Transmitting and storing data has become central to our digitally connected society. Unfortunately, the rapid increase in the amount of data produced and required by new technologies such as cloud-based storage and artificial intelligence requires ever-larger data centers that produce a large amount of heat, forming a key sustainability challenge of today. As such, there is an urgent need for methods that could enable data storage and transport in a more space- and energy-efficient way [Sci. Rep. 4, 6784, 2014].
A promising route for information technology is offered by magnon spintronics. In magnetic insulators, spin currents are carried by magnons (also named as spin-waves), which are the excitations of magnetically ordered systems [Nat. Phys. 11, 453, 2015]. Importantly, such spin currents are especially promising for information technology due to their low intrinsic damping, non-reciprocal transport, micrometer wavelengths at microwave frequencies, absence of Joule heating and strong interactions that enable signal transduction [Nat. Phys. 11, 1022, 2015].
Up to date, the main material employed in magnon spintronics is yttrium-iron-garnet (Y3Fe5O12, YIG), together with just a few other materials as different iron oxides like Gd3Fe5O12 or metallic magnets as permalloy or cobalt, among others [Rev. Mod. Phys. 96, 015005, 2924]. With the advent of two-dimensional (2D) materials, van der Waals magnets have brought new perspectives in the field of magnon spintronics since these materials exhibit higher tuneability. Indeed, magnons have been recently probed in van der Waals magnets as CrSBr or CrPS4 [Nature 609, 282, 2022; Nature 620, 533, 2023; Nat. Commun. 14, 2526, 2023; PRB 110, 174440, 2024]. Importantly, the know-how on the manipulation of 2D materials developed in the last 20 years brings new tuning knobs with easy experimental implementation that are absent in conventional magnonic materials such as, for instance, strain, stacking or twisting engineering.
In this project, we have performed a detail characterization of the magnetic properties of van der Waals magnets CrSBr and CrPS4 from bulk down to the single layer limit, including small angle neutron scattering, magnetic susceptibility, magneto-transport measurements or color-center magnetometry, among others. Our results establish van der Waals as promising candidates for magnon spintronics [Newton 1, 1, 100018, 2025].