- Source: Quantum hydrodynamics
In condensed matter physics, quantum hydrodynamics (QHD) is most generally the study of hydrodynamic-like systems which demonstrate quantum mechanical behavior. They arise in semiclassical mechanics in the study of metal and semiconductor devices, in which case being derived from the Boltzmann transport equation combined with Wigner quasiprobability distribution. In quantum chemistry they arise as solutions to chemical kinetic systems, in which case they are derived from the Schrödinger equation by way of Madelung equations.
An important system of study in quantum hydrodynamics is that of superfluidity. Some other topics of interest in quantum hydrodynamics are quantum turbulence, quantized vortices, second and third sound, and quantum solvents. The quantum hydrodynamic equation is an equation in Bohmian mechanics, which, it turns out, has a mathematical relationship to classical fluid dynamics (see Madelung equations).
Some common experimental applications of these studies are in liquid helium (3He and 4He), and of the interior of neutron stars and the quark–gluon plasma. Many famous scientists have worked in quantum hydrodynamics, including Richard Feynman, Lev Landau, and Pyotr Kapitsa.
See also
Quantum turbulence
Hydrodynamic quantum analogs
References
Robert E. Wyatt (2005). Quantum Dynamics with Trajectories: Introduction to Quantum Hydrodynamics. Springer. ISBN 978-0-387-22964-5.
Kata Kunci Pencarian:
- Radiasi benda-hitam
- Korespondensi anti-de Sitter/teori medan konformal
- Helium
- Massa negatif
- Quantum hydrodynamics
- Hydrodynamic quantum analogs
- Madelung equations
- QHD
- Superfluidity
- Quantum field theory
- Richard Feynman
- Quantum turbulence
- Conjugate variables
- Quantum field theory in curved spacetime