Bolometer operating at the threshold for circuit quantum electrodynamics
R. Kokkoniemi, J.-P. Girard, D. Hazra, A. Laitinen, J. Govenius, R. E., Lake, I. Sallinen, V. Vesterinen, P. Hakonen, M. M\"ott\"onen

TL;DR
This paper reports a graphene-based bolometer with ultra-low noise and rapid response, suitable for quantum circuit applications, surpassing previous thermal detector performance in speed and sensitivity.
Contribution
The authors demonstrate a graphene bolometer with record low noise and fast thermal response, enabling its use in circuit quantum electrodynamics systems.
Findings
Noise equivalent power of 30 zW/√Hz achieved
Thermal time constant of 500 ns demonstrated
Device directly measures calorimetric energy resolution for 30-GHz photons
Abstract
Radiation sensors based on the heating effect of the absorbed radiation are typically relatively simple to operate and flexible in terms of the input frequency. Consequently, they are widely applied, for example, in gas detection, security, THz imaging, astrophysical observations, and medical applications. A new spectrum of important applications is currently emerging from quantum technology and especially from electrical circuits behaving quantum mechanically. This circuit quantum electrodynamics (cQED) has given rise to unprecedented single-photon detectors and a quantum computer supreme to the classical supercomputers in a certain task. Thermal sensors are appealing in enhancing these devices since they are not plagued by quantum noise and are smaller, simpler, and consume about six orders of magnitude less power than the commonly used traveling-wave parametric amplifiers. However,…
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