Phase (matter)
A phase is a uniform region of material in a thermodynamic system.
In the physical sciences, a phase refers to a region of material that is chemically uniform, physically distinct, and often mechanically separable. For instance, in a glass jar containing ice and water, the ice cubes form one phase, the liquid water a second, and the humid air above them a third; the glass itself is a separate phase. More precisely, a phase is a region of space—a thermodynamic system—where all physical properties of the material, such as density, index of refraction, magnetization, and chemical composition, are essentially uniform. While the term *phase* is sometimes used interchangeably with *state of matter*, multiple immiscible phases can exist within the same state—for example, oil and water separate into distinct liquid phases.
Phases can be described as different states of matter, including gas, liquid, solid, plasma, or Bose–Einstein condensate, with useful mesophases existing between solid and liquid. Even within a single state of matter, distinct phases can occur, as seen in iron alloys where several solid and liquid phases coexist. Phases may also be distinguished by solubility: polar (hydrophilic) or non-polar (hydrophobic) substances. A mixture of water (polar) and oil (non-polar) spontaneously separates into two phases because each has very low solubility in the other. Solubility is the maximum amount of a solute that can dissolve in a solvent before it stops dissolving and forms a separate phase. Mixtures can separate into more than two liquid phases, and phase separation also applies to solids—solids can form solid solutions or crystallize into distinct crystal phases. Mutually soluble metal pairs form alloys, while insoluble pairs do not. As many as eight immiscible liquid phases have been observed, including water (aqueous phase), hydrophobic organic solvents, perfluorocarbons (fluorous phase), silicones, several different metals, and molten phosphorus. Not all organic solvents are fully miscible; for example, ethylene glycol and toluene can separate into two distinct organic phases. Phases do not always separate macroscopically on their own—emulsions and colloids are examples of immiscible phase pairs that do not physically separate.
Left to equilibration, many compositions form a single uniform phase, but depending on temperature and pressure, even a single substance can separate into two or more distinct phases. Within each phase, properties are uniform, but they differ between phases. In a closed jar of water with an air space, a two-phase system forms. Most water remains in the liquid phase, held by molecular attraction, but molecules constantly move; occasionally, a liquid molecule gains enough kinetic energy to enter the gas phase, and a vapor molecule collides with the liquid surface and condenses. At equilibrium, evaporation and condensation balance, so the volume of each phase does not change. At room temperature and pressure, the jar reaches equilibrium when the air has about 3% humidity; this percentage rises with temperature. At 100 °C and atmospheric pressure, equilibrium occurs only when the air is 100% water. If the liquid is heated slightly above 100 °C, the transition from liquid to gas happens throughout the volume—the water boils.
For a given composition, only certain phases are possible at a given temperature and pressure. The number and type of phases that form are hard to predict and are usually determined experimentally, with results plotted in phase diagrams. In a single-component system, the possible phases depend only on pressure and temperature. The diagram’s markings show points where two or more phases can coexist in equilibrium; away from these markings, only one phase exists at equilibrium. The blue line marking the liquid–gas boundary ends at a critical point. As temperature and pressure approach this point, liquid and gas properties become increasingly similar, and at the critical point they become indistinguishable. Above the critical point, there is only a generic fluid phase called a supercritical fluid. For water, the critical point occurs at around 647 K (374 °C or 705 °F) and 22.064 MPa. An unusual feature of water’s phase diagram is that the solid–liquid phase line (dotted green) has a negative slope—most substances have a positive slope (dark green line). This is because ice has a lower density than liquid water; increasing pressure drives water into the higher-density phase, causing melting. Another notable feature is the triple point, where the solid–liquid and liquid–gas phase lines intersect, allowing all three phases to coexist. Experimentally, phase lines are relatively easy to map due to the interdependence of temperature and pressure that develops when multiple phases are present.
- field
- Physical sciences
- known_for
- Definition of phase as a uniform region of material; phase diagrams; phase transitions; interfacial phenomena
- related_concepts
- State of matter, solubility, phase equilibrium, critical point, triple point, polymorphism
Lore & Background
A phase is defined as a region of space throughout which all physical properties of a material are essentially uniform. Examples of physical properties include density, index of refraction, magnetization, and chemical composition. In a system consisting of ice and water in a glass jar, the ice cubes are one phase, the water is a second phase, and the humid air is a third phase; the glass of the jar is a separate phase. Distinct phases may be described as different states of matter such as gas, liquid, solid, plasma, or Bose–Einstein condensate, and useful mesophases exist between solid and liquid. Phases may also be differentiated based on solubility, as in polar (hydrophilic) or non-polar (hydrophobic) liquids. A mixture of water and oil will spontaneously separate into two phases because water has very low solubility in oil and vice versa. As many as eight immiscible liquid phases have been observed, including water, hydrophobic organic solvents, perfluorocarbons, silicones, several different metals, and molten phosphorus.
Reader's Guide
The concept of phase is central to thermodynamics and materials science. Phase diagrams, which plot the conditions under which distinct phases exist, are determined experimentally and show points where two or more phases can coexist in equilibrium. For a single-component system, the phase diagram depends only on pressure and temperature. An unusual feature of the water phase diagram is that the solid–liquid phase line has a negative slope, related to ice having a lower density than liquid water. The triple point is where solid, liquid, and gas phases can all coexist. Above the critical point, liquid and gas become indistinguishable, forming a supercritical fluid. Phase transitions involve energy changes: evaporation cools the liquid, condensation releases heat, and solid-to-liquid and solid-to-gas transitions have associated enthalpies of fusion and sublimation. Interfacial phenomena, such as surface tension, occur in the narrow region between two phases. While phases are traditionally defined for systems in thermal equilibrium, work on quantum many-body localized systems has provided a framework for defining phases out of equilibrium.
Did You Know?
- As many as eight immiscible liquid phases have been observed, including water, hydrophobic organic solvents, perfluorocarbons, silicones, several different metals, and molten phosphorus.
- The water phase diagram has a solid–liquid phase line with a negative slope because ice has a lower density than liquid water.
- Polymorphism is the ability of a solid to exist in more than one crystal form; for example, water ice can exist as hexagonal ice Ih, cubic ice Ic, rhombohedral ice II, and many other forms.
Defining the Phase: Uniformity and Distinctness
In the physical sciences, a phase refers to a region of material that is chemically uniform, physically distinct, and frequently mechanically separable from its surroundings. A concrete illustration helps: picture a glass jar containing ice cubes floating in water. The ice constitutes one phase, the liquid water a second, the humid air hovering above them a third, and the glass walls of the jar yet another phase, since it is an entirely different material. More rigorously, a phase is a region of space—essentially a thermodynamic system—throughout which every measurable physical property remains essentially uniform. These properties span density, index of refraction, magnetization, and chemical composition. A common source of confusion is the casual use of "phase" as a synonym for "state of matter." While the two concepts overlap, they are not identical. A single state of matter can host several immiscible phases simultaneously. Oil and water, for instance, both occupy the liquid state, yet they spontaneously segregate into two distinct phases because their molecular polarities prevent mutual dissolution. This distinction underscores that phase is a broader, more nuanced classification than the familiar solid-liquid-gas triad.
Phase Separation and the Spectrum of Immiscibility
Beyond the familiar gas-liquid-solid categories, phases can arise from subtler criteria. Within a single state of matter, multiple distinct phases may coexist. Iron alloys, for example, exhibit several phases in both their solid and liquid forms. Solubility provides another axis of differentiation: polar (hydrophilic) substances and non-polar (hydrophobic) substances tend to reject one another. Water and oil, mixed together, will spontaneously split into two separate liquid phases because each has extremely low solubility in the other. Solubility itself is defined as the maximum quantity of a solute that a solvent can absorb before the excess remains as a separate phase. The phenomenon extends well beyond two components. As many as eight mutually immiscible liquid phases have been documented, drawn from aqueous solutions, hydrophobic organic solvents, perfluorocarbons, silicones, certain metals, and molten phosphorus. Even among organic solvents, complete miscibility is not guaranteed; ethylene glycol and toluene, for instance, can partition into two distinct organic phases. In the solid realm, mutually soluble metal pairs form alloys while insoluble pairs cannot, and crystalline solids may separate into distinct crystal phases. Notably, immiscible phases do not always separate macroscopically—emulsions and colloids are stable mixtures where phase boundaries persist without visible segregation.
The Dynamic Balance of Phase Equilibrium
Phase equilibrium is not a static condition but a continuous molecular exchange. Consider water sealed in a jar with a small air pocket above it. This creates a two-phase system: the bulk liquid and the vapor space. At any moment, individual water molecules in the liquid are jostling with thermal energy. Occasionally one accumulates enough kinetic energy to escape the mutual attraction of its neighbors and enter the gas phase. Simultaneously, vapor molecules drift downward, strike the liquid surface, and rejoin the liquid. At true equilibrium, the rate of evaporation exactly matches the rate of condensation, so neither phase gains or loses volume. The conditions governing this balance shift with temperature. At room temperature and pressure, equilibrium is reached when the air above the water carries roughly three percent humidity. As temperature climbs, that percentage rises. Push the liquid slightly past that threshold and the transition accelerates dramatically: molecules throughout the entire liquid volume gain sufficient energy to vaporize simultaneously, and the water boils rather than merely evaporating from the surface.
Phase Diagrams, the Critical Point, and Water's Anomaly
For any given composition, the number and identity of stable phases at a particular temperature and pressure are not easily predicted; they are typically mapped through careful experimentation and plotted as phase diagrams. In a single-component system, the diagram is governed solely by pressure and temperature, with boundary lines marking where two or more phases coexist in equilibrium. Away from those boundaries, only one phase is stable. One striking feature is the critical point, where the liquid-gas boundary terminates. Approaching this point, liquid and gas properties grow progressively more alike until, at the critical point itself, the two become indistinguishable. Beyond it, no separate liquid or gas phase exists—only a supercritical fluid. Water also defies a common expectation in its solid-liquid boundary. Most substances show a positive slope for this line, but water's slopes negatively because ice is less dense than liquid water. Applying pressure therefore pushes water into the denser liquid phase, inducing melting. The point where the solid-liquid and liquid-gas boundaries intersect is the triple point, where all three phases coexist. Gibbs' phase rule formalizes how temperature and pressure jointly determine which phases are stable.
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