Spin-wave technology (magnonics) has the potential to further reduce the size and energy consumption of information-processing devices. In the submicrometer regime (exchange spin waves), topological defects such as domain walls may constitute active elements to manipulate spin waves and perform logic operations. We predict that spin waves that pass through a domain wall in an ultrathin perpendicular-anisotropy film experience a phase shift that depends on the orientation of the domain wall (chirality). The effect, which is absent in bulk materials, originates from the interfacial Dzyaloshinskii-Moriya interaction and can be interpreted as a geometric phase. We demonstrate analytically and by means of micromagnetic simulations that the phase...
This thesis uncovers new insights from research on the spinning electron that might lead to new info...
Abstract Spin waves (SW) are low energy excitations of magnetization in magnetic materials. In the p...
Based on a linearized Landau-Lifshitz equation, we show that two-dimensional periodic allay of ferro...
Contains fulltext : 158699.pdf (preprint version ) (Open Access
A controllable phase shifter is an essential part of spin-wave (SW) logic devices. Magnetic domain w...
Chiral spin textures in ultrathin films, such as skyrmions or chiral domain walls, are believed to o...
A diode, a device allowing unidirectional signal transmission, is a fundamental element of logic str...
Active manipulation of spin waves is essential for the development of magnon-based technologies. Her...
Ultrathin metallic ferromagnets on substrates with strong spin-orbit coupling can exhibit induced ch...
This paper discusses nanomagnetic structures enabling the manipulation of propagating spin waves. We...
Magnetic thin films with Dzyaloshinskii-Moriya interactions (DMI) are receiving enormous interest be...
Chiral magnetic domain walls are of great interest because lifting the energetic degeneracy of left-...
We propose novel ways of manipulating spin wave propagation useful for data processing and storage w...
We measure and analyze the chirality of Dzyaloshinskii-Moriya-interaction (DMI) stabilized spin text...
We measure and analyze the chirality of Dzyaloshinskii-Moriya-interaction (DMI) stabilized spin text...
This thesis uncovers new insights from research on the spinning electron that might lead to new info...
Abstract Spin waves (SW) are low energy excitations of magnetization in magnetic materials. In the p...
Based on a linearized Landau-Lifshitz equation, we show that two-dimensional periodic allay of ferro...
Contains fulltext : 158699.pdf (preprint version ) (Open Access
A controllable phase shifter is an essential part of spin-wave (SW) logic devices. Magnetic domain w...
Chiral spin textures in ultrathin films, such as skyrmions or chiral domain walls, are believed to o...
A diode, a device allowing unidirectional signal transmission, is a fundamental element of logic str...
Active manipulation of spin waves is essential for the development of magnon-based technologies. Her...
Ultrathin metallic ferromagnets on substrates with strong spin-orbit coupling can exhibit induced ch...
This paper discusses nanomagnetic structures enabling the manipulation of propagating spin waves. We...
Magnetic thin films with Dzyaloshinskii-Moriya interactions (DMI) are receiving enormous interest be...
Chiral magnetic domain walls are of great interest because lifting the energetic degeneracy of left-...
We propose novel ways of manipulating spin wave propagation useful for data processing and storage w...
We measure and analyze the chirality of Dzyaloshinskii-Moriya-interaction (DMI) stabilized spin text...
We measure and analyze the chirality of Dzyaloshinskii-Moriya-interaction (DMI) stabilized spin text...
This thesis uncovers new insights from research on the spinning electron that might lead to new info...
Abstract Spin waves (SW) are low energy excitations of magnetization in magnetic materials. In the p...
Based on a linearized Landau-Lifshitz equation, we show that two-dimensional periodic allay of ferro...