Low-loss Material for Infrared Protection of Cryogenic Quantum Applications
arXiv:2601.05147 · doi:10.1063/5.0323074
Abstract
The fragile quantum states of low-temperature quantum applications require protection from infrared radiation caused by higher-temperature stages or other sources. We propose a material system that can efficiently block radiation up to the optical range while transmitting photons at low gigahertz frequencies. It is based on the effect that incident photons are strongly scattered when their wavelength is comparable to the size of particles embedded in a weakly absorbing medium (Mie-scattering). The goal of this work is to tailor the absorption and transmission spectrum of an non-magnetic epoxy resin containing sapphire spheres by simulating its dependence on the size distribution. Additionally, we fabricate several material compositions, characterize them, as well as other materials, at optical, infrared, and gigahertz frequencies. In the infrared region (stop band) the attenuation of the Mie-scattering optimized material is high and comparable to that of other commonly used filter materials. At gigahertz frequencies (pass-band), the prototype filter exhibits a high transmission at millikelvin temperatures, with an insertion loss of less than dB below GHz.
References in corpus (7)
- Measurement and Control of Quasiparticle Dynamics in a Superconducting Qubit
- Suppressing relaxation in superconducting qubits by quasiparticle pumping
- Microwave-induced excess quasiparticles in superconducting resonators measured through correlated conductivity fluctuations
- Optimization of infrared and magnetic shielding of superconducting TiN and Al coplanar microwave resonators
- Engineering the microwave to infrared noise photon flux for superconducting quantum systems
- Quasiparticle dynamics in a superconducting qubit irradiated by a localized infrared source
- Absorptive filters for quantum circuits: Efficient fabrication and cryogenic power handling