Gravitational-wave constraints on noncommutative spacetime from GW190814
Hanlin Song, Hao Li, Zhenwei Lyu, Jie Zhu, Jun-Chen Wang, Peixiang Ji

TL;DR
This paper uses gravitational wave data, especially from GW190814, to set the strongest constraints yet on noncommutative spacetime parameters, refining previous bounds and exploring higher-order modes.
Contribution
The authors develop a noncommutative gravity waveform model within the Parameterized Post-Einsteinian framework and analyze multiple GW events to tighten constraints on noncommutative spacetime.
Findings
Upper bound on noncommutative parameter: rom GW190814 data
Characteristic noncommutative gravity energy scale above 2.2 E_P
Most stringent GW-based constraint on noncommutative gravity to date
Abstract
Recent advances in noncommutative geometry and string theory have stimulated increasing research on noncommutative gravity. The detection of gravitational waves~(GW) opens a new window for testing this theory using observed data. In particular, the leading correction from noncommutative gravity to the GW of compact binary coalescences appears at the second post-Newtonian~(2PN) order. This correction is proportional to the dimensionless parameter , where denotes the antisymmetric tensor characterizing noncommutative spacetime, and represent the Plank length and time, respectively. Previous study have used the phase deviation from general relativity at the 2PN order, as measured in GW150914, to constrain noncommutative gravity, resulting in an upper bound of . Another analysis, based on multiple…
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