Performance of a radiatively cooled system for quantum optomechanical experiments in space
arXiv:1508.01032 · doi:10.1016/j.applthermaleng.2016.06.116
Abstract
The performance of a radiatively cooled instrument is investigated in the context of optomechanical quantum experiments, where the environment of a macroscopic particle in a quantum-superposition has to be cooled to less than 20\,K in deep space. A heat-transfer analysis between the components of the instrument as well as a transfer-function analysis on thermal oscillations induced by the spacecraft interior and by dissipative sources is performed. The thermal behaviour of the instrument in an orbit around a Lagrangian point and in a highly elliptical Earth orbit is discussed. Finally, we investigate further possible design improvements aiming at lower temperatures of the environment of the macroscopic particle. These include a mirror-based design of the imaging system on the optical bench and the extension of the heat shields.
13 pages, 11 figures, 3 tables
References in corpus (4)
Cited by in corpus (6)
- Optomechanics with Levitated Particles
- Advances in Space Quantum Communications
- Macroscopic quantum resonators (MAQRO): 2015 Update
- Testing the foundations of quantum physics in space Interferometric and non-interferometric tests with Large Particles
- Testing quantum physics in space using high-mass matter-wave interferometry
- Quantum Physics in Space