Review Article: Physics and Monte Carlo Techniques as Relevant to Cryogenic, Phonon and Ionization Readout of CDMS Radiation-Detectors
arXiv:1109.1193 · doi:10.1063/1.4747490
Abstract
This review discusses detector physics and Monte Carlo techniques for cryogenic, radiation detectors that utilize combined phonon and ionization readout. A general review of cryogenic phonon and charge transport is provided along with specific details of the Cryogenic Dark Matter Search detector instrumentation. In particular this review covers quasidiffusive phonon transport, which includes phonon focusing, anharmonic decay and isotope scattering. The interaction of phonons in the detector surface is discussed along with the downconversion of phonons in superconducting films. The charge transport physics include a mass tensor which results from the crystal band structure and is modeled with a Herring Vogt transformation. Charge scattering processes involve the creation of Neganov-Luke phonons. Transition-edge-sensor (TES) simulations include a full electric circuit description and all thermal processes including Joule heating, cooling to the substrate and thermal diffusion within the TES, the latter of which is necessary to model normal-superconducting phase separation. Relevant numerical constants are provided for these physical processes in germanium, silicon, aluminum and tungsten. Random number sampling methods including inverse cumulative distribution function (CDF) and rejection techniques are reviewed. To improve the efficiency of charge transport modeling, an additional second order inverse CDF method is developed here along with an efficient barycentric coordinate sampling method of electric fields. Results are provided in a manner that is convenient for use in Monte Carlo and references are provided for validation of these models.
References in corpus (10)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Results from the Final Exposure of the CDMS II Experiment
- Results from a Low-Energy Analysis of the CDMS II Germanium Data
- Electron transport properties in high-purity Ge down to cryogenic temperatures
- Monte Carlo Comparisons to a Cryogenic Dark Matter Search Detector with low Transition-Edge-Sensor Transition Temperature
- Validation of Phonon Physics in the CDMS Detector Monte Carlo
- Simulations of Noise in Phase-Separated Transition-Edge Sensors for SuperCDMS
- Comparison of CDMS [100] and [111] oriented germanium detectors
- Modeling phase-separated transition-edge sensors in SuperCDMS detectors
- Time Evolution of Electric Fields in CDMS Detectors
Cited by in corpus (9)
- Low-Mass Dark Matter Search with CDMSlite
- TLS Dynamics in a Superconducting Qubit Due to Background Ionizing Radiation
- Measurements and simulations of athermal phonon transmission from silicon absorbers to aluminium sensors
- Nuclear-recoil energy scale in CDMS II silicon dark-matter detectors
- Modeling Athermal Phonons in Novel Materials using the G4CMP Simulation Toolkit
- A Model on Heat Signal of Crystal Detector at Low Temperature
- Phonon-Based Position Determination in SuperCDMS iZIP Detectors
- Time Evolution of Electric Fields in CDMS Detectors
- State of the Art in Direct Dark Matter Detectors: Technologies, Performance, and Future Directions