Accurate phase detection in time-domain heterodyne SFG spectroscopy
Abstract
Heterodyne detection is a ubiquitous tool in spectroscopy for the simultaneous detection of intensity and phase of light. However, the need for phase stability hinders the application of heterodyne detection to electronic spectroscopy. We present an interferometric design for a phase-sensitive electronic sum frequency generation (e-SFG) spectrometer in the time domain with lock-in detection. Our method of continuous phase modulation of one arm of the interferometer affords direct measurement of the phase between SFG and local oscillator fields. Errors in the path length difference caused by drifts in the optics are corrected, offering unprecedented stability. This spectrometer has the added advantage of collinear fundamental beams. The capabilities of the spectrometer are demonstrated with proof-of-principle experiments with GaAs e-SFG spectra, where we see significantly improved signal to noise ratio, spectral accuracy, and lineshapes.
Document Details
- Document Type
- Pub Defense Publication
- Publication Date
- Oct 07, 2022
- Source ID
- 10.1364/oe.473098
Entities
People
- Clare L Keenan
- Nasim Mirzajani
- Sarah B King
- Sarah R. Melton
Organizations
- Arnold and Mabel Beckman Foundation
- United States Department of Defense
- University of Chicago