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The Simons Observatory: science goals and forecasts

Journal of Cosmology and Astroparticle Physics · 2019 · Vol. 2019(02) · pp. 056–056
P. A. R. AdeJames AguirreZeeshan AhmedSimone AiolaAamir AliDavid AlonsoMarcelo A. AlvarezKam ArnoldPeter AshtonJason E. AustermannHumna AwanC. BaccigalupiTaylor BaildonDarcy BarronNicholas BattagliaRichard A. BattyeEric J. BaxterA. O. BazarkoJames A. BeallRachel BeanD. BeckShawn BeckmanBenjamin BeringueF. BianchiniSteven BoadaD. BoettgerJ. Richard BondJulian BorrillMichael D. BrownSarah Marie BrunoSean BryanErminia CalabreseVictoria CalafutP. CalisseJulien CarronA. ChallinorGrace E. ChesmoreY. ChinoneJens ChlubaHsiao-Mei Sherry ChoSteve K. ChoiGabriele CoppiNicholas F. CothardKevin CoughlinDevin CrichtonKevin D. CrowleyKevin T. CrowleyA. CukiermanKevin T. CrowleyRolando DünnerT. de HaanMark J. DevlinSimon DickerJoy DidierM. DobbsBradley DoberCody J. DuellShannon M. DuffAdriaan J. DuivenvoordenJo DunkleyJohn DusatkoJosquin ErrardGiulio FabbianStephen M. FeeneySimone FerraroPedro FluxáKatherine FreeseJ. FrischAndrei V. FrolovGeorge M. FullerBrittany FuziaNicholas GalitzkiPatricio A. GallardoJosé T. Gálvez GhersiJiansong GaoEric GawiserM. GerbinoVera GluscevicN. Goeckner-WaldJoseph E. GolecSam GordonMegan GrallaDaniel GreenArpi GrigorianJ. C. GrohChris GroppiYilun GuanJon E. GudmundssonDongwon HanPeter HargraveM. HasegawaMatthew HasselfieldM. HattoriVictor HaynesM. HazumiYizhou HeErin HealyShawn HendersonCarlos Hervías-CaimapoCharles A. HillJ. Colin HillG. C. HiltonMatt HiltonAdam D. HincksG. HinshawRenée HložekShirley HoShuay-Pwu Patty HoL. HoweZhiqi HuangJohannes HubmayrK. M. HuffenbergerJohn P. HughesAnna IjjasMargaret IkapeK. D. IrwinAndrew H. JaffeBhuvnesh JainO. JeongDaisuke KanekoE. KarpelN. KatayamaBrian KeatingSarah S. KernasovskiyReijo KeskitaloTheodore KisnerKenta KiuchiJeff KleinKenda KnowlesBrian J. KoopmanArthur KosowskyN. KrachmalnicoffStephen E. KuenstnerChao‐Lin KuoA. KusakaJacob LashnerAdrian V. LeeEunseong LeeD. LeonJason S.-Y. LeungAntony LewisYaqiong LiZack LiM. LimonEric V. LinderC. H. López-CaraballoThibaut LouisLindsay LowryMarius LunguMathew S. MadhavacherilD. S. Y. MakFelipe MaldonadoHamdi ManiBen MatesFrederick MatsudaL. MaurinP. MauskopfAndrew MayNialh McCallumChris McKenneyJ. J. McMahonP. Daniel MeerburgJoel MeyersAmber MillerMark MirmelsteinKavilan MoodleyMoritz MünchmeyerCharles MunsonSigurd NæssF. NatiM. NavaroliLaura NewburghHồ Nam NguyễnMichael D. NiemackH. NishinoJohn Orlowski-SchererLyman A. PageBruce PartridgeJ. PelotonF. PerrottaLucio PiccirilloG. PisanoD. PolettiRoberto PudduGiuseppe PuglisiChris RaumC. L. ReichardtM. RemazeillesYoel RephaeliDominik A. RiechersFelipe RojasAnirban RoySharon SadehY. SakuraiMaria SalatinoMayuri Sathyanarayana RaoEmmanuel SchaanMarcel SchmittfullNeelima SehgalJoseph SeibertUroš SeljakBlake D. SherwinMeir ShimonCarlos SierraJonathan SieversS. P. SikhosanaMaximiliano Silva-FeaverSara M. SimonAdrian K. SinclairP. SiritanasakKendrick M. SmithStephen R. SmithDavid N. SpergelSuzanne T. StaggsGeorge SteinJason StevensR. StomporAritoki SuzukiO. TajimaS. TakakuraGrant TeplyDaniel B. ThomasB. ThorneRobert ThorntonHy TracCalvin TsaiC. TuckerJoel N. UllomSunny VagnozziAlexander van EngelenJeff Van LanenDaniel D. Van WinkleEve M. VavagiakisC. VergèsMichael VissersKasey WagonerSamantha WalkerJon WardB. WestbrookN. WhitehornJason A. WilliamsJoel WilliamsEdward J. WollackZhilei XuByeonghee YuCyndia YuFernando ZagoHezi ZhangNingfeng Zhu

Abstract

The Simons Observatory (SO) is a new cosmic microwave background experiment being built on Cerro Toco in Chile, due to begin observations in the early 2020s. We describe the scientific goals of the experiment, motivate the design, and forecast its performance. SO will measure the temperature and polarization anisotropy of the cosmic microwave background in six frequency bands centered at: 27, 39, 93, 145, 225 and 280 GHz. The initial configuration of SO will have three small-aperture 0.5-m telescopes and one large-aperture 6-m telescope, with a total of 60,000 cryogenic bolometers. Our key science goals are to characterize the primordial perturbations, measure the number of relativistic species and the mass of neutrinos, test for deviations from a cosmological constant, improve our understanding of galaxy evolution, and constrain the duration of reionization. The small aperture telescopes will target the largest angular scales observable from Chile, mapping ≈ 10% of the sky to a white noise level of 2 μK-arcmin in combined 93 and 145 GHz bands, to measure the primordial tensor-to-scalar ratio, r , at a target level of σ( r )=0.003. The large aperture telescope will map ≈ 40% of the sky at arcminute angular resolution to an expected white noise level of 6 μK-arcmin in combined 93 and 145 GHz bands, overlapping with the majority of the Large Synoptic Survey Telescope sky region and partially with the Dark Energy Spectroscopic Instrument. With up to an order of magnitude lower polarization noise than maps from the Planck satellite, the high-resolution sky maps will constrain cosmological parameters derived from the damping tail, gravitational lensing of the microwave background, the primordial bispectrum, and the thermal and kinematic Sunyaev-Zel'dovich effects, and will aid in delensing the large-angle polarization signal to measure the tensor-to-scalar ratio. The survey will also provide a legacy catalog of 16,000 galaxy clusters and more than 20,000 extragalactic sources.

Astrophysics and Cosmic PhenomenaDark Matter and Cosmic PhenomenaRadio Astronomy Observations and TechnologyPhysicsCosmic microwave backgroundPlanckAstrophysicsObservatorySkyCosmologyReionizationSouth Pole TelescopeTelescope

Funding

  • National Science Foundation
  • National Aeronautics and Space Administration
  • University of Michigan
  • University of Cambridge
  • European Commission
  • Agence Nationale de la Recherche
  • Ministry of Education, Culture, Sports, Science and Technology
  • Centre National d’Etudes Spatiales
  • Nederlandse Organisatie voor Wetenschappelijk Onderzoek
  • University of Toronto
  • Vetenskapsrådet
  • Isaac Newton Trust
  • Stockholms Universitet
  • Horizon 2020 Framework Programme
  • Natural Sciences and Engineering Research Council of Canada
  • Economic and Social Research Council
  • Science and Technology Facilities Council
  • Japan Society for the Promotion of Science
  • Comisión Nacional de Investigación Científica y Tecnológica
  • Nuclear Physics
  • H2020 Research Infrastructures
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The Simons Observatory: science goals and forecasts · Scinovex