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Dive into the research topics where Sadamichi Maekawa is active.

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Featured researches published by Sadamichi Maekawa.


Nature | 2008

Observation of the spin Seebeck effect

Ken-ichi Uchida; S. Takahashi; K. Harii; J. Ieda; Wataru Koshibae; Kazuya Ando; Sadamichi Maekawa; Eiji Saitoh

The generation of electric voltage by placing a conductor in a temperature gradient is called the Seebeck effect. Its efficiency is represented by the Seebeck coefficient, S, which is defined as the ratio of the generated electric voltage to the temperature difference, and is determined by the scattering rate and the density of the conduction electrons. The effect can be exploited, for example, in thermal electric-power generators and for temperature sensing, by connecting two conductors with different Seebeck coefficients, a device called a thermocouple. Here we report the observation of the thermal generation of driving power, or voltage, for electron spin: the spin Seebeck effect. Using a recently developed spin-detection technique that involves the spin Hall effect, we measure the spin voltage generated from a temperature gradient in a metallic magnet. This thermally induced spin voltage persists even at distances far from the sample ends, and spins can be extracted from every position on the magnet simply by attaching a metal. The spin Seebeck effect observed here is directly applicable to the production of spin-voltage generators, which are crucial for driving spintronic devices. The spin Seebeck effect allows us to pass a pure spin current, a flow of electron spins without electric currents, over a long distance. These innovative capabilities will invigorate spintronics research.


Nature | 2010

Transmission of electrical signals by spin-wave interconversion in a magnetic insulator

Y. Kajiwara; Kazuya Harii; S. Takahashi; Jun-ichiro Ohe; Ken-ichi Uchida; Masaki Mizuguchi; H. Umezawa; H. Kawai; Kazuya Ando; K. Takanashi; Sadamichi Maekawa; Eiji Saitoh

The energy bandgap of an insulator is large enough to prevent electron excitation and electrical conduction. But in addition to charge, an electron also has spin, and the collective motion of spin can propagate—and so transfer a signal—in some insulators. This motion is called a spin wave and is usually excited using magnetic fields. Here we show that a spin wave in an insulator can be generated and detected using spin-Hall effects, which enable the direct conversion of an electric signal into a spin wave, and its subsequent transmission through (and recovery from) an insulator over macroscopic distances. First, we show evidence for the transfer of spin angular momentum between an insulator magnet Y3Fe5O12 and a platinum film. This transfer allows direct conversion of an electric current in the platinum film to a spin wave in the Y3Fe5O12 via spin-Hall effects. Second, making use of the transfer in a Pt/Y3Fe5O12/Pt system, we demonstrate that an electric current in one metal film induces voltage in the other, far distant, metal film. Specifically, the applied electric current is converted into spin angular momentum owing to the spin-Hall effect in the first platinum film; the angular momentum is then carried by a spin wave in the insulating Y3Fe5O12 layer; at the distant platinum film, the spin angular momentum of the spin wave is converted back to an electric voltage. This effect can be switched on and off using a magnetic field. Weak spin damping in Y3Fe5O12 is responsible for its transparency for the transmission of spin angular momentum. This hybrid electrical transmission method potentially offers a means of innovative signal delivery in electrical circuits and devices.


Physical Review Letters | 2007

Room-Temperature Reversible Spin Hall Effect

Takashi Kimura; Y. Otani; Tsugumichi Sato; Saburo Takahashi; Sadamichi Maekawa

Reversible spin Hall effect comprising the direct and inverse spin Hall effects was electrically detected at room temperature. A platinum wire with a strong spin-orbit interaction is used not only as a spin current absorber but also as a spin-current source in the specially designed lateral structure. The obtained spin Hall conductivities are 2.4 x 10(4) (Omega m)(-1) at room temperature, 10(4) times larger than the previously reported values of semiconductor systems. Spin Hall conductivities obtained from both the direct and inverse spin Hall effects are experimentally confirmed to be the same, demonstrating the Onsager reciprocal relations between spin and charge currents.


Nature Materials | 2010

Spin Seebeck insulator

Ken-ichi Uchida; Jiang Xiao; Hiroto Adachi; Jun-ichiro Ohe; Saburo Takahashi; Jun'ichi Ieda; Takeshi Ota; Y. Kajiwara; H. Umezawa; H. Kawai; Gerrit E. W. Bauer; Sadamichi Maekawa; Eiji Saitoh

Thermoelectric generation is an essential function in future energy-saving technologies. However, it has so far been an exclusive feature of electric conductors, a situation which limits its application; conduction electrons are often problematic in the thermal design of devices. Here we report electric voltage generation from heat flowing in an insulator. We reveal that, despite the absence of conduction electrons, the magnetic insulator LaY(2)Fe(5)O(12) can convert a heat flow into a spin voltage. Attached Pt films can then transform this spin voltage into an electric voltage as a result of the inverse spin Hall effect. The experimental results require us to introduce a thermally activated interface spin exchange between LaY(2)Fe(5)O(12) and Pt. Our findings extend the range of potential materials for thermoelectric applications and provide a crucial piece of information for understanding the physics of the spin Seebeck effect.


Applied Physics Letters | 2010

Observation of longitudinal spin-Seebeck effect in magnetic insulators

Ken-ichi Uchida; Hiroto Adachi; Takeru Ota; Hiroyasu Nakayama; Sadamichi Maekawa; Eiji Saitoh

We propose a longitudinal spin-Seebeck effect (SSE), in which a magnon-induced spin current is injected parallel to a temperature gradient from a ferromagnet into an attached paramagnetic metal. The longitudinal SSE is measured in a simple and versatile system composed of a ferrimagnetic insulator Y3Fe5O12 slab and a Pt film by means of the inverse spin-Hall effect. The experimental results highlight the intriguing character of the longitudinal SSE due to its own geometric configuration.


Reports on Progress in Physics | 2013

Theory of the spin Seebeck effect

Hiroto Adachi; Ken-ichi Uchida; Eiji Saitoh; Sadamichi Maekawa

The spin Seebeck effect refers to the generation of a spin voltage caused by a temperature gradient in a ferromagnet, which enables the thermal injection of spin currents from the ferromagnet into an attached nonmagnetic metal over a macroscopic scale of several millimeters. The inverse spin Hall effect converts the injected spin current into a transverse charge voltage, thereby producing electromotive force as in the conventional charge Seebeck device. Recent theoretical and experimental efforts have shown that the magnon and phonon degrees of freedom play crucial roles in the spin Seebeck effect. In this paper, we present the theoretical basis for understanding the spin Seebeck effect and briefly discuss other thermal spin effects.


Physical Review B | 2010

Theory of magnon-driven spin Seebeck effect

Jiang Xiao; Gerrit E. W. Bauer; Ken-ichi Uchida; Eiji Saitoh; Sadamichi Maekawa

The spin Seebeck effect is a spin-motive force generated by a temperature gradient in a ferromagnet that can be detected via normal metal contacts through the inverse spin Hall effect [K. Uchida et al., Nature (London) 455, 778 (2008)]. We explain this effect by spin pumping at the contact that is proportional to the spin-mixing conductance of the interface, the inverse of a temperature-dependent magnetic coherence volume, and the difference between the magnon temperature in the ferromagnet and the electron temperature in the normal metal [D. J. Sanders and D. Walton, Phys. Rev. B 15, 1489 (1977)].


Nature Materials | 2008

Giant spin Hall effect in perpendicularly spin-polarized FePt/Au devices

Takeshi Seki; Yu Hasegawa; Seiji Mitani; Saburo Takahashi; Hiroshi Imamura; Sadamichi Maekawa; Junsaku Nitta; K. Takanashi

Conversion of charge current into pure spin current and vice versa in non-magnetic semiconductors or metals, which are called the direct and inverse spin Hall effects (SHEs), provide a new functionality of materials for future spin-electronic architectures. Thus, the realization of a large SHE in a device with a simple and practical geometry is a crucial issue for its applications. Here, we present a multi-terminal device with a Au Hall cross and an FePt perpendicular spin injector to detect giant direct and inverse SHEs at room temperature. Perpendicularly magnetized FePt injects or detects perpendicularly polarized spin current without magnetic field, enabling the unambiguous identification of SHEs. The unprecedentedly large spin Hall resistance of up to 2.9 mOmega is attributed to the large spin Hall angle in Au through the skew scattering mechanism and the highly efficient spin injection due to the well-matched spin resistances of the chosen materials.


Journal of Applied Physics | 2011

Inverse spin-Hall effect induced by spin pumping in metallic system

Kazuya Ando; Saburo Takahashi; Jun'ichi Ieda; Y. Kajiwara; Hiroyasu Nakayama; T. Yoshino; Kazuya Harii; Y. Fujikawa; M. Matsuo; Sadamichi Maekawa; Eiji Saitoh

The inverse spin-Hall effect (ISHE) induced by the spin pumping has been investigated systematically in simple ferromagnetic/paramagnetic bilayer systems. The spin pumping driven by ferromagnetic resonance injects a spin current into the paramagnetic layer, which gives rise to an electromotive force transverse to the spin current using the ISHE in the paramagnetic layer. In a Ni81Fe19/Pt film, we found an electromotive force perpendicular to the applied magnetic field at the ferromagnetic resonance condition. The spectral shape of the electromotive force is well reproduced using a simple Lorentz function, indicating that the electromotive force is due to the ISHE induced by the spin pumping; extrinsic magnetogalvanic effects are eliminated in this measurement. The electromotive force varies systematically by changing the microwave power, magnetic-field angle, and film size, being consistent with the prediction based on the Landau–Lifshitz–Gilbert equation combined with the models of the ISHE and spin pump...


Journal of Magnetism and Magnetic Materials | 2002

Spin-dependent transport in magnetic nanostructures

Sadamichi Maekawa; J. Inoue

Abstract The charging energy of a metallic grain called a dot embedded in a nanowire causes the single electron tunneling. We propose that when two magnetic dots are embedded in a nanowire, the single electron tunneling process is controlled by an external magnetic field. This is because the tunneling of electrons between magnetic dots depends on the relative angle of the magnetic moments.

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Saburo Takahashi

National Institute of Advanced Industrial Science and Technology

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M. Mori

Japan Atomic Energy Agency

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Jun'ichi Ieda

Japan Atomic Energy Agency

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Bo Gu

Japan Atomic Energy Agency

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Hiroshi Imamura

National Institute of Advanced Industrial Science and Technology

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