It is now established that, contrary to common belief, (electro-)vacuum Brans–Dicke gravity does not reduce to general relativity (GR) for large values of the Brans–Dicke coupling ω. Since the essence of experimental tests of scalar–tensor gravity consists of providing lower bounds on ω, in light of the misguided assumption of the equivalence between the limit ω→ ∞ and the GR limit of Brans–Dicke gravity, the parametrized post-Newtonian (PPN) formalism on which these tests are based could be in jeopardy. We show that, in the linearized approximation used by the PPN formalism, the anomaly in the limit to general relativity disappears. However, it survives to second (and higher) order and in strong gravity. In other words, while the weak gravity regime cannot tell apart GR and ω→ ∞ Brans–Dicke gravity, when higher order terms in the PPN analysis of Brans–Dicke gravity are included, the latter never reduces to the one of GR in this limit. This fact is relevant for experiments aiming to test second order light deflection and Shapiro time delay.

Faraoni, V., Cote, J., Giusti, A. (2020). Do solar system experiments constrain scalar–tensor gravity?. THE EUROPEAN PHYSICAL JOURNAL. C, PARTICLES AND FIELDS, 80(2), 1-6 [10.1140/epjc/s10052-020-7721-4].

Do solar system experiments constrain scalar–tensor gravity?

Giusti A.
2020

Abstract

It is now established that, contrary to common belief, (electro-)vacuum Brans–Dicke gravity does not reduce to general relativity (GR) for large values of the Brans–Dicke coupling ω. Since the essence of experimental tests of scalar–tensor gravity consists of providing lower bounds on ω, in light of the misguided assumption of the equivalence between the limit ω→ ∞ and the GR limit of Brans–Dicke gravity, the parametrized post-Newtonian (PPN) formalism on which these tests are based could be in jeopardy. We show that, in the linearized approximation used by the PPN formalism, the anomaly in the limit to general relativity disappears. However, it survives to second (and higher) order and in strong gravity. In other words, while the weak gravity regime cannot tell apart GR and ω→ ∞ Brans–Dicke gravity, when higher order terms in the PPN analysis of Brans–Dicke gravity are included, the latter never reduces to the one of GR in this limit. This fact is relevant for experiments aiming to test second order light deflection and Shapiro time delay.
2020
Faraoni, V., Cote, J., Giusti, A. (2020). Do solar system experiments constrain scalar–tensor gravity?. THE EUROPEAN PHYSICAL JOURNAL. C, PARTICLES AND FIELDS, 80(2), 1-6 [10.1140/epjc/s10052-020-7721-4].
Faraoni, V.; Cote, J.; Giusti, A.
File in questo prodotto:
Eventuali allegati, non sono esposti

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1029786
 Attenzione

Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo

Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 11
  • ???jsp.display-item.citation.isi??? 11
social impact