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In-in correlators and scattering amplitudes on a causal set (2402.08555v2)

Published 13 Feb 2024 in hep-th, gr-qc, math-ph, and math.MP

Abstract: Causal set theory is an approach to quantum gravity in which spacetime is fundamentally discrete at the Planck scale and takes the form of a Lorentzian lattice, or "causal set", from which continuum spacetime emerges in a large-scale (low-energy) approximation. In this work, we present new developments in the framework of interacting quantum field theory on causal sets. We derive a diagrammatic expansion for in-in correlators in local scalar field theories with finite polynomial interactions. We outline how these same correlators can be computed using the double-path integral which acts as a generating functional for the in-in correlators. We modify the in-in generating functional to obtain a generating functional for in-out correlators. We define a notion of scattering amplitudes on causal sets with non-interacting past and future regions and verify that they are given by S-matrix elements (matrix elements of the time-evolution operator). We describe how these formal developments can be implemented to compute early universe observables under the assumption that spacetime is fundamentally discrete.

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References (62)
  1. Handbook of Quantum Gravity. Springer, 2023.
  2. Steven Carlip. Quantum gravity: A Progress report. Rept. Prog. Phys., 64:885, 2001.
  3. Daniele Oriti. Approaches to quantum gravity: Toward a new understanding of space, time and matter. Cambridge University Press, 3 2009.
  4. Rafael D. Sorkin. Forks in the road, on the way to quantum gravity. Int. J. Theor. Phys., 36:2759–2781, 1997.
  5. Sumati Surya. The causal set approach to quantum gravity. Living Reviews in Relativity, 22:1–75, 2019.
  6. Fay Dowker. Being and Becoming on the Road to Quantum Gravity; or, the Birth of a Baby Is Not a Baby, pages 133–142. 4 2020.
  7. Fay Dowker. Introduction to causal sets and their phenomenology. Gen. Rel. Grav., 45(9):1651–1667, 2013.
  8. Yasaman K. Yazdi. Everything You Always Wanted to Know About How Causal Set Theory Can Help with Open Questions in Cosmology, but Were Afraid to Ask. 11 2023.
  9. Fay Dowker. Spacetime discreteness, Lorentz invariance and locality. J. Phys. Conf. Ser., 306:012016, 2011.
  10. A new topology for curved space–time which incorporates the causal, differential, and conformal structures. Journal of mathematical physics, 17(2):174–181, 1976.
  11. David B Malament. The class of continuous timelike curves determines the topology of spacetime. Journal of mathematical physics, 18(7):1399–1404, 1977.
  12. Space-time as a causal set. Physical review letters, 59(5):521, 1987.
  13. The origin of lorentzian geometry. Physics Letters A, 141(5-6):226–228, 1989.
  14. Rafael D Sorkin. Causal sets: Discrete gravity. In Lectures on quantum gravity, pages 305–327. Springer, 2005.
  15. Luca Bombelli. Statistical Lorentzian geometry and the closeness of Lorentzian manifolds. J. Math. Phys., 41:6944–6958, 2000.
  16. David Alan Meyer. The dimension of causal sets. PhD thesis, Massachusetts Institute of Technology, 1988.
  17. David D Reid. Manifold dimension of a causal set: Tests in conformally flat spacetimes. Physical Review D, 67(2):024034, 2003.
  18. Discrete geometry of a small causal diamond. Physical Review D, 87(4):044046, 2013.
  19. Scalar curvature of a causal set. Physical review letters, 104(18):181301, 2010.
  20. Gravity and matter in causal set theory. Classical and Quantum Gravity, 26(7):075011, 2009.
  21. Induced Spatial Geometry from Causal Structure. Class. Quant. Grav., 36(10):105005, 2019.
  22. Steven Johnston. Particle propagators on discrete spacetime. Class. Quant. Grav., 25:202001, 2008.
  23. Steven Johnston. Feynman Propagator for a Free Scalar Field on a Causal Set. Phys. Rev. Lett., 103:180401, 2009.
  24. Rafael D. Sorkin. From Green Function to Quantum Field. Int. J. Geom. Meth. Mod. Phys., 14(08):1740007, 2017.
  25. Algebraic Classical and Quantum Field Theory on Causal Sets. Phys. Rev. D, 101(6):065013, 2020.
  26. Rafael D. Sorkin. Scalar Field Theory on a Causal Set in Histories Form. J. Phys. Conf. Ser., 306:012017, 2011.
  27. Emma Albertini. ϕ4superscriptitalic-ϕ4\phi^{4}italic_ϕ start_POSTSUPERSCRIPT 4 end_POSTSUPERSCRIPT interaction in causal set theory, 2021.
  28. Ian Jubb. Handbook of Qunatum Gravity, chapter Interacting Scalar Field Theory on a Causal Set. Springer, Singapore, 2024.
  29. Scalar Field Green Functions on Causal Sets. Class. Quant. Grav., 34(12):124002, 2017.
  30. A ground state for the causal diamond in 2 dimensions. Journal of High Energy Physics, 2012(10):1–24, 2012.
  31. A Distinguished Vacuum State for a Quantum Field in a Curved Spacetime: Formalism, Features, and Cosmology. JHEP, 08:137, 2012.
  32. A preferred ground state for the scalar field in de sitter space. Journal of High Energy Physics, 2013(8):1–34, 2013.
  33. Studies on the SJ Vacuum in de Sitter Spacetime. JHEP, 07:009, 2019.
  34. On the (Non)Hadamard property of the SJ state in a D causal diamond. Class. Quant. Grav., 41(4):045007, 2024.
  35. Yasaman K. Yazdi. Handbook of Qunatum Gravity, chapter Entanglement Entropy and Causal Set Theory. Springer, Singapore, 2024.
  36. Towards spacetime entanglement entropy for interacting theories. JHEP, 11:114, 2020.
  37. Insights on entanglement entropy in 1 + 1 dimensional causal sets. Class. Quant. Grav., 39(24):245004, 2022.
  38. Manifest causality in quantum field theory with sources and detectors. JHEP, 06:049, 2014.
  39. Marcello Musso. A new diagrammatic representation for correlation functions in the in-in formalism. JHEP, 11:184, 2013.
  40. Steven Weinberg. Quantum contributions to cosmological correlations. Phys. Rev. D, 72:043514, 2005.
  41. On extending the quantum measure. Journal of Physics A: Mathematical and Theoretical, 43(50):505305, 2010.
  42. A Criterion for Covariance in Complex Sequential Growth Models. Class. Quant. Grav., 37(19):195030, 2020.
  43. Planck 2018 results-x. constraints on inflation. Astronomy & Astrophysics, 641:A10, 2020.
  44. Probing primordial features with future galaxy surveys. Journal of Cosmology and Astroparticle Physics, 2016(10):041, 2016.
  45. Xingang Chen et al. Primordial non-gaussianities from inflation models. Advances in Astronomy, 2010, 2010.
  46. Yi Wang. Inflation, cosmic perturbations and non-gaussianities. Communications in Theoretical Physics, 62(1):109, 2014.
  47. On the Causal Set-Continuum Correspondence. Class. Quant. Grav., 31(20):205013, 2014.
  48. Steven Johnston. Embedding causal sets into Minkowski spacetime. Class. Quant. Grav., 39(9):095006, 2022.
  49. Discreteness without symmetry breaking: a theorem. Modern Physics Letters A, 24(32):2579–2587, 2009.
  50. Symmetry-breaking and zero-one laws. Class. Quant. Grav., 37(15):155007, 2020.
  51. Local Structure of Sprinkled Causal Sets. Phys. Rev. D, 103(8):086020, 2021.
  52. The continuum limit of a 4-dimensional causal set scalar d’alembertian. Classical and Quantum Gravity, 33(24):245018, 2016.
  53. The analytic S-matrix. Cambridge Univ. Press, Cambridge, 1966.
  54. A de Sitter S𝑆Sitalic_S-matrix for the masses. 9 2023.
  55. Raphael Bousso. Cosmology and the S-matrix. Phys. Rev. D, 71:064024, 2005.
  56. Perturbative S-matrix for massive scalar fields in global de Sitter space. Class. Quant. Grav., 30:155023, 2013.
  57. Paolo Benincasa. Amplitudes meet Cosmology: A (Scalar) Primer. 3 2022.
  58. Generalized causal set d‘Alembertians. JHEP, 06:024, 2014.
  59. R. Hagedorn. Introduction to field theory and dispersion relations. Fortschr. Phys., 5 suppl.:1–127, 1963.
  60. M. K. Transtrum and Van Huele J.-F. S. Commutation relations for functions of operators. Journal of Mathematical Physics, 46:063510., 2005.
  61. Rafael D. Sorkin. Quantum mechanics as quantum measure theory. Mod. Phys. Lett., A9:3119–3128, 1994.
  62. The star product in interacting quantum field theory. Lett. Math. Phys., 110(6):1257–1313, 2020.
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