Spintronic ferromagnetic/non-magnetic heterostructures are novel sources for the generation of THz radiation based on the spin-to-charge conversion in the films. The key technological and scientific challenge of THz spintronic emitters is to increase their low intensity and frequency bandwidth. Our work reveals the factors to engineer both by introducing the scattering lifetime and the inteface transmission for spin polarized, non-equilibrium electrons. We resolve the role played by the electron-defect scattering lifetime on the spectral shape and the interface transmission on the THz amplitude and how this is linked to structural defects of bilayer emitters. The results of our study define a roadmap of the properties of the emitted as well as the detected THz-pulse shapes and spectra that is essential for future applications of metallic spintronic THz emitters.
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Showing posts with label Evangelos Th. Papaioannou. Show all posts
Showing posts with label Evangelos Th. Papaioannou. Show all posts
Friday, February 8, 2019
Abstract-Enhanced performance of spintronic terahertz emitters based on defect engineering
Saturday, April 7, 2018
Abstract-Efficient Terahertz Generation Using Fe/Pt Spintronic Emitters Pumped at Different Wavelengths
Evangelos Th. Papaioannou, Garik Torosyan, Sascha Keller, Laura Scheuer, Marco Battiato, Valynn Katrine Mag-usara, Johannes L'huillier, Masahiko Tani, René Beigang
Recent studies in spintronics have highlighted ultrathin magnetic metallic multilayers as a novel and very promising class of broadband terahertz radiation sources. Such spintronic multilayers consist of ferromagnetic (FM) and non-magnetic (NM) thin films. When triggered by ultrafast laser pulses, they generate pulsed THz radiation due to the inverse spin-Hall effect, a mechanism that converts optically driven spin currents from the magnetized FM layer into transient transverse charge currents in the NM layer, resulting in THz emission. As THz emitters, FM/NM multilayers have been intensively investigated so far only at 800-nm excitation wavelength using femtosecond Ti:sapphire lasers. In this work, we demonstrate that an optimized spintronic bilayer structure of 2-nm Fe and 3-nm Pt grown on 500 {\mu}m MgO substrate is just as effective as a THz radiation source when excited either at {\lambda} = 800 nm or at {\lambda} = 1550 nm by ultrafast laser pulses from a fs fiber laser (pulse width close to 100 fs, repetition rate around 100 MHz). Even with low incident power levels, the Fe/Pt spintronic emitter exhibits efficient generation of THz radiation at both excitation wavelengths. The efficient THz emitter operation at 1550 nm facilitates the integration of such spintronic emitters in THz systems driven by relatively low cost and compact fs fiber lasers without the need for frequency conversion.
Thursday, February 1, 2018
New Technique: Physicists generate terahertz waves with spin current flow
Associate Professor Dr. Evangelos Papaioannou. Credit: TUK/Thomas Koziel
The diagram illustrates how the new technique works. Credit: Papaioannou
https://www.alphagalileo.org/ViewItem.aspx?ItemId=183237&CultureCode=en
Terahertz waves are often used in the checking of passengers and luggage at the airport. They are also in demand in other areas, such as for materials testing in the industry. Physicists at the Technische Universität Kaiserslautern (TUK) have now developed a new method for generating such waves. They use a quantum magnetic current flow, so-called spin current, in magnetic metal nanostructures. The cost-effective and material-saving technology has the potential for industry applications. The study was published in the renowned scientific journal "Scientific Reports".
Terahertz (THz) waves lie in the electromagnetic spectrum between microwaves and infrared radiation. They are invisible to the human eye. Since they are low in energy, there is no need for be concerned with their impact on human. Today, they play a role in medical and communications technology, but also in materials testing. For example, they were used to inspect the plastic insulation on space shuttle. However, powerful radiation sources, i.e. emitters, are needed to generate the waves. This is usually associated with high energy consumption and costs.
A very efficient and at the same time more cost-effective method has now been developed by Kaiserslautern researchers, in which they use a so-called spin current. This is analogous to the electric current, in which electrical charges, namely electrons, flow. "A spin describes the intrinsic angular momentum of a quasiparticle, such as an electron," says Associate Professor Dr. Evangelos Papaioannou, who is a researcher with his own sub-group in the Magnetism Research Group lead by Professor Burkard Hillebrands in Department of Physics at TUK. "It forms the basis for all magnetic phenomena. Simply said, an electron rotates left or right around its axis like a spinning top."
A special nanostructure has been developed by the research team of Papaioannou for the application of the technique. "It consists of a metal bilayer of magnetic iron and non-magnetic platinum," as the physicist describes the structure. "These are very thin layers that are only a few nanometers thick."
To generate the terahertz waves, the researchers use a femtosecond laser that emits extremely short laser pulses. As a result, the following happens: "When the laser pulses hit the nanostructure they stimulate the electrons in the iron film, creating a spin current," says the Papaioannou. This current flows into the adjacent platinum layer. Here comes a certain physical phenomenon into play, the inverse Spin-Hall Effect. For platinum, this effect has been known for some time. It arises due to the atomic structure of the metal. "The atomic nuclei of platinum deflect electrons with a left- and right-handed spin in opposite directions, which leads to the transformation of the spin current into an ultrafast transient charge current, which is then the source of terahertz waves”.
As a special feature of the experimental setup, a small silicon lens is attached to the structure. "We are bundling the waves", the Junior Professor continues. In this way, the terahertz waves could be forwarded easily and efficiently in future applications.
In their recently published paper, the researchers have revealed, among other things, how layer thicknesses and the arrangement of materials must be best designed to produce the THz waves. The research field of THz spintronics technology is an emerging field. Only recently, research colleagues in Berlin showed for the first time that terahertz waves can be generated by spin current. The work of the Kaiserslautern researchers reveals now a way to optimize the emitters so that they can reach their maximum efficiency. This makes them cheaper and more interesting for various fields of application, for example for security techniques, materials testing and information technologies, but also for basic research.
The team of Papaioannou is a part of the State Research Center for Optics and Material Sciences (OPTIMAS), which is funded by the state of Rhineland-Palatinate. Professor R. Beigang and Dr. G. Torosyan also contributed to the study, both are experts in the field of Terahertz. The work was supported by the Deutsche Forschungsgemeinschaft within the scope of the Collaborative Research Center SPIN + X, as well as the Carl-Zeiss Foundation.
Monday, July 31, 2017
Abstract-Efficient Spintronic Terahertz Emitters Based on Epitaxial Grown Fe/Pt Layer Structures
We report on efficient generation of pulsed broadband terahertz radiation utilizing the inverse spin hall effect in Fe/Pt bilayers on MgO and sapphire substrates. The emitter was optimized with respect to layer thickness, growth parameters, substrates and geometrical arrangement. The experimentally determined optimum layer thicknesses were in qualitative agreement with simulations of the spin current induced in the ferromagnetic layer. Our model takes into account spin diffusion and accumulation and electrical as well as optical properties of the bilayer samples. Using the device in a counterintuitive orientation a Si lens was attached to increase the collection efficiency of the emitter. The optimized emitter provided a bandwidth of up to 8 THz which was mainly limited by the low-temperature-grown GaAs (LT-GaAS) photoconductive antenna used as detector and the pulse length of the pump laser. The THz pulse length was as short as 220 fs for a sub 100 fs pulse length of the 800 nm pump laser. Average pump powers as low as 25 mW (at a repetition rate of 80 MHz) have been used for terahertz generation. This and the general performance make the spintronic terahertz emitter compatible with established emitters based on nonlinear generation methods.
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