Rank one perturbations and Anderson-type Hamiltonians
Abstract
Motivated by applications of the discrete random Schr\"odinger operator, mathematical physicists and analysts, began studying more general Anderson-type Hamiltonians; that is, the family of self-adjoint operators Hω = H + Vω on a separable Hilbert space H, where the perturbation is given by Vω = Σn ωn (·, n)n with a sequence \n\⊂H and independent identically distributed random variables ωn. We show that the the essential parts of Hamiltonians associated to any two realizations of the random variable are (almost surely) related by a rank one perturbation. This result connects one of the least trackable perturbation problem (with almost surely non-compact perturbations) with one where the perturbation is `only' of rank one perturbations. The latter presents a basic application of model theory. We also show that the intersection of the essential spectrum with open sets is almost surely either the empty set, or it has non-zero Lebesgue measure.
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