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The Probe of Inflation and Cosmic Origins (PICO) is a proposed probe-scale space mission consisting of an imaging polarimeter operating in frequency bands between 20 and 800 GHz.
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T. R. Slatyer, N. Padmanabhan, and D. P. Finkbeiner, “CMB constraints on WIMP annihilation: Energy absorption during the recombination epoch,” Physical Review D (Particles, Fields, Gravitation, and Cosmology) , vol. 80, no. 4, p. 043526, 2009. http://link.aps.org/abstract/PRD/v80/e043526
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S. Galli, F. Iocco, G. Bertone, and A. Melchiorri, “CMB constraints on dark matter models with large annihilation cross section,” Phys. Rev. D. , vol. 80, no. 2, pp. 023 505–+, Jul. 2009. http://adsabs.harvard.edu/abs/2009PhRvD..80b3505G
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G. Hütsi, A. Hektor, and M. Raidal, “Constraints on leptonically annihilating dark matter from reionization and extragalactic gamma background,” Astron. Astrophys. , vol. 505, pp. 999–1005, Oct. 2009. http://adsabs.harvard.edu/abs/2009A%26A...505..999H
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B. T. Draine and A. A. Fraisse, “Polarized Far-Infrared and Submillimeter Emission from Interstellar Dust,” Ap. J. , vol. 696, pp. 1–11, May 2009. http://adsabs.harvard.edu/abs/2009ApJ...696....1D
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2009
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V. Gluscevic and M. Kamionkowski, “Testing parity-violating mechanisms with cosmic microwave background experiments,” Phys. Rev. D. , vol. 81, no. 12, p. 123529, Jun. 2010. http://adsabs.harvard.edu/abs/2010PhRvD..81l3529G
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J. A. Tauber, N. Mandolesi, J. L. Puget et al. , “Planck pre-launch status: The Planck mission,” Astron. Astrophys. , vol. 520, p. A1, Sep. 2010. https://ui.adsabs.harvard.edu/#abs/2010A&A...520A...1T
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G. Hütsi, J. Chluba, A. Hektor, and M. Raidal, “WMAP7 and future CMB constraints on annihilating dark matter: implications for GeV-scale WIMPs,” Astron. Astrophys. , vol. 535, p. A26, Nov. 2011. http://adsabs.harvard.edu/abs/2011A%26A...535A..26H
2011
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L. M. Widrow, D. Ryu, D. R. G. Schleicher, K. Subramanian, C. G. Tsagas, and R. A. Treumann, “The First Magnetic Fields,” Space Science Reviews , vol. 166, pp. 37–70, May 2012. http://adsabs.harvard.edu/abs/2012SSRv..166...37W
2012
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N. Barnaby, R. Namba, and M. Peloso, “Observable non-Gaussianity from gauge field production in slow roll inflation, and a challenging connection with magnetogenesis,” Phys. Rev. D. , vol. 85, no. 12, p. 123523, Jun. 2012. http://adsabs.harvard.edu/abs/2012PhRvD..85l3523B
2012
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P. J. Shirron, M. O. Kimball, D. J. Fixsen, A. J. Kogut, X. Li, and M. J. DiPirro, “Design of the PIXIE adiabatic demagnetization refrigerators,” Cryogenics , vol. 52, pp. 140–144, Apr. 2012. https://ui.adsabs.harvard.edu/#abs/2012Cryo...52..140S
2012
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R. Durrer and A. Neronov, “Cosmological magnetic fields: their generation, evolution and observation,” Astronomy and Astrophysics Review , vol. 21, p. 62, Jun. 2013. http://adsabs.harvard.edu/abs/2013A%26ARv..21...62D
2013
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B. T. Draine and B. Hensley, “Magnetic Nanoparticles in the Interstellar Medium: Emission Spectrum and Polarization,” Ap. J. , vol. 765, p. 159, Mar. 2013. http://adsabs.harvard.edu/abs/2013ApJ...765..159D
2013
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V. Guillet, L. Fanciullo, L. Verstraete et al. , “Dust models compatible with Planck intensity and polarization data in translucent lines of sight,” Astron. Astrophys. , vol. 610, p. A16, Feb. 2018. http://adsabs.harvard.edu/abs/2018A%26A...610A..16G
2018
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B. S. Hensley and P. Bull, “Mitigating Complex Dust Foregrounds in Future Cosmic Microwave Background Polarization Experiments,” Ap. J. , vol. 853, p. 127, Feb. 2018
2018
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H. Hui, P. A. R. Ade, Z. Ahmed et al. , “BICEP Array: a multi-frequency degree-scale CMB polarimeter,” in Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series , vol. 10708, Jul. 2018, p. 1070807. https://ui.adsabs.harvard.edu/#abs/2018SPIE10708E..07H
2018
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S. Hanany, M. Alvarez, E. Artis et al. , “PICO: Probe of Inflation and Cosmic Origins,” arXiv e-prints , Feb. 2019. https://ui.adsabs.harvard.edu/abs/2019arXiv190210541H
2019
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S. Shandera, P. Adshead, M. Amin et al. , “Probing the origin of our Universe through cosmic microwave background constraints on gravitational waves,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
2019
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D. Green, M. A. Amin, J. Meyers et al. , “Messengers from the Early Universe: Cosmic Neutrinos and Other Light Relics,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
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C. Dvorkin, M. Gerbino, D. Alonso et al. , “Neutrino Mass from Cosmology: Probing Physics Beyond the Standard Model,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
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V. Gluscevic, Y. Ali-Haimoud, K. Bechtol et al. , “Cosmological Probes of Dark Matter Interactions: The Next Decade,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
2019
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L. Pogosian, M. Shimon, M. Mewes, and B. Keating, “Future CMB constraints on cosmic birefringence and implications for fundamental physics,” arXiv e-prints , Apr. 2019. https://ui.adsabs.harvard.edu/abs/2019arXiv190407855P
2019
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M. Alvarez, C. Dvorkin, J. Aguirre et al. , “Unique Probes of Reionization with the CMB: From the First Stars to Fundamental Physics,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
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B. Hensley, P. Ashton, F. Boulanger et al. , “Determining the Composition of Interstellar Dust with Far-Infrared Polarimetry,” in Bulletin of the American Astronomical Society , ser. Bull. Am. Astron. Soc
2019
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2020
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