The large scale polarization explorer (LSPE) for CMB measurements: performance forecast

Journal of Cosmology and Astroparticle Physics IOP Publishing 2021:08 (2021) 008

Authors:

G Addamo, Par Ade, C Baccigalupi, Am Baldini, Pm Battaglia, Es Battistelli, A Ba霉, P de Bernardis, M Bersanelli, M Biasotti, A Boscaleri, B Caccianiga, S Caprioli, F Cavaliere, F Cei, Ka Cleary, F Columbro, G Coppi, A Coppolecchia, F Cuttaia, G D'Alessandro, G De Gasperis, M De Petris, V Fafone, F Farsian, L Ferrari Barusso, F Fontanelli, C Franceschet, Tc Gaier, L Galli, F Gatti, R Genova-Santos, M Gerbino, M Gervasi, Tommaso Ghigna, D Grosso, A Gruppuso, R Gualtieri, F Incardona, Me Jones, P Kangaslahti, N Krachmalnicoff, L Lamagna, M Lattanzi, Ch L贸pez-Caraballo, M Lumia, R Mainini, D Maino, S Mandelli

Abstract:

The measurement of the polarization of the Cosmic Microwave Background (CMB) radiation is one of the current frontiers in cosmology. In particular, the detection of the primordial divergence-free component of the polarization field, the B-mode, could reveal the presence of gravitational waves in the early Universe. The detection of such a component is at the moment the most promising technique to probe the inflationary theory describing the very early evolution of the Universe. We present the updated performance forecast of the Large Scale Polarization Explorer (LSPE), a program dedicated to the measurement of the CMB polarization. LSPE is composed of two instruments: LSPE-Strip, a radiometer-based telescope on the ground in Tenerife-Teide observatory, and LSPE-SWIPE (Short-Wavelength Instrument for the Polarization Explorer) a bolometer-based instrument designed to fly on a winter arctic stratospheric long-duration balloon. The program is among the few dedicated to observation of the Northern Hemisphere, while most of the international effort is focused into ground-based observation in the Southern Hemisphere. Measurements are currently scheduled in Winter 2022/23 for LSPE-SWIPE, with a flight duration up to 15 days, and in Summer 2022 with two years observations for LSPE-Strip. We describe the main features of the two instruments, identifying the most critical aspects of the design, in terms of impact on the performance forecast. We estimate the expected sensitivity of each instrument and propagate their combined observing power to the sensitivity to cosmological parameters, including the effect of scanning strategy, component separation, residual foregrounds and partial sky coverage. We also set requirements on the control of the most critical systematic effects and describe techniques to mitigate their impact. LSPE will reach a sensitivity in tensor-to-scalar ratio of 蟽 r < 0.01, set an upper limit r < 0.015 at 95% confidence level, and improve constraints on other cosmological parameters.

The LSPE-Strip feed horn array

ArXiv 2107.13775 (2021)

Authors:

C Franceschet, F Del Torto, F Villa, S Realini, R Bongiolatti, OA Peverini, F Pezzotta, DM Vigan贸, G Addamo, M Bersanelli, F Cavaliere, F Cuttaia, M Gervasi, A Mennella, G Morgante, AC Taylor, G Virone, M Zannoni

MIGHTEE-HI: discovery of an H鈥塈-rich galaxy group at z = 0.044 with MeerKAT

Monthly Notices of the Royal Astronomical Society Oxford University Press 506:2 (2021) 2753-2765

Authors:

Shilpa Ranchod, Roger P Deane, Anastasia Ponomareva, Tariq Blecher, Bradley S Frank, Matthew Jarvis, Natasha Maddox, Wanga Mulaudzi, Marcin Glowacki, Kelley M Hess, Madalina Tudorache, Nathan J Adams, Rebecca Bowler, Jordan D Collier, Russ Taylor, Lourdes Verdes-Montenegro

Abstract:

We present the serendipitous discovery of a galaxy group in the XMM-LSS field with MIGHTEE Early Science observations. 20 galaxies are detected in H鈥塈 in this z 鈭 0.044 group, with a 3蟽 column density sensitivity of NHI=1.6脳1020cm鈭2鈦. This group has not been previously identified, despite residing in a well-studied extragalactic legacy field. We present spatially resolved H鈥塈 total intensity and velocity maps for each of the objects which reveal environmental influence through disturbed morphologies. The group has a dynamical mass of log10(Mdyn/M鈯)=12.32鈦, and is unusually gas-rich, with an H鈥塈-to-stellar mass ratio of log10(f鈭桯I)=鈭0.2鈦, which is 0.7 dex greater than expected. The group鈥檚 high H鈥塈 content, spatial, velocity, and identified galaxy type distributions strongly suggest that it is in the early stages of its assembly. The discovery of this galaxy group is an example of the importance of mapping spatially resolved H鈥塈 in a wide range of environments, including galaxy groups. This scientific goal has been dramatically enhanced by the high sensitivity, large field-of-view, and wide instantaneous bandwidth of the MeerKAT telescope.

Evolution of the galaxy stellar mass function: evidence for an increasing M* from z = 2 to the present day

Monthly Notices of the Royal Astronomical Society Oxford University Press 506:4 (2021) 4933-4951

Authors:

Nj Adams, Raa Bowler, Mj Jarvis, B H盲u脽ler, Cdp Lagos

Abstract:

Utilizing optical and near-infrared broad-band photometry covering >5鈥塪eg2 in two of the most well-studied extragalactic legacy fields (COSMOS and XMM-LSS), we measure the galaxy stellar mass function (GSMF) between 0.1 < z < 2.0. We explore in detail the effect of two source extraction methods (SExtractor and ProFound) in addition to the inclusion/exclusion of Spitzer IRAC 3.6 and 4.5鈥壩糾 photometry when measuring the GSMF. We find that including IRAC data reduces the number of massive (log10(M/M鈯) > 11.25) galaxies found due to improved photometric redshift accuracy, but has little effect on the more numerous lower-mass galaxies. We fit the resultant GSMFs with double Schechter functions down to log10(M/M鈯) = 7.75 (9.75) at z = 0.1 (2.0) and find that the choice of source extraction software has no significant effect on the derived best-fitting parameters. However, the choice of methodology used to correct for the Eddington bias has a larger impact on the high-mass end of the GSMF, which can partly explain the spread in derived M* values from previous studies. Using an empirical correction to model the intrinsic GSMF, we find evidence for an evolving characteristic stellar mass with 未log10(M*/M鈯)/未z = 鈭0.16卤0.05(鈭0.11卤0.05)鈦, when using SExtractor (ProFound). We argue that with widely quenched star formation rates in massive galaxies at low redshift (z < 0.5), additional growth via mergers is required in order to sustain such an evolution to a higher characteristic mass.

The radio loudness of SDSS quasars from the LOFAR Two-metre Sky Survey: ubiquitous jet activity and constraints on star formation

Monthly Notices of the Royal Astronomical Society Royal Astronomical Society 506:4 (2021) 5888-5907

Authors:

C Macfarlane, Pn Best, J Sabater, G G眉rkan, Matt Jarvis, Hja R枚ttgering, Rd Baldi, G Calistro聽Rivera, Kj Duncan, Lk Morabito, I Prandoni, E Retana-Montenegro

Abstract:

We examine the distribution of radio emission from 鈭42鈥000 quasars from the Sloan Digital Sky Survey, as measured in the LOFAR Two-metre Sky Survey (LoTSS). We present a model of the radio luminosity distribution of the quasars that assumes that every quasar displays a superposition of two sources of radio emission: active galactic nuclei (jets) and star formation. Our two-component model provides an excellent match to the observed radio flux density distributions across a wide range of redshifts and quasar optical luminosities; this suggests that the jet-launching mechanism operates in all quasars but with different powering efficiency. The wide distribution of jet powers allows for a smooth transition between the 鈥榬adio-quiet鈥 and 鈥榬adio-loud鈥 quasar regimes, without need for any explicit bimodality. The best-fitting model parameters indicate that the star formation rate of quasar host galaxies correlates strongly with quasar luminosity and also increases with redshift at least out to z 鈭 2. For a model where star formation rate scales as L伪bol(1+z)尾鈦, we find 伪 = 0.47 卤 0.01 and 尾 = 1.61 卤 0.05, in agreement with far-infrared studies. Quasars contribute 鈮0.15 per鈥塩ent of the cosmic star formation rate density at z = 0.5, rising to 0.4 per鈥塩ent by z 鈭 2. The typical radio jet power is seen to increase with both increasing optical luminosity and black hole mass independently, but does not vary with redshift, suggesting intrinsic properties govern the production of the radio jets. We discuss the implications of these results for the triggering of quasar activity and the launching of jets.