In theoretical physics, the Bogoliubov transformation, named after Nikolay Bogolyubov, is a unitary transformation[dubious ] from a unitary representation of some canonical commutation relation algebra or canonical anticommutation relation algebra into another unitary representation, induced by an isomorphism of the commutation relation algebra. The Bogoliubov transformation is often used to diagonalize Hamiltonians, which yields the steady-state solutions of the corresponding Schrödinger equation. The solutions of BCS theory in a homogeneous system, for example, are found using a Bogoliubov transformation.
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Single bosonic mode example
Consider the canonical commutation relation for bosonic creation and annihilation operators in the harmonic basis
Define a new pair of operators
where the latter is the hermitian conjugate of the first. The Bogoliubov transformation is a canonical transformation of these operators. To find the conditions on the constants u and v such that the transformation remains canonical, the commutator is expanded, viz.
It can be seen that | u | 2 − | v | 2 = 1 is the condition for which the transformation is canonical. Since the form of this condition is reminiscent of the hyperbolic identity, the constants u and v can be parameterized as
Fermionic mode
For the anticommutation relation
,
the same transformation with u and v becomes
To make the transformation canonical, u and v can be parameterized as
Multimode example
The Hilbert space under consideration is equipped with these operators, and henceforth describes a higher-dimensional quantum harmonic oscillator (usually an infinite-dimensional one).
The ground state of the corresponding Hamiltonian is annihilated by all the annihilation operators:
All excited states are obtained as linear combinations of the ground state excited by some creation operators:
One may redefine the creation and the annihilation operators by a linear redefinition:
where the coefficients uij,vij must satisfy certain rules to guarantee that the annihilation operators and the creation operators
, defined by the Hermitian conjugate equation, have the same commutators.
The equation above defines the Bogoliubov transformation of the operators.
The ground state annihilated by all a'i is different from the original ground state
and they can be viewed as the Bogoliubov transformations of one another using the operator-state correspondence. They can also be defined as squeezed coherent states.
In physics, the Bogoliubov transformation is important for understanding of the Unruh effect, Hawking radiation and BCS theory, among many other things.
See also
References
| This article includes a list of references, related reading or external links, but its sources remain unclear because it lacks inline citations. Please improve this article by introducing more precise citations where appropriate. (February 2008) |
- J.-P. Blaizot and G. Ripka: Quantum Theory of Finite Systems, MIT Press (1985)
- A. Fetter and J. Walecka: Quantum Theory of Many-Particle Systems, Dover (2003)
External links
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