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Correlation between opposite-helicity gravitons: Imprints on gravity-wave and microwave backgrounds

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arxiv 1610.05702 v2 pith:HAQV3NKT submitted 2016-10-18 gr-qc astro-ph.CO

Correlation between opposite-helicity gravitons: Imprints on gravity-wave and microwave backgrounds

classification gr-qc astro-ph.CO
keywords gravitonspolarizationcorrelationseffectgravityspinzerocorrelators
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We examine some of the roots of parity violation for gravitons and uncover a closely related new effect: correlations between right and left handed gravitons. Such correlators have spin 4 if they involve gravitons moving along the same direction, and spin zero for gravitons moving with opposite directions. In the first case, the most immediate implication would be a degree of linear polarization for the tensor vacuum fluctuations, which could be seen by gravity wave detectors sensitive enough to probe the primordial background, its degree of polarization and anisotropies. Looking at the anisotropy of the gravity waves linear polarization we identify the parity respecting and violating components of the effect. The imprint on the CMB temperature and polarization would be more elusive, since it averages to zero in the two-point functions, appearing only in their cosmic variance or in fourth order correlators. In contrast, spin zero correlations would have an effect on the two point function of the CMB temperature and polarization, enhancing the $BB$ component if they were anti-correlations. Such correlations represent an amplitude for the production of standing waves, as first envisaged by Grishchuk, and could also leave an interesting signature for gravity wave detectors.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Linearly Polarized Gravitational Waves from Bubble Collisions

    hep-ph 2025-12 reject novelty 5.0

    A two-bubble-completed phase transition would emit linearly polarized gravitational waves, but the paper's per-Hubble-volume counting makes the detectable stochastic background unpolarized.