Low-energy eigenmode excitations of ferromagnets are spin waves or magnons that can be triggered and guided in magnonic circuits without Ohmic losses and hence are attractive for communicating and processing information. Here we present new types of spin waves that carry a definite and electrically controllable orbital angular momentum (OAM) constituting twisted magnon beams. We show how twisted beams emerge in magnonic waveguides and how to topologically quantify and steer them. A key finding is that the topological charge associated with OAM of a particular beam is tunable externally and protected against magnetic damping. Coupling to an applied electric field via the Aharanov-Casher effect allows for varying the topological charge. This ...
Novel material properties can be realized by designing waves ’ dispersion relations in arti-ficial c...
Magnons are the quantum particles of spin waves. They are investigated as a potential candidate for ...
Spin-wave excitations due to spin-momentum transfer in ferromagnetic thin films will enable new type...
Antiferromagnetic (AFM) materials offer an exciting platform for ultrafast information handling with...
Wave fields with spiral phase dislocations carrying orbital angular momentum (OAM) have been realize...
A scheme for generating twisted magnons that carry orbital angular momentum in ferromagnetic nanodis...
Twisted magnons (TMs) carrying orbital angular momentum (OAM) have attracted much attention from the...
Spin waves are the low-energy excitations of magnetically ordered materials. They are key elements i...
Magnonics is a branch of physics dealing with spin waves, or their quanta – magnons. Spin waves are ...
We demonstrate a magnonic beam splitter that works by inter-converting magnetostatic surface and bac...
This is the final version of the article. Available from American Physical Society via the DOI in th...
Magnonics, or spin wave based spintronics, is an emerging technology where magnons—quanta for spin w...
Copyright © 2011 American Institute of PhysicsWe demonstrate a magnonic architecture that converts g...
We numerically demonstrate the excitation of leaky spin waves (SWs) guided along a ferromagnetic str...
We study the orbital angular momentum of magnons for collinear ferromagnet (FM) and antiferromagneti...
Novel material properties can be realized by designing waves ’ dispersion relations in arti-ficial c...
Magnons are the quantum particles of spin waves. They are investigated as a potential candidate for ...
Spin-wave excitations due to spin-momentum transfer in ferromagnetic thin films will enable new type...
Antiferromagnetic (AFM) materials offer an exciting platform for ultrafast information handling with...
Wave fields with spiral phase dislocations carrying orbital angular momentum (OAM) have been realize...
A scheme for generating twisted magnons that carry orbital angular momentum in ferromagnetic nanodis...
Twisted magnons (TMs) carrying orbital angular momentum (OAM) have attracted much attention from the...
Spin waves are the low-energy excitations of magnetically ordered materials. They are key elements i...
Magnonics is a branch of physics dealing with spin waves, or their quanta – magnons. Spin waves are ...
We demonstrate a magnonic beam splitter that works by inter-converting magnetostatic surface and bac...
This is the final version of the article. Available from American Physical Society via the DOI in th...
Magnonics, or spin wave based spintronics, is an emerging technology where magnons—quanta for spin w...
Copyright © 2011 American Institute of PhysicsWe demonstrate a magnonic architecture that converts g...
We numerically demonstrate the excitation of leaky spin waves (SWs) guided along a ferromagnetic str...
We study the orbital angular momentum of magnons for collinear ferromagnet (FM) and antiferromagneti...
Novel material properties can be realized by designing waves ’ dispersion relations in arti-ficial c...
Magnons are the quantum particles of spin waves. They are investigated as a potential candidate for ...
Spin-wave excitations due to spin-momentum transfer in ferromagnetic thin films will enable new type...