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The 83 pages that link to Phase transition, each with the reason it gives.
Statistical mechanicsRelated: Collective microscopic interactions produce abrupt or critical changes in macroscopic properties.
ThermodynamicsRelated: Thermodynamic potentials identify phase stability and transition conditions.
Phase diagramRelated: Crossing a phase boundary corresponds to a phase transition.
EmergenceRelated: At a transition, a system can acquire collective properties absent in its previous regime.
HydrateRelated: Water loss can trigger a hydrate’s crystal structure to transform into another phase.
CalorimetryRelated: Latent heat during a transition can be measured even while temperature remains constant.
HysteresisRelated: Some transitions occur at different thresholds in opposite directions, producing hysteresis.
Ice crystalRelated: Freezing changes liquid water into an ordered solid phase.
Thermal energyRelated: Energy can change a substance’s microscopic arrangement without raising its temperature.
Crystal polymorphismRelated: A polymorph can transform into another when conditions change.
Thermodynamic stateRelated: It marks where a change in state variables alters the stable phase.
Rankine cycleRelated: Boiling and condensation let the working fluid absorb and reject heat efficiently.
AllotropyRelated: Changes in temperature or pressure can transform one allotrope into another.
Crystal waterRelated: Dehydration can produce a new crystalline phase rather than merely a lighter sample.
Free energyRelated: Competing phases are stable where their Gibbs free energies are lowest.
Self-organizationRelated: Crossing a threshold can make an unorganized state give way to collective order.
Symmetry breakingRelated: Many symmetry-breaking changes occur at phase transitions, though the ideas are not identical.
Solid-state physicsRelated: Solids can change structure or ordering when control parameters cross critical values.
Silver iodideRelated: AgI changes crystal structure with temperature, affecting its properties.
Thermodynamic limitRelated: Sharp phase transitions generally emerge only when system size becomes infinite.
Uranium hexafluorideRelated: UF₆ can be sublimed, condensed, and vaporized to support handling and feed preparation.
Lattice parameterRelated: Discontinuities or symmetry changes in lattice parameters can mark structural transitions.
High-pressure mineral physicsRelated: Pressure-induced transitions create boundaries between mineral layers.
Fluorite structureRelated: Temperature, pressure, or composition can shift fluorite-related compounds into other phases.
SuperconductorRelated: The superconducting state emerges through a transition at a characteristic temperature.
Complex systemRelated: Complex systems can shift abruptly from one collective regime to another.
Sulfate mineralRelated: Temperature and water activity can shift sulfate minerals between distinct structural phases.
PhaseRelated: It describes how a region of matter changes from one phase to another.
Vitaly GinzburgRelated: Superconductivity and superfluidity emerge as phase transitions whose behavior Ginzburg analyzed.
BrookiteRelated: Heating can transform brookite into other titanium dioxide polymorphs.
State of matterRelated: State changes occur when conditions cross a phase boundary.
ThermochemistryRelated: Physical transformations also exchange heat, often without changing chemical identity.
Intensive and extensive propertiesRelated: Transitions are often identified by singular behavior in intensive properties or thermodynamic potentials.
AllotropeRelated: Some allotrope changes accompany a change in crystal phase while the element remains solid.
Edge of chaosRelated: The edge-of-chaos idea borrows the image of a boundary between regimes.
History of thermodynamicsRelated: Thermodynamics provided a framework for classifying phase changes and their critical behavior.
Thermodynamic free energyRelated: At equilibrium, competing phases have equal relevant thermodynamic potentials.
Disordered systemsRelated: Disorder can shift, broaden, or alter the universality of transitions.
Macroscopic scaleRelated: Large-scale collective changes can produce sharp macroscopic differences between phases.
Yang Chen-NingRelated: Yang’s statistical-mechanics results helped connect phase transitions with mathematical properties of partition functions.