Numerical renormalization group calculation of impurity internal energy and specific heat of quantum impurity models
L. Merker, T. A. Costi

TL;DR
This paper presents a new method to calculate the impurity specific heat in quantum impurity models using local quantities from a single NRG calculation, improving accuracy and applicability.
Contribution
The authors introduce a direct NRG-based method to compute impurity specific heat from local static correlation functions, applicable to complex multiorbital models.
Findings
Accurately reproduces Kondo peak in specific heat at low temperatures.
Successfully matches high-temperature peaks with exact Bethe ansatz results.
Applicable to multiorbital and multichannel Anderson models.
Abstract
We introduce a method to obtain the specific heat of quantum impurity models via a direct calculation of the impurity internal energy requiring only the evaluation of local quantities within a single numerical renormalization group (NRG) calculation for the total system. For the Anderson impurity model, we show that the impurity internal energy can be expressed as a sum of purely local static correlation functions and a term that involves also the impurity Green function. The temperature dependence of the latter can be neglected in many cases, thereby allowing the impurity specific heat, , to be calculated accurately from local static correlation functions; specifically via , where and are the energies of the (embedded) impurity and the…
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