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Daniel A. Kessler

Publications and source records attributed to Daniel A. Kessler.

3 recordsLinked to original sources

Reconstructing dark energy with fewer assumptions

We perform minimalistic reconstructions of the dark energy density and equation of state using late-time distance measurements. Our methodology avoids assumptions that correlate the values of these functions over time and instead yields their approximate average evolution within seven redshift bins from $z=0$ to $z=4.2$. Constraints are obtained using combinations of BAO measurements from DESI and SDSS, alongside Type Ia supernovae measurements from Pantheon+ and the latest recalibrated samples, Union3.1 and DES-Dovekie. Only an acoustic scale prior is included from the CMB so that our results are insensitive to the possible matter density tension between early and late-time probes. All combinations yield consistent reconstructed histories: a dark energy density that rises to a local maximum before decreasing at late times and an equation of state with two apparent oscillations around the cosmological constant limit. Both functions tentatively suggest a phantom crossing in the equation of state around $z\sim0.6$-$0.8$. These patterns are robust to numerous parameter extensions, such as freely varying spatial curvature and neutrino mass, and they persist in the uncorrelated amplitudes obtained through localized principal component analysis. Deviations from $\Lambda$CDM in individual bins reach a maximum significance of $\sim2.6$-$3\sigma$, while the total chi-square difference between the reconstructions and this model provides up to $\sim2\sigma$ support for the seven additional parameters in the reconstructions. As these significances remain moderate, our main result is the level of consistency between combinations of the most widely used background-level observations. Our results suggest that the dark energy evolution signal is a persistent feature of the data and that it cannot be explained solely by fluctuations or systematics in individual measurements.

astro-ph.CO

One-parameter dynamical dark energy: Hints for oscillations

There is mounting evidence from multiple cosmological probes that dark energy may be dynamical, with an equation of state that evolves over cosmic time. While this evidence is typically quantified using the Chevallier-Polarski-Linder (CPL) parametrization, based on a linear expansion of $w(a)$ in the scale factor, non-parametric reconstructions frequently suggest non-linear features, particularly at late times. In this work, we investigate four minimal one-parameter models of dark energy with non-linear dependence on the scale factor. These models are constrained using Cosmic Microwave Background (CMB) data from Planck, lensing reconstruction from ACT-DR6, Baryon Acoustic Oscillation (BAO) measurements from DESI-DR2, and three Type-Ia supernovae (SNe) samples (PantheonPlus, DESY5, and Union3), considered independently. Although our conclusions depend on the choice of SNe sample, we consistently find a preference, as measured by the chi-squared statistic and the Bayesian evidence, for these dynamical dark energy models over the standard $\Lambda$CDM model. Notably, with the PantheonPlus dataset, one model shows strong Bayesian evidence ($\Delta \ln B \simeq 4.5$) against CPL, favoring an equation of state that peaks near $a \simeq 0.7$ and oscillates near the present day. These results highlight the impact of SNe selection and contribute to the growing collection of evidence for late-time deviations from $\Lambda$CDM.

astro-ph.CO

Gravitational Wave Scattering From the Sun and Planets

General relativity predicts that massless waves should scatter from the Riemann curvature of their backgrounds. These scattered waves are sometimes called $\textit{tails}$ and have never been directly observed. Here we calculate the gravitational waves scattered in the backward direction (scattering angle $\vartheta=\pi$) from the weak-field curvature of an extended massive object, finding close agreement with previous results in the long-wavelength limit. These long-wavelength results are then applied to gravitational waves in the Laser Interferometer Space Antenna (LISA) sensitivity band scattering from the Sun and planets. We estimate that scattering from the Sun and the planets from Jupiter to Neptune could contribute a $10^{-3}$ amplitude modulation to LISA observations when these objects almost intersect the line of sight between LISA and the source, leading to forward scattering with $\vartheta\simeq0$. These conditions should be realized for the Sun during the lifetime of LISA if the detection rate of long-duration sources is not much smaller than a thousand per year.

gr-qc