TY - JOUR
T1 - All-optical observation and reconstruction of spin wave dispersion
AU - Hashimoto, Yusuke
AU - Daimon, Shunsuke
AU - Iguchi, Ryo
AU - Oikawa, Yasuyuki
AU - Shen, Ka
AU - Sato, Koji
AU - Bossini, Davide
AU - Tabuchi, Yutaka
AU - Satoh, Takuya
AU - Hillebrands, Burkard
AU - Bauer, Gerrit E.W.
AU - Johansen, Tom H.
AU - Kirilyuk, Andrei
AU - Rasing, Theo
AU - Saitoh, Eiji
PY - 2017/6/12
Y1 - 2017/6/12
N2 - To know the properties of a particle or a wave, one should measure how its energy changes with its momentum. The relation between them is called the dispersion relation, which encodes essential information of the kinetics. In a magnet, the wave motion of atomic spins serves as an elementary excitation, called a spin wave, and behaves like a fictitious particle. Although the dispersion relation of spin waves governs many of the magnetic properties, observation of their entire dispersion is one of the challenges today. Spin waves whose dispersion is dominated by magnetostatic interaction are called pure-magnetostatic waves, which are still missing despite of their practical importance. Here, we report observation of the band dispersion relation of pure-magnetostatic waves by developing a table-top all-optical spectroscopy named spin-wave tomography. The result unmasks characteristics of pure-magnetostatic waves. We also demonstrate time-resolved measurements, which reveal coherent energy transfer between spin waves and lattice vibrations.
AB - To know the properties of a particle or a wave, one should measure how its energy changes with its momentum. The relation between them is called the dispersion relation, which encodes essential information of the kinetics. In a magnet, the wave motion of atomic spins serves as an elementary excitation, called a spin wave, and behaves like a fictitious particle. Although the dispersion relation of spin waves governs many of the magnetic properties, observation of their entire dispersion is one of the challenges today. Spin waves whose dispersion is dominated by magnetostatic interaction are called pure-magnetostatic waves, which are still missing despite of their practical importance. Here, we report observation of the band dispersion relation of pure-magnetostatic waves by developing a table-top all-optical spectroscopy named spin-wave tomography. The result unmasks characteristics of pure-magnetostatic waves. We also demonstrate time-resolved measurements, which reveal coherent energy transfer between spin waves and lattice vibrations.
UR - http://resolver.tudelft.nl/uuid:6fc5d3fd-54da-453b-b238-0d901d7aa1ac
UR - http://www.scopus.com/inward/record.url?scp=85020732108&partnerID=8YFLogxK
U2 - 10.1038/ncomms15859
DO - 10.1038/ncomms15859
M3 - Article
AN - SCOPUS:85020732108
SN - 2041-1723
VL - 8
JO - Nature Communications
JF - Nature Communications
M1 - 15859
ER -