Time delay interferometry with minimal null frequencies and shortened time span
Gang Wang

TL;DR
This paper introduces PD4L, a new TDI scheme that minimizes null frequencies and shortens delay spans, enhancing high-frequency GW data analysis and noise characterization for space-based observatories like LISA.
Contribution
The paper presents PD4L, a novel TDI configuration combining first-generation schemes to reduce null frequencies and delay spans, improving data analysis performance.
Findings
PD4L reduces null frequencies to match science channels.
It shortens delay spans to 4L, halving standard configurations.
PD4L enhances parameter estimation accuracy at high frequencies.
Abstract
Time-delay interferometry (TDI) is essential for suppressing laser frequency noise in space-based gravitational wave (GW) observatories such as LISA. However, current second-generation TDI schemes often exhibit undesirable null frequencies and require long delay spans, which can impair data analysis performance. In this work, we introduce an alternative TDI configuration PD4L designed to minimize null frequencies and operate with a shorter effective time span. Constructed by synthesizing two distinct first-generation TDI schemes, PD4L achieves a delay span of 4 (where is the arm length), half that of the standard Michelson and hybrid Relay configurations. We assess PD4L's performance by evaluating the spectral stability of instrumental noise via arm-length derivatives, simulating chirping GW signals from coalescing massive black hole binaries, and comparing waveform responses.…
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