythiophene) polystyrene sulfonate are used as a window layer and a front electrode. A series of HSCs are fabricated in ambient conditions with different SWCNT film thicknesses. The polymethylmethacrylate layer drop-casted on fabricated HSCs reduces the reflection fourfold and enhances the short-circuit Jsc, open-circuit Voc, and efficiency by nearly 10%. A state-of-the-art J-V performance is shown for SWCNT/a-Si HSC with an open-circuit voltage of 900 mV and efficiency of 3.4% under simulated one-sun AM 1.5G direct illumination.We report a simple approach to fabricate hybrid solar cells (HSCs) based on a single-walled carbon nanotube (SWCNT) film and thin film hydrogenated amorphous silicon (a-Si:H). Randomly oriented high-quality SWCNTs with conductivity enhanced by means of poly(3,4-ethylenedioxythiophene) polystyrene sulfonate are used as a window layer and a front electrode. A series of HSCs are fabricated in ambient conditions with varying SWCNT film thicknesses. The polymethylmethacrylate layer drop-casted on fabricated HSCs reduces the reflection fourfold and enhances the short-circuit J sc , open-circuit V oc , and efficiency by nearly 10%. A state-of-the-art J-V performance is shown for SWCNT/a-Si HSC with an open-circuit voltage of 900 mV and an efficiency of 3.4% under simulated one-sun AM 1.5 G direct illumination.
Nanotechnology | 2018
Evgenia Gilshteyn; Daler Amanbaev; Maxim V. Silibin; Artem Sysa; Vladislav A Kondrashov; Anton S. Anisimov; Tanja Kallio; Albert G. Nasibulin
The integration of energy harvesting and energy storage in a single device both enables the conversion of ambient energy into electricity and provides a sustainable power source for various electronic devices and systems. On the other hand, mechanical flexibility, coupled with optical transparency of the energy storage devices, is required for many applications, ranging from self-powered rolled-up displays to wearable optoelectronic devices. We integrate a piezoelectric poly(vinylidene-trifluoroethylene) (P(VDF-TrFE)) film into a flexible supercapacitor system to harvest and store the energy. The asymmetric output characteristics of the piezoelectric P(VDF-TrFE) film under mechanical impacts results in effective charging of the supercapacitors. The integrated piezo-supercapacitor exhibits a specific capacitance of 50 F g-1. The open-circuit voltage of the flexible and transparent supercapacitor reached 500 mV within 20 s during the mechanical action. Our hybridized energy harvesting and storage device can be further extended to provide a sustainable power source for various types of sensors integrated into wearable units.
Nanotechnology | 2016
Partha Pratim Pal; Evgenia Gilshteyn; Hua Jiang; Marina Y. Timmermans; Antti Kaskela; O. V. Tolochko; Maarit Karppinen; Mikko Nisula; Esko I. Kauppinen; Albert G. Nasibulin
The possibility of ZnO deposition on the surface of single-walled carbon nanotubes (SWCNTs) with the help of an atomic layer deposition (ALD) technique was successfully demonstrated. The utilization of pristine SWCNTs as a support resulted in a non-uniform deposition of ZnO in the form of nanoparticles. To achieve uniform ZnO coating, the SWCNTs first needed to be functionalized by treating the samples in a controlled ozone atmosphere. The uniformly ZnO coated SWCNTs were used to fabricate UV sensing devices. An UV irradiation of the ZnO coated samples turned them from hydrophobic to hydrophilic behaviour. Furthermore, thin films of the ZnO coated SWCNTs allowed us switch p-type field effect transistors made of pristine SWCNTs to have ambipolar characteristics.
international conference on nanotechnology | 2015
Evgenia Gilshteyn; Albert G. Nasibulin
Electronics based on nanomaterials (e.g. nanoparticles, nanotubes, nanowires, thin films) have been attracting interest recently due to their strain sensing characteristics. Strain sensors comprised of carbon nanotubes (CNTs) and silver nanowires, or graphene serve as good alternatives for developing new sensors because of their outstanding properties. Here, we report about thin films of single-walled carbon nanotubes (SWCNTs) which can be used as a key component of different electronic devices. The electrical properties of these devices can exhibit excellent characteristics compared to the traditional sensors due to a combination of high elastic moduli and outstanding electrical properties. The SWCNT films used in this study were obtained by aerosol synthesis and characterized by high structural quality.
Carbon | 2016
Alexandra L. Gorkina; Alexey Tsapenko; Evgenia Gilshteyn; Tatiana S. Koltsova; Tatiana Larionova; A.V. Talyzin; Anton S. Anisimov; Ilya V. Anoshkin; Esko I. Kauppinen; O. V. Tolochko; Albert G. Nasibulin
Organic Electronics | 2016
Laura Martínez-Sarti; Antonio Pertegás; María Monrabal-Capilla; Evgenia Gilshteyn; Ilkka Varjos; Esko I. Kauppinen; Albert G. Nasibulin; Michele Sessolo; Henk J. Bolink
Nanoscale | 2018
Daria S. Kopylova; Fedor S. Fedorov; Alena Alekseeva; Evgenia Gilshteyn; Alexey Tsapenko; Anton Bubis; Artem Grebenko; Zakhar I. Popov; Pavel Sorokin; Yuriy Gladush; Anton S. Anisimov; Albert G. Nasibulin