Zero Thermal Noise in Resistors at Zero Temperature

Author:

Kish Laszlo B.1,Niklasson Gunnar A.2,Granqvist Claes-Göran2

Affiliation:

1. Department of Electrical Engineering, Texas A&M University, College Station, TX 77843-3128, USA

2. Department of Engineering Sciences, The Ångström Laboratory, Uppsala University, P. O. Box 534, SE-75121 Uppsala, Sweden

Abstract

The bandwidth of transistors in logic devices approaches the quantum limit, where Johnson noise and associated error rates are supposed to be strongly enhanced. However, the related theory — asserting a temperature-independent quantum zero-point (ZP) contribution to Johnson noise, which dominates the quantum regime — is controversial and resolution of the controversy is essential to determine the real error rate and fundamental energy dissipation limits of logic gates in the quantum limit. The Callen–Welton formula (fluctuation–dissipation theorem) of voltage and current noise for a resistance is the sum of Nyquist’s classical Johnson noise equation and a quantum ZP term with a power density spectrum proportional to frequency and independent of temperature. The classical Johnson–Nyquist formula vanishes at the approach of zero temperature, but the quantum ZP term still predicts non-zero noise voltage and current. Here, we show that this noise cannot be reconciled with the Fermi–Dirac distribution, which defines the thermodynamics of electrons according to quantum-statistical physics. Consequently, Johnson noise must be nil at zero temperature, and non-zero noise found for certain experimental arrangements may be a measurement artifact, such as the one mentioned in Kleen’s uncertainty relation argument.

Publisher

World Scientific Pub Co Pte Lt

Subject

General Physics and Astronomy,General Mathematics

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1. Practical realisation of the kelvin by Johnson noise thermometry;Metrologia;2024-02-15

2. Zero-point thermal noise in resistors? A conclusion;Metrology and Measurement Systems;2023-07-26

3. Johnson noise thermometry;Measurement Science and Technology;2019-09-04

4. Does a Standalone, “Cold” (Low-Thermal-Noise), Linear Resistor Exist Without Cooling?;Fluctuation and Noise Letters;2018-09-14

5. Memristor Equations: Incomplete Physics and Undefined Passivity/Activity;Fluctuation and Noise Letters;2017-11-21

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