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arXiv · 2011.09650

Discrete Eigenvalues of a $2 \times 2$ Operator Matrix

Abstract

We consider a $2\times2$ block operator matrix ${\mathcal A}_\mu$ $($$\mu>0$ is a coupling constant$)$ acting in the direct sum of one- and two-particle subspaces of a bosonic Fock space. The location of the essential spectrum of ${\mathcal A}_\mu$ is described and its bounds are estimated. It is shown that there exist the critical values $\mu_l^0(\gamma)$ with $\gamma>0$ and $\mu_r^0(\gamma)$ with $\gamma<12$ of the coupling constant $\mu>0$ such that for all $\gamma>0$ $(\gamma<12)$ the operator ${\mathcal A}_\mu$ with $\mu=\mu_l^0(\gamma)$ $(\mu=\mu_r^0(\gamma)$ has infinitely many eigenvalues on the l.h.s. $($r.h.s.$)$ of the its essential spectrum. We prove that for all $\mu \not\in \{\mu_l^0(\gamma),\mu_r^0(\gamma)\}$ the operator ${\mathcal A}_\mu$ has finitely many discrete eigenvalues on the l.h.s. and r.h.s. of its essential spectrum.

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Elyor B. Dilmurodov. 2020-11-19. Discrete Eigenvalues of a $2 \times 2$ Operator Matrix. https://arxiv.org/abs/2011.09650

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