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  2. Topological insulator - Wikipedia

    en.wikipedia.org/wiki/Topological_insulator

    A topological insulator is an insulator for the same reason a "trivial" (ordinary) insulator is: there exists an energy gap between the valence and conduction bands of the material. But in a topological insulator, these bands are, in an informal sense, "twisted", relative to a trivial insulator. [4]

  3. Periodic table of topological insulators and topological ...

    en.wikipedia.org/wiki/Periodic_table_of...

    It indicates the mathematical group for the topological invariant of the topological insulators and topological superconductors, given a dimension and discrete symmetry class. [1] The ten possible discrete symmetry families are classified according to three main symmetries: particle-hole symmetry, time-reversal symmetry and chiral symmetry.

  4. Quantum spin Hall effect - Wikipedia

    en.wikipedia.org/wiki/Quantum_spin_Hall_effect

    Two-dimensional topological insulators (also known as the quantum spin Hall insulators) with one-dimensional helical edge states were predicted in 2006 by Bernevig, Hughes and Zhang to occur in quantum wells (very thin layers) of mercury telluride sandwiched between cadmium telluride, [7] and were observed in 2007.

  5. Hall effect - Wikipedia

    en.wikipedia.org/wiki/Hall_effect

    A common source of confusion with the Hall effect in such materials is that holes moving one way are really electrons moving the opposite way, so one expects the Hall voltage polarity to be the same as if electrons were the charge carriers as in most metals and n-type semiconductors. Yet we observe the opposite polarity of Hall voltage ...

  6. Two-dimensional electron gas - Wikipedia

    en.wikipedia.org/wiki/Two-dimensional_electron_gas

    A two-dimensional electron gas (2DEG) is a scientific model in solid-state physics. It is an electron gas that is free to move in two dimensions, but tightly confined in the third. This tight confinement leads to quantized energy levels for motion in the third direction, which can then be ignored for most problems.

  7. Quantum phase transition - Wikipedia

    en.wikipedia.org/wiki/Quantum_phase_transition

    Diagram of temperature (T) and pressure (p) showing the quantum critical point (QCP) and quantum phase transitions. Talking about quantum phase transitions means talking about transitions at T = 0: by tuning a non-temperature parameter like pressure, chemical composition or magnetic field, one could suppress e.g. some transition temperature like the Curie or Néel temperature to 0 K.

  8. Dirac matter - Wikipedia

    en.wikipedia.org/wiki/Dirac_matter

    A topological insulator is a material that behaves as an insulator in its interior (bulk) but whose surface contains conducting states. This property represents a non-trivial, symmetry protected topological order. As a consequence, electrons in topological insulators can only move along the surface of the material.

  9. BCS theory - Wikipedia

    en.wikipedia.org/wiki/BCS_theory

    An exponential rise in heat capacity near the critical temperature for some superconductors An exponential increase in heat capacity near the critical temperature also suggests an energy bandgap for the superconducting material.