Optimizing the architecture for coherent beat note acquisition in LISA
Philipp Euringer, Gerald Hechenblaikner, Alexander Sell, Francis, Soualle, Walter Fichter

TL;DR
This paper optimizes the beat note acquisition process in LISA by identifying segment combinations that maximize CNR, thereby improving detection probability and robustness against pointing errors.
Contribution
It introduces an analytical model and simulation-based evaluation to determine optimal QPD segment combinations for enhanced CNR during beat note acquisition in LISA.
Findings
Maximum CNR achieved by combining two segments in each direction.
Pointing errors of a few micro-radians improve CNR by up to 5.6 dB.
Enhanced CNR significantly increases detection probability.
Abstract
The laser interferometer space antenna (LISA) senses gravitational waves by measuring distance fluctuations between three spacecraft (SC). These measurements rely on precise tracking of a beat note phase that is formed on a quadrant-photo-diode (QPD) at each SC by interference of a local laser with a laser sent from a distant SC. The crucial prerequisite of the phase tracking is a successful acquisition of the beat note frequency. This article aims to optimize the carrier-to-noise density ratio (CNR) during this process, and to evaluate the resulting probability of detection (PD). CNR is generally lowest during the beat note acquisition process since pointing accuracy relies on coarse acquisition techniques. Based on analytical models, we examine which combinations of QPD segments for the signal read-out yield the highest CNR, i.e., they are least susceptible to pointing errors. We find…
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Taxonomy
TopicsAdvancements in PLL and VCO Technologies · Numerical Methods and Algorithms · Advanced Electrical Measurement Techniques
