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Phase Transitions02:31

Phase Transitions

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Whether solid, liquid, or gas, a substance's state depends on the order and arrangement of its particles (atoms, molecules, or ions). Particles in the solid pack closely together, generally in a pattern. The particles vibrate about their fixed positions but do not move or squeeze past their neighbors. In liquids, although the particles are closely spaced, they are randomly arranged. The position of the particles are not fixed—that is, they are free to move past their neighbors to...
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Phase Diagram01:19

Phase Diagram

5.7K
The phase of a given substance depends on the pressure and temperature. Thus, plots of pressure versus temperature showing the phase in each region provide considerable insights into the thermal properties of substances. Such plots are known as phase diagrams. For instance, in the phase diagram for water (Figure 1), the solid curve boundaries between the phases indicate phase transitions (i.e., temperatures and pressures at which the phases coexist).
5.7K
Phase Transitions: Sublimation and Deposition02:33

Phase Transitions: Sublimation and Deposition

16.5K
Some solids can transition directly into the gaseous state, bypassing the liquid state, via a process known as sublimation. At room temperature and standard pressure, a piece of dry ice (solid CO2) sublimes, appearing to gradually disappear without ever forming any liquid. Snow and ice sublimate at temperatures below the melting point of water, a slow process that may be accelerated by winds and the reduced atmospheric pressures at high altitudes. When solid iodine is warmed, the solid sublimes...
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States of Matter and Phase Changes00:59

States of Matter and Phase Changes

858
The internal energy of a substance—the total kinetic energy of all its molecules and the potential energy of their associated forces—depends on the strength of the intermolecular forces in the condensed phases and the pressure exerted on the substance. The internal energy of a substance is the highest in the gaseous state, the lowest in the solid state, and intermediate in the liquid state. Phase transitions are caused by changes in physical conditions, such as temperature and...
858
Phase Diagrams02:39

Phase Diagrams

38.8K
A phase diagram combines plots of pressure versus temperature for the liquid-gas, solid-liquid, and solid-gas phase-transition equilibria of a substance. These diagrams indicate the physical states that exist under specific conditions of pressure and temperature and also provide the pressure dependence of the phase-transition temperatures (melting points, sublimation points, boiling points). Regions or areas labeled solid, liquid, and gas represent single phases, while lines or curves represent...
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Phase Changes01:19

Phase Changes

4.0K
Phase transitions play an important theoretical and practical role in the study of heat flow. In melting or fusion, a solid turns into a liquid; the opposite process is freezing. In evaporation, a liquid turns into a gas; the opposite process is condensation.
A substance melts or freezes at a temperature called its melting point and boils or condenses at its boiling point. These temperatures depend on pressure. High pressure favors the denser form of the substance, so typically, high pressure...
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Updated: May 14, 2025

Phase Diagram Characterization Using Magnetic Beads as Liquid Carriers
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Phase Diagram Characterization Using Magnetic Beads as Liquid Carriers

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Topological phase transition in monolayer 1[Formula: see text]-[Formula: see text].

Mohammad Mortezaie Nobahari1, Mahmood Rezaei Roknabadi2

  • 1Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran. mortezaie.mm71@gmail.com.

Scientific Reports
|May 10, 2025
PubMed
Summary

Monolayer transition metal dichalcogenides exhibit topological phase transitions, transitioning between quantum spin Hall insulator and band insulator phases. This reveals potential for advanced nanoelectronic and spintronic devices.

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Area of Science:

  • Condensed Matter Physics
  • Materials Science
  • Quantum Mechanics

Background:

  • Monolayer transition metal dichalcogenides (TMDs) are gaining attention for nanoelectronic applications.
  • Understanding their topological properties is crucial for device development.

Purpose of the Study:

  • To theoretically investigate the topological behavior and phase transitions in 1T'-TMDs.
  • To explore the influence of parameters on topological properties and phase transitions.

Main Methods:

  • Utilizing k.p Hamiltonian theory to model electronic band structures.
  • Applying linear response theory to analyze transport properties.
  • Investigating Berry curvature and spin texture in momentum space.

Main Results:

  • Demonstrated a topological phase transition in 1T'-TMDs controlled by the α parameter.
  • Identified distinct phases: quantum spin Hall insulator (QSHI) and band insulator (BI).
  • Observed strong spin-momentum locking and analyzed spin-valley-resolved Hall conductivity.

Conclusions:

  • 1T'-TMDs exhibit tunable topological phases with potential for spintronic and thermoelectric applications.
  • The study provides insights into controlling topological properties through material parameters.
  • Edge modes and their role in topological phases were elucidated.