pith. the verified trust layer for science. sign in

arxiv: 1203.5024 · v1 · pith:4FHHN5YUnew · submitted 2012-03-22 · 🪐 quant-ph · cond-mat.mes-hall

Qubit relaxation from evanescent-wave Johnson noise

classification 🪐 quant-ph cond-mat.mes-hall
keywords deviceevanescent-wavemetallicnoisequantumqubitsarchitecturesdecoherence
0
0 comments X p. Extension
Add this Pith Number to your LaTeX paper What is a Pith Number?
\usepackage{pith}
\pithnumber{4FHHN5YU}

Prints a linked pith:4FHHN5YU badge after your title and writes the identifier into PDF metadata. Compiles on arXiv with no extra files. Learn more

read the original abstract

In many quantum computer architectures, the qubits are in close proximity to metallic device elements. Metals have a high density of photon modes, and the fields spill out of the bulk metal because of the evanescent-wave component. Thus thermal and quantum electromagnetic Johnson- type noise from metallic device elements can decohere nearby qubits. In this paper we use quantum electrodynamics to compute the strength of this evanescent-wave Johnson noise as a function of distance z from a metallic half-space. Previous treatments have shown unphysical divergences at z = 0. We remedy this by using a proper non-local dielectric function. Decoherence rates of local qubits are proportional to the magnitude of electric or magnetic correlation functions evaluated at the qubit position. We present formulas for the decoherence rates. These formulas serve as an important constraint on future device architectures.

This paper has not been read by Pith yet.

discussion (0)

Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.