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Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter

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Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter. / Chen, Chao; Das, Suruj Jyoti; Dimopoulos, Konstantinos et al.
In: European Physical Journal C: Particles and Fields, Vol. 85, No. 8, 898, 31.08.2025.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Chen, C, Das, SJ, Dimopoulos, K & Ghoshal, A 2025, 'Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter', European Physical Journal C: Particles and Fields, vol. 85, no. 8, 898. https://doi.org/10.1140/epjc/s10052-025-14586-z

APA

Chen, C., Das, S. J., Dimopoulos, K., & Ghoshal, A. (2025). Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter. European Physical Journal C: Particles and Fields, 85(8), Article 898. Advance online publication. https://doi.org/10.1140/epjc/s10052-025-14586-z

Vancouver

Chen C, Das SJ, Dimopoulos K, Ghoshal A. Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter. European Physical Journal C: Particles and Fields. 2025 Aug 31;85(8):898. Epub 2025 Aug 24. doi: 10.1140/epjc/s10052-025-14586-z

Author

Chen, Chao ; Das, Suruj Jyoti ; Dimopoulos, Konstantinos et al. / Flipped rotating axion non-minimally coupled to gravity : baryogenesis and dark matter. In: European Physical Journal C: Particles and Fields. 2025 ; Vol. 85, No. 8.

Bibtex

@article{a2d6d55414604427b8cd6fb4962ad6fb,
title = "Flipped rotating axion non-minimally coupled to gravity: baryogenesis and dark matter",
abstract = "We demonstrate that the co-genesis of baryon asymmetry and dark matter can be achieved through the rotation of an axion-like particle (but not the QCD axion), driven by a flip in the vacuum manifold{\textquoteright}s direction at the end of inflation. This can occur if the axion has a periodic non-minimal coupling to gravity, while preserving the discrete shift symmetry. In non-oscillating inflation models, after inflation there is typically a period of kination (with w=1). In this case, it is shown that the vacuum manifold of the axion is flipped and the axion begins rotating in field space, because it can slide across the decreasing potential barrier as in Ricci reheating. Such a rotating axion can generate the baryon asymmetry of the Universe through spontaneous baryogenesis, while at later epochs it can oscillate as dark matter. The period of kination makes the primordial gravitational waves (GW) generated during inflation sharply blue-tilted which constrains the parameter space due to GW overproduction, while being testable by next generation CMB experiments. As a concrete example, we show that such a cogenesis of baryon asymmetry and dark matter can be realized for the axion as the Majoron in the Type-I seesaw setup, predicting mass ranges for the Majoron below sub eVs, with right-handed neutrino mass above O(108) GeV. We also show that in order to avoid fragmentation of the axion condensate during the rotation, we require the non-minimal coupling ξ∼(f/mP)2 or somewhat larger, where f is the axion decay constant.",
author = "Chao Chen and Das, {Suruj Jyoti} and Konstantinos Dimopoulos and Anish Ghoshal",
year = "2025",
month = aug,
day = "24",
doi = "10.1140/epjc/s10052-025-14586-z",
language = "English",
volume = "85",
journal = "European Physical Journal C: Particles and Fields",
issn = "1434-6044",
publisher = "SPRINGER",
number = "8",

}

RIS

TY - JOUR

T1 - Flipped rotating axion non-minimally coupled to gravity

T2 - baryogenesis and dark matter

AU - Chen, Chao

AU - Das, Suruj Jyoti

AU - Dimopoulos, Konstantinos

AU - Ghoshal, Anish

PY - 2025/8/24

Y1 - 2025/8/24

N2 - We demonstrate that the co-genesis of baryon asymmetry and dark matter can be achieved through the rotation of an axion-like particle (but not the QCD axion), driven by a flip in the vacuum manifold’s direction at the end of inflation. This can occur if the axion has a periodic non-minimal coupling to gravity, while preserving the discrete shift symmetry. In non-oscillating inflation models, after inflation there is typically a period of kination (with w=1). In this case, it is shown that the vacuum manifold of the axion is flipped and the axion begins rotating in field space, because it can slide across the decreasing potential barrier as in Ricci reheating. Such a rotating axion can generate the baryon asymmetry of the Universe through spontaneous baryogenesis, while at later epochs it can oscillate as dark matter. The period of kination makes the primordial gravitational waves (GW) generated during inflation sharply blue-tilted which constrains the parameter space due to GW overproduction, while being testable by next generation CMB experiments. As a concrete example, we show that such a cogenesis of baryon asymmetry and dark matter can be realized for the axion as the Majoron in the Type-I seesaw setup, predicting mass ranges for the Majoron below sub eVs, with right-handed neutrino mass above O(108) GeV. We also show that in order to avoid fragmentation of the axion condensate during the rotation, we require the non-minimal coupling ξ∼(f/mP)2 or somewhat larger, where f is the axion decay constant.

AB - We demonstrate that the co-genesis of baryon asymmetry and dark matter can be achieved through the rotation of an axion-like particle (but not the QCD axion), driven by a flip in the vacuum manifold’s direction at the end of inflation. This can occur if the axion has a periodic non-minimal coupling to gravity, while preserving the discrete shift symmetry. In non-oscillating inflation models, after inflation there is typically a period of kination (with w=1). In this case, it is shown that the vacuum manifold of the axion is flipped and the axion begins rotating in field space, because it can slide across the decreasing potential barrier as in Ricci reheating. Such a rotating axion can generate the baryon asymmetry of the Universe through spontaneous baryogenesis, while at later epochs it can oscillate as dark matter. The period of kination makes the primordial gravitational waves (GW) generated during inflation sharply blue-tilted which constrains the parameter space due to GW overproduction, while being testable by next generation CMB experiments. As a concrete example, we show that such a cogenesis of baryon asymmetry and dark matter can be realized for the axion as the Majoron in the Type-I seesaw setup, predicting mass ranges for the Majoron below sub eVs, with right-handed neutrino mass above O(108) GeV. We also show that in order to avoid fragmentation of the axion condensate during the rotation, we require the non-minimal coupling ξ∼(f/mP)2 or somewhat larger, where f is the axion decay constant.

U2 - 10.1140/epjc/s10052-025-14586-z

DO - 10.1140/epjc/s10052-025-14586-z

M3 - Journal article

VL - 85

JO - European Physical Journal C: Particles and Fields

JF - European Physical Journal C: Particles and Fields

SN - 1434-6044

IS - 8

M1 - 898

ER -