Performance limits due to thermal transport in graphene single-photon bolometers
Abstract
In high-sensitivity bolometers and calorimeters, the photon absorption often occurs at a finite distance from the temperature sensor to accommodate antennas or avoid the degradation of superconducting circuitry exposed to radiation. As a result, thermal propagation from the input to the temperature readout can critically affect detector performance. In this report we model the performance of a graphene bolometer, accounting for electronic thermal diffusion and dissipation via electron-phonon coupling at low temperatures in three regimes: clean, supercollision, and resonant scattering. Our results affirm the feasibility of a superconducting readout without Cooper-pair breaking by mid- and near-infrared photons, and provide a recipe for designing graphene absorbers for calorimetric single-photon detectors. We investigate the tradeoff between the input-readout distance and detector efficiency, and predict an intrinsic timing jitter of ~2.7 ps. Based on our result, we propose a spatial-mode-resolving photon detector to increase communication bandwidth.
Keywords
Cite
@article{arxiv.2311.00228,
title = {Performance limits due to thermal transport in graphene single-photon bolometers},
author = {Caleb Fried and B. Jordan Russell and Ethan G. Arnault and Bevin Huang and Gil-Ho Lee and Dirk Englund and Erik A. Henriksen and Kin Chung Fong},
journal= {arXiv preprint arXiv:2311.00228},
year = {2024}
}