Planck and BICEP/Keck Array 2018 constraints on primordial gravitational waves and perspectives for future B-mode polarization measurements

被引:26
|
作者
Paoletti, Daniela [1 ,2 ]
Finelli, Fabio [1 ,2 ]
Valiviita, Jussi [3 ]
Hazumi, Masashi [4 ,5 ,6 ,7 ]
机构
[1] INAF OAS Bologna, Osservatorio Astrofis & Sci Spazio, Area Ric CNR INAF, via Gobetti 101, I-40129 Bologna, Italy
[2] Ist Nazl Fis Nucl, Sez Bologna, Via Irnerio 46, I-40126 Bologna, Italy
[3] Univ Helsinki, Helsinki Inst Phys, Gustaf Hallstromin Katu 2, Helsinki, Finland
[4] High Energy Accelerator Res Org KEK, Inst Particle & Nucl Studies IPNS, Tsukuba, Ibaraki 3050801, Japan
[5] Japan Aerosp Explorat Agcy JAXA, Inst Space & Astronaut Sci ISAS, Sagamihara, Kanagawa 2525210, Japan
[6] Univ Tokyo, Kavli Inst Phys & Math Universe Kavli IPMU, WPI, UTIAS, Kashiwa, Chiba 2778583, Japan
[7] Grad Univ Adv Studies SOKENDAI, Hayama, Kanagawa 2400115, Japan
关键词
GRAVITY-WAVES;
D O I
10.1103/PhysRevD.106.083528
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Current and future B-mode polarization data are the most powerful observables to constrain gravitational waves from the early Universe. We set conservative constraints on tensor modes when relaxing the inflationary consistency condition nt = -r/8 between the tensor tilt nt and the tensor-to-scalar ratio r. By adding a power-law spectrum of tensor perturbations to ?CDM and parametrizing this tensor contribution by two independent primordial tensor-to-scalar ratios (r1, r2) at k1 = 0.005 Mpc-1 and k2 = 0.02 Mpc-1, Planck and BICEP/Keck Array 2018 data (BK18) lead to constraints r0.005 < 0.030 and r0.02 < 0.098 at 95% confidence level. The corresponding upper bound r0.01 < 0.039 is by a factor of 2 tighter than the one obtained with Planck 2018 and the older BK15 data. We then study the perspectives for future cosmic microwave background experiments that will measure both the reionization bump and recombination peak of the B-mode polarization angular power spectrum, such as LiteBIRD. We test the robustness of the results to the choice of the scales for (r1, r2) in these future perspectives. Whereas distinguishing nt = -r/8 from exact scale invariance is impossible as expected, we show how radical, theoretically motivated departures from nt = -r/8, which are consistent with the current data, could be distinguished with LiteBIRD. Moreover, LiteBIRD will be able to shrink the allowed parameter space area in the (r0.005, r0.02) plane to less than one hundredth of the currently allowed area by Planck 2018 and BK18.
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页数:13
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