A Bethe ansatz solvable model for superpositions of Cooper pairs and condensed molecular bosons


Autoria(s): Hibberd, K. E.; Dunning, C.; Links, J.
Contribuinte(s)

Altarelli, G.

Bartel. W.

Data(s)

01/01/2006

Resumo

We introduce a general Hamiltonian describing coherent superpositions of Cooper pairs and condensed molecular bosons. For particular choices of the coupling parameters, the model is integrable. One integrable manifold, as well as the Bethe ansatz solution, was found by Dukelsky et al. [J. Dukelsky, G.G. Dussel, C. Esebbag, S. Pittel, Phys. Rev. Lett. 93 (2004) 050403]. Here we show that there is a second integrable manifold, established using the boundary quantum inverse scattering method. In this manner we obtain the exact solution by means of the algebraic Bethe ansatz. In the case where the Cooper pair energies are degenerate we examine the relationship between the spectrum of these integrable Hamiltonians and the quasi-exactly solvable spectrum of particular Schrodinger operators. For the solution we derive here the potential of the Schrodinger operator is given in terms of hyperbolic functions. For the solution derived by Dukelsky et al., loc. cit. the potential is sextic and the wavefunctions obey PT-symmetric boundary conditions. This latter case provides a novel example of an integrable Hermitian Hamiltonian acting on a Fock space whose states map into a Hilbert space of PE-symmetric wavefunctions defined on a contour in the complex plane. (c) 2006 Elsevier B.V. All rights reserved.

Identificador

http://espace.library.uq.edu.au/view/UQ:82252

Idioma(s)

eng

Publicador

Elsevier

Palavras-Chave #Physics, Particles & Fields #Symmetric Quantum-mechanics #Bose-einstein Condensate #Reflection Equation #Systems #Hamiltonians #Potentials #Algebras #Boundary #Spectra #C1 #230199 Mathematics not elsewhere classified #240200 Theoretical and Condensed Matter Physics #230105 Group Theory And Generalisations (Incl. Topological Groups And Lie Groups) #780101 Mathematical sciences #010502 Integrable Systems (Classical and Quantum)
Tipo

Journal Article