Showing posts with label Elena Zhukova. Show all posts
Showing posts with label Elena Zhukova. Show all posts

Saturday, May 18, 2019

Abstract-Tight-Binding Terahertz Plasmons in Chemical-Vapor-Deposited Graphene


Andrey Bylinkin, Elena Titova, Vitaly Mikheev, Elena Zhukova, Sergey Zhukov, Mikhail Belyanchikov, Mikhail Kashchenko, Andrew Miakonkikh, and Dmitry Svintsov

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Transistor structures comprising graphene and subwavelength metal gratings hold great promise for plasmon-enhanced terahertz detection. Despite considerable theoretical effort, little experimental evidence for terahertz plasmons in such structures has been found so far. Here we report an experimental study of plasmons in graphene-insulator-grating structures using Fourier-transform spectroscopy in the 5–10-THz range. The plasmon resonance is clearly visible above the Drude absorption background even in chemical-vapor-deposited graphene with low carrier mobility of approximately 103cm2/V s. We show that the plasmon lifetime exceeds the transport relaxation time extracted from dc mobility, and argue that the former is weakly sensitive to scattering by grain boundaries and macroscopic defects inherent in chemical-vapor-deposited samples. We find that a grating coupler close to graphene strongly modifies the plasmon spectrum, which is determined by metal stripe width but not by grating period. We present a simple theory of grating-coupled two-dimensional plasmons, akin to the tight-binding theory of electrons in solids, that reproduces the observed resonant frequencies without fitting parameters. Our results demonstrate the prospect of large-area commercially available graphene for resonant terahertz detectors.
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Monday, November 27, 2017

Physicists explain metallic conductivity of thin carbon nanotube films




A group of researchers has examined the optical and dielectric properties of thin macroscopic films based on single-walled carbon nanotubes and obtained an explanation for the metallic nature of their conductivity using infrared and terahertz spectroscopy.

MOSCOW INSTITUTE OF PHYSICS AND TECHNOLOGY

https://www.eurekalert.org/pub_releases/2017-11/miop-pem112117.php

An international team of researchers from MIPT; Lebedev Physical Institute, RAS; Prokhorov General Physics Institute, RAS; Skoltech; and Aalto University (Finland) has examined the optical and dielectric properties of thin macroscopic films based on single-walled carbon nanotubes and obtained an explanation for the metallic nature of their conductivity using infrared and terahertz spectroscopy. The research findings were published in the journals Carbon and Nanotechnology.
A single-walled carbon nanotube, or SWNT, can be pictured as a graphene sheet rolled into a cylinder. Light, strong, and resistant to high temperatures, SWNTs can be used as additives to composite materials to make them more durable, or as building blocks to fabricate aerosol filters and electrochemical sensors. Transparent and flexible carbon nanotube films -- that is, 2-D structures formed by intersecting nanotubes -- have a wide variety of potential applications, for example as supercapacitors or transparent electrodes in flexible electronics -- electronic devices that can be bent, folded, and twisted without breaking. The study of the charge transfer mechanisms in such films is therefore important for both basic research and practical applications.
The physicists measured optical and electrical properties of the films by terahertz-infrared spectroscopy at a variety of temperatures, from -268 degrees Celsius to room temperature, and in a wide range of incident radiation wavelengths -- from ultraviolet to terahertz (wavelengths of about 1 millimeter). The study of the interaction between the films and radiation yielded fundamental data on the electrodynamics of the films.
The SWNT films were synthesized by using aerosol chemical vapor deposition (CVD). Briefly, a vapor of the catalyst precursor ferrocene is supplied into the CVD reactor, where it decomposes in the atmosphere of carbon monoxide, forming nanometer-sized catalyst particles. On their surface, carbon monoxide (CO) disproportionation -- simultaneous oxidation and reduction -- occurs and finally SWNTs grow. The flow at the outlet of the rector is filtered, and SWNTs are collected onto the nitrocellulose filter. By varying the duration of the collection time, one could obtain the films of different thicknesses. Importantly, the SWNT films can be easily transferred to different substrates by dry deposition or used in their free-standing form, that is, without a substrate. This method enables the production of high-quality nanotubes with no amorphous carbon impurities.
"Since all carbon atoms in SWNTs are located on their surface, it is relatively easy to alter the electrical properties of this unique material. We can improve the conductivity of the films either by incorporating dopants into the nanotubes or by coating them with electron-acceptor or -donor molecules," comments Professor Albert Nasibulin of Skoltech. In their studies, the scientists coated the samples with gold chloride, whose solution acted as a doping agent, and obtained films from nanotubes filled with iodine and copper chloride by placing them in the atmosphere of the appropriate vapors. Such treatment increases charge carrier density in the filled tubes and reduces contact resistance between them, enabling flexible transparent electrodes and materials with selective charge transfer for use in optoelectronics and spintronics.
To be used in electronics, films need to be efficient charge carriers, so the physicists examined the broadband spectrum of their dielectric permittivity. But flexible electronics will also require the films to be transparent, so their optical conductivity was measured as well. Both analyses were conducted in a wide temperature range, from several degrees above absolute zero to room temperature. Of particular interest are the data obtained in the terahertz and far infrared regions of the spectrum. While prior research findings pointed to a peak in the terahertz conductivity spectrum (at frequencies between about 0.4 and 30 THz, depending on the study), this paper reports no clear indications of the phenomenon. The authors attribute such results to the high quality of their films.
Since the analysis of the optical and dielectric properties of the films at frequencies below 1,000 cm?¹ revealed spectral features that were typical for conducting materials, like metals, the team decided to employ the corresponding conductivity model that was developed by Paul Drude. According to that model, the charge in the conductors is transferred by free carriers: Like the ideal gas molecules, they move between the ions in the lattice and scatter upon collision with its vibrations, defects, or impurities. In this study, the charge carriers are also scattered by the energy barriers at the intersections of individual nanotubes. However, as the analysis suggests, these barriers are insignificant and allow the electrons to move almost freely across the film. Using the Drude model, the authors were able to quantitatively analyze the temperature dependencies of the carriers' effective parameters -- namely, concentration, mobility, mean free path and time between collisions -- which are responsible for the electrodynamic properties of the films.
"Our research has clearly demonstrated that terahertz spectroscopy provides an efficient tool for studying the conductivity mechanisms in macro-scale carbon nanotube films and determining the effective parameters of charge carriers in a noncontact manner. Our findings show that such films may be successfully used as components or assemblies in various micro- and nanoelectronic devices," says Elena Zhukova, deputy head of the Laboratory of Terahertz Spectroscopy at MIPT.

Monday, April 20, 2015

Abstract-Graphene: Sub-Terahertz Frequency-Domain Spectroscopy Reveals Single-Grain Mobility and Scatter Influence of Large-Area Graphene





On page 2635, L. Bogani and co-workers measure the electronic response of individual domains in wafer-sized chemical vapor deposition (CVD) graphene by means of contactless sub-THz interferometry. The intrinsic optical conductance of graphene is observed and the remarkable mobility is shown to be mainly limited by charged scatterers on the substrate. This sensitivity of sub-THz interferometry to contaminants can be used to easily quantify their presence and assess the quality of large graphene structures, which is essential for applications in touchscreens, as well as wearable and optoelectronic devices.


Thursday, March 19, 2015

Abstract-Sub-Terahertz Frequency-Domain Spectroscopy Reveals Single-Grain Mobility and Scatter Influence of Large-Area Graphene



  1. Christian Cervetti1
  2. Eric Heintze1
  3. Boris Gorshunov1,2,3
  4. Elena Zhukova1,2,3,
  5. Svyatoslav Lobanov2,3
  6. Alexander Hoyer4,
  7. Marko Burghard4
  8. Klaus Kern4,5
  9. Martin Dressel1 and
  10. Lapo Bogani1,†,*
Article first published online: 18 MAR 2015
DOI: 10.1002/adma.201500599

The response of individual domains in wafer-sized chemical vapor deposition graphene is measured by contactless sub-terahertz interferometry, observing the intrinsic optical conductance and reaching very high mobility values. It is shown that charged scatterers limit the mobility, validating previous theoretical predictions, and sub-terahertz quality assessment is demonstrated, as necessary for large-scale applications in touchscreens and wearable and optoelectronic devices.