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Paper Citation Record · LEDGER

Temperature-redshift relation in energy-momentum-powered gravity models

As of 10 August 2026, this Paper Citation Record lists 28 of 28 outbound references and 0 inbound Pith citation observations for arXiv:2501.19177.

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pith.paper-citation-record.v1
2501.19177 v1

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measured 28 of 28 reference resolution

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Pith citing papers itemized under the disclosed page cap.

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28 of 28 outbound references displayed

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Outbound references

Observation 4762de05-8580-4ae5-94ac-298a8e36d32e · outbound

This paper cites Energy-Momentum Squared Gravity.

Temperature-redshift relation in energy-momentum-powered gravity models Energy-Momentum Squared Gravity

Reference 1

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Observation 2aeb279d-b8dc-43c9-8a50-111c757e917b · outbound

This paper cites Cosmological Models in Energy-Momentum-Squared Gravity.

Temperature-redshift relation in energy-momentum-powered gravity models Cosmological Models in Energy-Momentum-Squared Gravity

Reference 2

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Observation c1c52489-3b10-4095-b149-dafc13909cb0 · outbound

This paper cites Cosmic acceleration in dust only Universe via energy-momentum powered gravity.

Temperature-redshift relation in energy-momentum-powered gravity models Cosmic acceleration in dust only Universe via energy-momentum powered gravity

Reference 3

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Observation d6fbd6e6-088d-4582-a708-fd77d7388501 · outbound

This paper cites Type Ia Supernova Distances at z > 1.5 from the Hubble Space Telescope Multi-Cycle Treasury Programs: The Early Expansion Rate.

Temperature-redshift relation in energy-momentum-powered gravity models Type Ia Supernova Distances at z > 1.5 from the Hubble Space Telescope Multi-Cycle Treasury Programs: The Early Expansion Rate

Reference 4

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Observation c72b3687-a117-4fa7-981e-b9024ad7afba · outbound

This paper cites Hubble parameter measurement constraints on the redshift of the deceleration-acceleration transition, dynamical dark energy, and space curvature.

Temperature-redshift relation in energy-momentum-powered gravity models Hubble parameter measurement constraints on the redshift of the deceleration-acceleration transition, dynamical dark energy, and space curvature

Reference 5

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Observation fc6ae2c5-d420-41da-a38b-cd202bf2fda0 · outbound

This paper cites Low redshift constraints on energy-momentum-powered gravity models.

Temperature-redshift relation in energy-momentum-powered gravity models Low redshift constraints on energy-momentum-powered gravity models

Reference 6

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Observation edebc92b-f3fb-42e5-9932-20b458137fe8 · outbound

This paper cites Observational constraints on nonlinear matter extensions of general relativity.

Temperature-redshift relation in energy-momentum-powered gravity models Observational constraints on nonlinear matter extensions of general relativity

Reference 7

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Observation 9dc62f31-ed57-4df6-ac17-ee5fcc0738fb · outbound

This paper cites Observational constraints on nonlinear matter extensions of general relativity: Separable trace power models.

Temperature-redshift relation in energy-momentum-powered gravity models Observational constraints on nonlinear matter extensions of general relativity: Separable trace power models

Reference 8

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Observation 4c447662-effd-4fa9-a367-1514784a7717 · outbound

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Temperature-redshift relation in energy-momentum-powered gravity models Unresolved cited work

Reference 9

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Observation 97bf4f99-d961-4770-8427-6013baccd1ff · outbound

This paper cites Cosmological impact of microwave background temperature measurements.

Temperature-redshift relation in energy-momentum-powered gravity models Cosmological impact of microwave background temperature measurements

Reference 10

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Observation b39d5f90-f8bc-45f3-9128-ce47a420425f · outbound

This paper cites Current and future cosmological impact of microwave background temperature measurements.

Temperature-redshift relation in energy-momentum-powered gravity models Current and future cosmological impact of microwave background temperature measurements

Reference 11

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Observation 78e70260-27e6-4baf-b7b5-04b2206c3c36 · outbound

This paper cites Cardassian Expansion: a Model in which the Universe is Flat, Matter Dominated, and Accelerating.

Temperature-redshift relation in energy-momentum-powered gravity models Cardassian Expansion: a Model in which the Universe is Flat, Matter Dominated, and Accelerating

Reference 12

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Observation 1ef48cb8-fe7e-49da-9751-3be295117e28 · outbound

This paper cites $f(R,{T_{\mu\nu} T^{\mu\nu}})$ gravity and Cardassian-like expansion as one of its consequences.

Temperature-redshift relation in energy-momentum-powered gravity models $f(R,{T_{\mu\nu} T^{\mu\nu}})$ gravity and Cardassian-like expansion as one of its consequences

Reference 13

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Observation b78636c6-6897-4524-b600-42e0145768b2 · outbound

This paper cites Sub-percent constraints on cosmological temperature evolution.

Temperature-redshift relation in energy-momentum-powered gravity models Sub-percent constraints on cosmological temperature evolution

Reference 14

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Observation 4c7a2611-f89f-485d-9f71-ff4323ce572a · outbound

This paper cites Euclid: Forecast constraints on the cosmic distance duality relation with complementary external probes.

Temperature-redshift relation in energy-momentum-powered gravity models Euclid: Forecast constraints on the cosmic distance duality relation with complementary external probes

Reference 15

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Observation 58a4417d-5686-4188-a46a-54888be0e3d4 · outbound

This paper cites Tests of the CMB temperature-redshift relation, CMB spectral distortions and why adiabatic photon production is hard.

Temperature-redshift relation in energy-momentum-powered gravity models Tests of the CMB temperature-redshift relation, CMB spectral distortions and why adiabatic photon production is hard

Reference 16

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Observation 31de5d69-5f7f-4fa0-9604-39d2f840c361 · outbound

This paper cites The Complete Light-curve Sample of Spectroscopically Confirmed Type Ia Supernovae from Pan-STARRS1 and Cosmological Constraints from The Combined Pantheon Sample.

Temperature-redshift relation in energy-momentum-powered gravity models The Complete Light-curve Sample of Spectroscopically Confirmed Type Ia Supernovae from Pan-STARRS1 and Cosmological Constraints from The Combined Pantheon Sample

Reference 17

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Observation 58ebdbbd-2ccb-4f1a-9fb8-a0766b6fe54e · outbound

This paper cites Measurement of the $T_{\rm CMB}$ evolution from the Sunyaev-Zel'dovich effect.

Temperature-redshift relation in energy-momentum-powered gravity models Measurement of the $T_{\rm CMB}$ evolution from the Sunyaev-Zel'dovich effect

Reference 18

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Observation 68fec4fb-67d5-4ee2-aa10-f943262b47dc · outbound

This paper cites Constraints on the CMB Temperature Evolution using Multi-Band Measurements of the Sunyaev Zel'dovich Effect with the South Pole Telescope.

Temperature-redshift relation in energy-momentum-powered gravity models Constraints on the CMB Temperature Evolution using Multi-Band Measurements of the Sunyaev Zel'dovich Effect with the South Pole Telescope

Reference 19

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Observation 3db73edb-8d49-4c5b-b33b-c68f39b55b80 · outbound

This paper cites The microwave background temperature at the redshift of 2.33771.

Temperature-redshift relation in energy-momentum-powered gravity models The microwave background temperature at the redshift of 2.33771

Reference 20

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Observation 65f0b34b-e45c-472b-b000-35ea94db2c18 · outbound

This paper cites Estimation of the CMB temperature from atomic C\,{\sc i} and molecular CO lines in the interstellar medium of early galaxies.

Temperature-redshift relation in energy-momentum-powered gravity models Estimation of the CMB temperature from atomic C\,{\sc i} and molecular CO lines in the interstellar medium of early galaxies

Reference 21

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Observation 799ec5e7-f907-40d4-84c6-14e52f7c3356 · outbound

This paper cites Microwave Background Temperature at a Redshift of 6.34 from H2O Absorption.

Temperature-redshift relation in energy-momentum-powered gravity models Microwave Background Temperature at a Redshift of 6.34 from H2O Absorption

Reference 22

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Observation e9433f10-0b14-4e3a-9c98-b57eab76d033 · outbound

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Temperature-redshift relation in energy-momentum-powered gravity models Statistical methods in cosmology

Reference 23

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Observation 8949ec5f-e0b4-4c26-82d0-a47a8e5548e3 · outbound

This paper cites Constraining the dark energy models with H(z) data: an approach independent of $H_{0}$.

Temperature-redshift relation in energy-momentum-powered gravity models Constraining the dark energy models with H(z) data: an approach independent of $H_{0}$

Reference 24

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Observation 3624c0b0-6571-473b-af01-0bd937492388 · outbound

This paper cites Dark sectors of the Universe: A Euclid survey approach.

Temperature-redshift relation in energy-momentum-powered gravity models Dark sectors of the Universe: A Euclid survey approach

Reference 25

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Observation 7f58b2ac-977b-43c4-827a-c9034ece1ebd · outbound

This paper cites Dark Matter properties through cosmic history.

Temperature-redshift relation in energy-momentum-powered gravity models Dark Matter properties through cosmic history

Reference 26

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Observation 74c0215b-bd1a-4961-b51b-6c6dfc3ec555 · outbound

This paper cites Limits on decaying dark energy density models from the CMB temperature-redshift relation.

Temperature-redshift relation in energy-momentum-powered gravity models Limits on decaying dark energy density models from the CMB temperature-redshift relation

Reference 27

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Observation b27bb778-8d0d-4408-b61a-052c73b2987c · outbound

This paper cites Constraints from the CMB temperature and other common observational data-sets on variable dark energy density models.

Temperature-redshift relation in energy-momentum-powered gravity models Constraints from the CMB temperature and other common observational data-sets on variable dark energy density models

Reference 28

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