Magnetic topological lithography: Gateway to the artificial spin ice manifold
arXiv:1704.07439 · doi:10.1038/s41565-017-0002-1
Abstract
Nanomagnetic arrays are widespread in data storage and processing. As current technologies approach fundamental limits on size and thermal stability, extracting additional functionality from arrays is crucial to advancing technological progress. One design exploiting the enhanced magnetic interactions in dense arrays is the geometrically-frustrated metamaterial 'artificial spin ice' (ASI). Frustrated systems offer vast untapped potential arising from their unique microstate landscapes, presenting intriguing opportunities from reconfigurable logic to magnonic devices or hardware neural networks. However, progress in such systems is impeded by the inability to access more than a fraction of the total microstate space. Here, we present a powerful surface-probe lithography technique, magnetic topological lithography, providing access to all possible microstates in ASI and related nanomagnetic arrays. We demonstrate the creation of two previously elusive states; the spin-crystal ground state of dipolar kagome ASI and high-energy, low-entropy 'monopole-chain' states exhibiting negative effective temperatures.
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Cited by in corpus (41)
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- Engineering Relaxation Pathways in Building Blocks of Artificial Spin Ice for Computation
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- Sculpting the Spin-Wave Response of Artificial Spin Ice via Microstate Selection
- Ultrastrong magnon-magnon coupling and chiral spin-texture control in a dipolar 3D multilayered artificial spin-vortex ice
- Logical gates embedding in Artificial Spin Ice
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- Spontaneous Magnetic Superdomain Wall Fluctuations in an Artificial Antiferromagnet
- Crystallizing Kagome artificial spin ice
- Low-temperature transport properties of intermetallic compound HoAgGe with kagome spin ice state
- Kagome Flatbands for Coherent Exciton-Polariton Lasing
- Applications of Nanomagnets as Dynamical Systems
- Spectral-fingerprinting: Microstate readout via remanence ferromagnetic resonance in artificial spin systems
- String Phase in an Artificial Spin Ice
- Comparison of Spin-Wave Modes in Connected and Disconnected Artificial Spin Ice Nanostructures Using Brillouin Light Scattering Spectroscopy
- Artificial Spin Ice Phase-Change Memory Resistors
- Current-Controlled Nanomagnetic Writing for Reconfigurable Magnonic Crystals
- Magnonic bending, phase shifting and interferometry in a 2D reconfigurable nanodisk crystal
- Topologically protected superconducting ratchet effect generated by spin-ice nanomagnets
- Toroidic phase transitions in a direct-kagome artificial spin ice
- Artificial Spin Ice: A Tutorial on Design and Control of Geometry, Microstate, Magnon Dynamics & Neuromorphic Computing
- Writable spin wave nanochannels in an artificial-spin-ice-mediated ferromagnetic thin film
- Gænice: a general model for magnon band structure of artificial spin ices
- Influence of cutoff dipole interaction radius and dilution on phase transition in kagome artificial spin ice
- On the micromagnetic behavior of dipolar-coupled nanomagnets in defective square artificial spin ice systems
- The Concept of Spin Ice Graphs and a Field Theory for their Topological Monopoles and Charges
- Magnetic order in nanoscale gyroid networks
- On the Degeneracy of Spin Ice Graphs, and its Estimate via the Bethe Permanent
- A model for the Mediated Artificial Square Ice phenomenology
- Experimental Measures of Topological Sector Fluctuations in the F-Model
- Some exactly solvable and tunable frustrated spin models
- Snakes in the Plane: Controllable Gliders in a Nanomagnetic Metamaterial
- Echo state property and memory capacity of artificial spin ice
- Stray magnetic fields from elliptical-shaped and stadium-shaped ferromagnets
- Magnetic texture control in ion-implanted metamaterials
- Controlling degeneracy and magnetization switching in an artificial spin ice system of peanut-shaped nanomagnets
- Unveiling Micrometer-Range Spin-Wave Transport in Artificial Spin Ice
- Attaining the Ground State of Kagome Artificial Spin Ice via Ultrafast Site-Specific Laser Annealing