Nonsymmetrized Correlations in Quantum Noninvasive Measurements
Abstract
A long-standing problem in quantum mesoscopic physics is which operator order corresponds to noise expressions like <I(-\omega)I(\omega)>, where I(\omega) is the measured current at frequency \omega. Symmetrized order describes a classical measurement while nonsymmetrized order corresponds to a quantum detector, e.g., one sensitive to either emission or absorption of photons. We show that both order schemes can be embedded in quantum weak-measurement theory taking into account measurements with memory, characterized by a memory function which is independent of a particular experimental detection scheme. We discuss the resulting quasiprobabilities for different detector temperatures and how their negativity can be tested on the level of second-order correlation functions already. Experimentally, this negativity can be related to the squeezing of the many-body state of the transported electrons in an ac-driven tunnel junction.
Cite
@article{arxiv.1211.6056,
title = {Nonsymmetrized Correlations in Quantum Noninvasive Measurements},
author = {Adam Bednorz and Christoph Bruder and Bertrand Reulet and Wolfgang Belzig},
journal= {arXiv preprint arXiv:1211.6056},
year = {2013}
}
Comments
5+2 pages, 1 figure