Cryogenic microwave source based on nanoscale tunnel junctions
Shumpei Masuda, Kuan Y. Tan, Matti Partanen, Russell E. Lake, Joonas, Govenius, Matti Silveri, Hermann Grabert, Mikko M\"ott\"onen

TL;DR
This paper demonstrates a cryogenic microwave source using nanoscale tunnel junctions that converts electronic energy into microwave photons, with controllable emission suitable for low-temperature quantum electronics.
Contribution
It introduces a novel, electrically-controlled microwave photon source based on quantum tunneling in nanoscale junctions, compatible with low-temperature environments.
Findings
Output power exceeds 2.5-K thermal radiation levels
Power measurements align with theoretical models across bias voltages
Provides in-situ electrical control of photon emission at specific frequencies
Abstract
We experimentally realize an incoherent microwave source driven by voltage-controlled quantum tunneling of electrons through nanoscale normal-metal--insulator--superconductor junctions coupled to a resonator. We observe the direct conversion of the electronic energy into microwave photons by measuring the power spectrum of the microwave radiation emitted from the resonator. The demonstrated total output power exceeds that of 2.5-K thermal radiation although the photon and electron reservoirs are at subkelvin temperatures. Measurements of the output power quantitatively agree with a theoretical model in a wide range of the bias voltages providing information on the electrically-controlled photon creation. The developed photon source is fully compatible with low-temperature electronics and offers convenient in-situ electrical control of the photon emission rate with a predetermined…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum and electron transport phenomena · Strong Light-Matter Interactions
