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Stacie Moltner

Physics
The University of Texas at Austin · Canada
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About

PhD Physics (Theoretical Cosmology and Astrophysics), University of Texas at Austin

BEng Engineering Physics, McMaster University

Research keywords

CosmologyAstrophysicsEarly universe physicsCosmic microwave backgroundDark energyDark matter

Publications

3

Indirect detection of dark matter absorption in the Galactic Center

Journal of Cosmology and Astroparticle Physics · 2025

Abstract We consider the nuclear absorption of dark matter as an alternative to the typical indirect detection search channels of dark matter decay or annihilation. In this scenario, an atomic nucleus transitions to an excited state by absorbing a pseudoscalar dark matter particle and promptly emits a photon as it transitions back to its ground state. The nuclear excitation of carbon and oxygen in the Galactic Center would produce a discrete photon spectrum in the 𝒪 (10) MeV range that could be detected by gamma-ray telescopes. Using the BIGSTICK large-scale shell-model code, we calculate the excitation energies of carbon and oxygen. We constrain the dark matter-nucleus coupling for current COMPTEL data, and provide projections for future experiments AMEGO-X, e-ASTROGAM, and GRAMS for dark matter masses from ∼ 10 to 30 MeV. We find the excitation process to be very sensitive to the dark matter mass and find that the future experiments considered would improve constraints on the dark matter-nucleus coupling within an order of magnitude.

Investigation of CMB constraints for dark matter-helium scattering

Physical review. D/Physical review. D. · 2022

We study dark matter-helium scattering in the early Universe and its impact on constraints from cosmic microwave background (CMB) anisotropy measurements. We describe possible theoretical frameworks for dark matter-nucleon interactions via a scalar, pseudoscalar, or vector mediator; such interactions give rise to hydrogen and helium scattering, with cross sections that have a power-law dependence on relative velocity. Within these frameworks, we consider three scenarios: dark matter coupling to only neutrons, to only protons, and to neutrons and protons with equal strength. For these various cases, we use Planck 2018 temperature, polarization, and lensing anisotropy data to place constraints on dark matter scattering with hydrogen and/or helium for dark matter masses between 10 keV and 1 TeV. For any model that permits both helium and hydrogen scattering with a non-negative power-law velocity dependence, we find that helium scattering dominates the constraint for dark matter masses well above the proton mass. Furthermore, we place the first CMB constraints on dark matter that scatters dominantly/exclusively with helium in the early Universe.

Does Planck actually “see” the Bunch-Davies state?

Journal of Cosmology and Astroparticle Physics · 2021

Abstract To what extent can the Planck satellite observations be interpreted as confirmation of the quantum part of the inflationary paradigm? Has it “seen” the Bunch-Davies state? We compare and contrast the Bunch-Davies interpretation with one using a so-called entangled state in which the fluctuations of a spectator scalar field are entangled with those of the metric perturbations ζ. We first show how a spectator scalar field Σ, with an expectation value σ( t ) that evolves in time, will generically generate such a state. We then use this state to compute the power spectrum P ζ ( k ) and thence the temperature anisotropies C l in the Cosmic Microwave Background (CMB). We find interesting differences from the standard calculations using the Bunch-Davies (BD) state. We argue that existing data may already be used to place interesting bounds on this class of deviations from the BD state and that, for some values of the parameters of the state, the power spectra may be consistent with the Planck satellite data.

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