Abrikosov vortices

E48481

Abrikosov vortices are quantized magnetic flux lines that penetrate type-II superconductors in a regular lattice when exposed to magnetic fields above a critical value.

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AI-generated illustration of Abrikosov vortices

This AI-generated illustration was produced by black-forest-labs/FLUX.2-dev (1024x1024) from a prompt written by openai/gpt-oss-120b from the entity's label + description.

Prompt

Generate an image of Abrikosov vortices (Abrikosov vortices are quantized magnetic flux lines that penetrate type-II superconductors in a regular lattice when exposed to magnetic fields above a critical value.)

All labels observed (6)

How this entity was disambiguated

Statements (47)

Predicate Object
instanceOf quantized magnetic flux line ⓘ
topological defect ⓘ
canBe pinned by material defects ⓘ
set in motion by Lorentz force from transport current ⓘ
describedBy Abrikosov vortex lattice solution ⓘ
linked to: Abrikosov vortices

Ginzburg–Landau theory ⓘ
fluxQuantum h/2e ⓘ
foundIn high-temperature cuprate superconductors ⓘ
iron-based superconductors ⓘ
magnesium diboride superconductors ⓘ
niobium-based superconductors ⓘ
hasApplication design of superconducting magnets ⓘ
determining superconducting parameters from vortex lattice measurements ⓘ
optimization of critical currents via pinning engineering ⓘ
hasCoreState normal state of the superconductor ⓘ
hasEffect allow partial magnetic field penetration into type-II superconductors ⓘ
determine mixed state properties of type-II superconductors ⓘ
influence critical current via vortex pinning ⓘ
hasProperty are quantized in units of flux quantum Φ0 ⓘ
are stabilized by applied magnetic field ⓘ
break superconductivity locally in the core ⓘ
can form square lattice in some materials ⓘ
can form triangular lattice ⓘ
carry quantized magnetic flux ⓘ
exist below upper critical field Hc2 ⓘ
form a vortex lattice ⓘ
have normal-conducting core ⓘ
interact repulsively with each other ⓘ
penetrate superconductors above lower critical field Hc1 ⓘ
surrounded by circulating supercurrents ⓘ
hasSurroundingRegion superconducting condensate with phase winding ⓘ
hasTopologicalCharge integer winding number ⓘ
motionCauses dissipation and finite resistance ⓘ
namedAfter Alexei Abrikosov ⓘ
observedBy Lorentz transmission electron microscopy ⓘ
magnetic decoration techniques ⓘ
muon spin rotation ⓘ
scanning tunneling microscopy ⓘ
small-angle neutron scattering ⓘ
occursIn type-II superconductor ⓘ
occursWhen applied magnetic field is between Hc1 and Hc2 ⓘ
relatedTo Meissner effect ⓘ
flux pinning ⓘ
mixed state of type-II superconductors ⓘ
vortex glass phase ⓘ
vortex liquid phase ⓘ
requires Ginzburg–Landau parameter κ greater than 1/√2 ⓘ

How these facts were elicited

Referenced by (8)

Full triples — surface form annotated when it differs from this entity's canonical label.

Meissner effect → relatedConcept → Abrikosov vortices ⓘ
Ginzburg–Landau theory of superconductivity → predicts → Abrikosov vortex lattice ⓘ
linked to: Abrikosov vortices
Abrikosov vortices → describedBy → Abrikosov vortex lattice solution ⓘ
linked to: Abrikosov vortices
Holger Bech Nielsen → notableIdea → Nielsen–Olesen vortex solution ⓘ
linked to: Abrikosov vortices
Alexei Abrikosov → knownFor → Abrikosov vortex lattice ⓘ
linked to: Abrikosov vortices
Alexei Abrikosov → knownFor → Abrikosov vortices ⓘ
Alexei Abrikosov → notableConcept → Abrikosov lattice ⓘ
linked to: Abrikosov vortices
Nielsen–Olesen instability → relatedTo → Abrikosov vortex lattice (by analogy) ⓘ
linked to: Abrikosov vortices