Charge Management for Gravitational Wave Observatories using UV LEDs
arXiv:0912.1769 · doi:10.1103/PhysRevD.81.021101
Abstract
Accumulation of electrical charge on the end mirrors of gravitational wave observatories, such as the space-based LISA mission and ground-based LIGO detectors, can become a source of noise limiting the sensitivity of such detectors through electronic couplings to nearby surfaces. Torsion balances provide an ideal means for testing gravitational wave technologies due to their high sensitivity to small forces. Our torsion pendulum apparatus consists of a movable Au-coated Cu plate brought near a Au-coated Si plate pendulum suspended from a non-conducting quartz fiber. A UV LED located near the pendulum photoejects electrons from the surface, and a UV LED driven electron gun directs photoelectrons towards the pendulum surface. We have demonstrated both charging and discharging of the pendulum with equivalent charging rates of , as well as spectral measurements of the pendulum charge resulting in a white noise level equivalent to .
5 pages, submitted to PRD
References in corpus (2)
Cited by in corpus (16)
- Gravitational Radiation Detection with Laser Interferometry
- Charge-induced force-noise on free-falling test masses: results from LISA Pathfinder
- Observation and cancellation of the dc Stark shift in strontium optical lattice clocks
- Demonstration of displacement sensing of a mg-scale pendulum for mm- and mg- scale gravity measurements
- Charge Induced Acceleration Noise in the LISA Gravitational Reference Sensor
- The Gravitational Wave Observatory Designer: Sensitivity Limits of Spaceborne Detectors
- Identifying and Addressing Nonstationary LISA Noise
- Effective decrease of photoelectric emission threshold from gold plated surfaces
- Ground Testing and Flight Demonstration of Charge Management of Insulated Test Masses Using UV LED Electron Photoemission
- Rydberg Electrometry for Optical Lattice Clocks
- Torsion pendulum revisited
- Indirect Evidence for Lévy Walks in Squeeze Film Damping
- Microelectromechanical-System-Based Design of a High-Finesse Fiber Cavity Integrated with an Ion Trap
- Trap-loss spectroscopy of Rydberg states in ytterbium
- Ultraviolet stimulated electron source for use with low energy plasma instrument calibration
- Modeling and Performance of Contact-Free Discharge Systems for Space Inertial Sensors