To gain control over magnetic order on ultrafast time scales, a fundamental understanding of the way electron spins interact with the surrounding crystal lattice is required. However, measurement and analysis even of basic collective processes such as spin-phonon equilibration have remained challenging. Here, we directly probe the flow of energy and angular momentum in the model insulating ferrimagnet yttrium iron garnet. After ultrafast resonant lattice excitation, we observe that magnetic order reduces on distinct time scales of 1 ps and 100 ns. Temperature-dependent measurements, a spin-coupling analysis, and simulations show that the two dynamics directly reflect two stages of spin-lattice equilibration. On the 1-ps scale, spins and pho...
The developing field of strain-induced magnetization dynamics offers a promising path toward efficie...
The ultrastrong coupling of (quasi-)particles has gained considerable attention due to its applicati...
A new mechanism is proposed for relaxation processes in ferrimagnetic insulators (assumed to be ioni...
To gain control over magnetic order on ultrafast time scales, a fundamental understanding of the way...
In spintronic materials, control and transport of magnetic order require a fundamental understanding...
Understanding the transfer of spin angular momentum is essential in modern magnetism research. A mod...
Resonant ultrafast excitation of infrared-active phonons is a powerful technique with which to contr...
In the field of femtomagnetism, magnetic matter is controlled by ultrafast laser pulses; here, we sh...
Periodically arranged atoms are the fundamental building blocks of solids, and determine the mechani...
Understanding ultrafast magnetization dynamics on the microscopic level is of strong current interes...
Excitation of optical transitions in solids using ultrashort pulses of light allows to selectively p...
Understanding the transfer of spin angular momentum is essential in modern magnetism research. A mod...
Using a combination of first-principles and magnetization-dynamics calculations, we study the effect...
The magnetic insulator yttrium iron garnet can be grown with near perfection and is therefore and id...
The ultrafast dynamics of magnetic order in a ferromagnet are governed by the interplay between elec...
The developing field of strain-induced magnetization dynamics offers a promising path toward efficie...
The ultrastrong coupling of (quasi-)particles has gained considerable attention due to its applicati...
A new mechanism is proposed for relaxation processes in ferrimagnetic insulators (assumed to be ioni...
To gain control over magnetic order on ultrafast time scales, a fundamental understanding of the way...
In spintronic materials, control and transport of magnetic order require a fundamental understanding...
Understanding the transfer of spin angular momentum is essential in modern magnetism research. A mod...
Resonant ultrafast excitation of infrared-active phonons is a powerful technique with which to contr...
In the field of femtomagnetism, magnetic matter is controlled by ultrafast laser pulses; here, we sh...
Periodically arranged atoms are the fundamental building blocks of solids, and determine the mechani...
Understanding ultrafast magnetization dynamics on the microscopic level is of strong current interes...
Excitation of optical transitions in solids using ultrashort pulses of light allows to selectively p...
Understanding the transfer of spin angular momentum is essential in modern magnetism research. A mod...
Using a combination of first-principles and magnetization-dynamics calculations, we study the effect...
The magnetic insulator yttrium iron garnet can be grown with near perfection and is therefore and id...
The ultrafast dynamics of magnetic order in a ferromagnet are governed by the interplay between elec...
The developing field of strain-induced magnetization dynamics offers a promising path toward efficie...
The ultrastrong coupling of (quasi-)particles has gained considerable attention due to its applicati...
A new mechanism is proposed for relaxation processes in ferrimagnetic insulators (assumed to be ioni...