N. N. Gandilo
University of Toronto
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Featured researches published by N. N. Gandilo.
Proceedings of SPIE | 2010
J. P. Filippini; Peter A. R. Ade; M. Amiri; S. J. Benton; R. Bihary; J. J. Bock; J. R. Bond; J. A. Bonetti; Sean Bryan; B. Burger; H. C. Chiang; Carlo R. Contaldi; Brendan Crill; Olivier Doré; M. Farhang; L. M. Fissel; N. N. Gandilo; S. R. Golwala; J. E. Gudmundsson; M. Halpern; Matthew Hasselfield; G. C. Hilton; Warren Holmes; Viktor V. Hristov; K. D. Irwin; W. C. Jones; C. L. Kuo; C. J. MacTavish; P. Mason; T. E. Montroy
We describe SPIDER, a balloon-borne instrument to map the polarization of the millimeter-wave sky with degree angular resolution. Spider consists of six monochromatic refracting telescopes, each illuminating a focal plane of large-format antenna-coupled bolometer arrays. A total of 2,624 superconducting transition-edge sensors are distributed among three observing bands centered at 90, 150, and 280 GHz. A cold half-wave plate at the aperture of each telescope modulates the polarization of incoming light to control systematics. SPIDERs first flight will be a 20-30-day Antarctic balloon campaign in December 2011. This flight will map ~8% of the sky to achieve unprecedented sensitivity to the polarization signature of the gravitational wave background predicted by inflationary cosmology. The SPIDER mission will also serve as a proving ground for these detector technologies in preparation for a future satellite mission.
The Astrophysical Journal | 2014
Tristan G. Matthews; Peter A. R. Ade; Francesco E. Angilè; Steven J. Benton; Edward L. Chapin; Nicholas L. Chapman; Mark J. Devlin; L. M. Fissel; Yasuo Fukui; N. N. Gandilo; Joshua O. Gundersen; Peter Charles Hargrave; J. Klein; Andrei Korotkov; Lorenzo Moncelsi; Tony Mroczkowski; C. B. Netterfield; Giles Novak; D. Nutter; L. Olmi; Enzo Pascale; Frédérick Poidevin; G. Savini; Douglas Scott; J. A. Shariff; J. D. Soler; Kengo Tachihara; Nicholas Thomas; Matthew D. P. Truch; Carole Tucker
The Balloon-borne Large Aperture Submillimeter Telescope for Polarimetry (BLASTPol) was created by adding polarimetric capability to the BLAST experiment that was flown in 2003, 2005, and 2006. BLASTPol inherited BLASTs 1.8 m primary and its Herschel/SPIRE heritage focal plane that allows simultaneous observation at 250, 350, and 500 μm. We flew BLASTPol in 2010 and again in 2012. Both were long duration Antarctic flights. Here we present polarimetry of the nearby filamentary dark cloud Lupus I obtained during the 2010 flight. Despite limitations imposed by the effects of a damaged optical component, we were able to clearly detect submillimeter polarization on degree scales. We compare the resulting BLASTPol magnetic field map with a similar map made via optical polarimetry. (The optical data were published in 1998 by J. Rizzo and collaborators.) The two maps partially overlap and are reasonably consistent with one another. We compare these magnetic field maps to the orientations of filaments in Lupus I, and we find that the dominant filament in the cloud is approximately perpendicular to the large-scale field, while secondary filaments appear to run parallel to the magnetic fields in their vicinities. This is similar to what is observed in Serpens South via near-IR polarimetry, and consistent with what is seen in MHD simulations by F. Nakamura and Z. Li.
The Astrophysical Journal | 2016
L. M. Fissel; Peter A. R. Ade; Francesco E. Angilè; Peter Ashton; Steven J. Benton; Mark J. Devlin; B. Dober; Yasuo Fukui; Nicholas Galitzki; N. N. Gandilo; J. Klein; Andrei Korotkov; Zhi-Yun Li; Peter G. Martin; Tristan G. Matthews; Lorenzo Moncelsi; Fumitaka Nakamura; C. B. Netterfield; Giles Novak; Enzo Pascale; Frédérick Poidevin; Fabio P. Santos; G. Savini; Douglas Scott; J. A. Shariff; J. D. Soler; Nicholas Thomas; Carole Tucker; Gregory S. Tucker; Derek Ward-Thompson
We present results for Vela C obtained during the 2012 flight of the Balloon-borne Large Aperture Submillimeter Telescope for Polarimetry. We mapped polarized intensity across almost the entire extent of this giant molecular cloud, in bands centered at 250, 350, and 500 μm. In this initial paper, we show our 500 μmdata smoothed to a resolution of 2 5 (approximately 0.5 pc). We show that the mean level of the fractional polarization pand most of its spatial variations can be accounted for using an empirical three-parameter power-law fit, p μ N-0.45 S-0.60, where Nis the hydrogen column density and Sis the polarization-angle dispersion on 0.5 pc scales. The decrease of pwith increasing Sis expected because changes in the magnetic field direction within the cloud volume sampled by each measurement will lead to cancellation of polarization signals. The decrease of pwith increasing Nmight be caused by the same effect, if magnetic field disorder increases for high column density sightlines. Alternatively, the intrinsic polarization efficiency of the dust grain population might be lower for material along higher density sightlines. We find no significant correlation between Nand S. Comparison of observed submillimeter polarization maps with synthetic polarization maps derived from numerical simulations provides a promising method for testing star formation theories. Realistic simulations should allow for the possibility of variable intrinsic polarization efficiency. The measured levels of correlation among p, N, and Sprovide points of comparison between observations and simulations
Proceedings of SPIE | 2010
M. C. Runyan; Peter A. R. Ade; M. Amiri; S. J. Benton; R. Bihary; J. J. Bock; J. R. Bond; J. A. Bonetti; Sean Bryan; H. C. Chiang; Carlo R. Contaldi; Brendan Crill; Olivier Doré; D. T. O'Dea; M. Farhang; J. P. Filippini; L. M. Fissel; N. N. Gandilo; S. R. Golwala; J. E. Gudmundsson; Matthew Hasselfield; M. Halpern; G. C. Hilton; Warren Holmes; Viktor V. Hristov; K. D. Irwin; W. C. Jones; C. L. Kuo; C. J. MacTavish; P. Mason
Here we describe the design and performance of the SPIDER instrument. SPIDER is a balloon-borne cosmic microwave background polarization imager that will map part of the sky at 90, 145, and 280 GHz with subdegree resolution and high sensitivity. This paper discusses the general design principles of the instrument inserts, mechanical structures, optics, focal plane architecture, thermal architecture, and magnetic shielding of the TES sensors and SQUID multiplexer. We also describe the optical, noise, and magnetic shielding performance of the 145 GHz prototype instrument insert.
Proceedings of SPIE | 2010
Sean Bryan; Peter A. R. Ade; M. Amiri; S. Benton; R. Bihary; J. J. Bock; J. Richard Bond; Joseph A. Bonetti; H. Cynthia Chiang; Carlo R. Contaldi; Brendan Crill; Daniel O'Dea; Olivier Doré; M. Farhang; J. Filippini; L. M. Fissel; N. N. Gandilo; S. R. Golwala; J. E. Gudmundsson; Matthew Hasselfield; M. Halpern; Kyle Helson; G. C. Hilton; Warren Holmes; Viktor V. Hristov; K. D. Irwin; W. C. Jones; C. L. Kuo; C. J. MacTavish; Peter Mason
Spider is a balloon-borne array of six telescopes that will observe the Cosmic Microwave Background. The 2624 antenna-coupled bolometers in the instrument will make a polarization map of the CMB with approximately one-half degree resolution at 145 GHz. Polarization modulation is achieved via a cryogenic sapphire half-wave plate (HWP) skyward of the primary optic. We have measured millimeter-wave transmission spectra of the sapphire at room and cryogenic temperatures. The spectra are consistent with our physical optics model, and the data gives excellent measurements of the indices of A-cut sapphire. We have also taken preliminary spectra of the integrated HWP, optical system, and detectors in the prototype Spider receiver. We calculate the variation in response of the HWP between observing the CMB and foreground spectra, and estimate that it should not limit the Spider constraints on inflation.
Proceedings of SPIE | 2014
A. S. Rahlin; Peter A. R. Ade; M. Amiri; S. J. Benton; J. J. Bock; J. R. Bond; Sean Bryan; Hsin C. Chiang; Carlo R. Contaldi; B. P. Crill; O. Doré; M. Farhang; J. Filippini; L. M. Fissel; A. A. Fraisse; A. E. Gambrel; N. N. Gandilo; S. R. Golwala; J. E. Gudmundsson; M. Halpern; Matthew Hasselfield; G. C. Hilton; Warren Holmes; V. V. Hristov; K. D. Irwin; W. C. Jones; Z. Kermish; C. L. Kuo; C. J. MacTavish; P. Mason
We present the results of integration and characterization of the Spider instrument after the 2013 pre-flight campaign. Spider is a balloon-borne polarimeter designed to probe the primordial gravitational wave signal in the degree-scale B-mode polarization of the cosmic microwave background. With six independent telescopes housing over 2000 detectors in the 94 GHz and 150 GHz frequency bands, Spider will map 7.5% of the sky with a depth of 11 to 14 μK•arcmin at each frequency, which is a factor of ~5 improvement over Planck. We discuss the integration of the pointing, cryogenic, electronics, and power sub-systems, as well as pre-flight characterization of the detectors and optical systems. Spider is well prepared for a December 2014 flight from Antarctica, and is expected to be limited by astrophysical foreground emission, and not instrumental sensitivity, over the survey region.
The Astrophysical Journal | 2011
D. T. O'Dea; Peter A. R. Ade; M. Amiri; S. J. Benton; J. J. Bock; J. R. Bond; J. A. Bonetti; Sean Bryan; B. Burger; H. C. Chiang; C. N. Clark; Carlo R. Contaldi; Brendan Crill; G. Davis; Olivier Doré; M. Farhang; J. Filippini; L. M. Fissel; A. A. Fraisse; N. N. Gandilo; S. R. Golwala; J. E. Gudmundsson; Matthew Hasselfield; G. C. Hilton; Warren Holmes; Viktor V. Hristov; K. D. Irwin; W. C. Jones; C. L. Kuo; C. J. MacTavish
SPIDER is a balloon-borne instrument designed to map the polarization of the cosmic microwave background (CMB) with degree-scale resolution over a large fraction of the sky. SPIDERs main goal is to measure the amplitude of primordial gravitational waves through their imprint on the polarization of the CMB if the tensor-to-scalar ratio, r, is greater than 0.03. To achieve this goal, instrumental systematic errors must be controlled with unprecedented accuracy. Here, we build on previous work to use simulations of SPIDER observations to examine the impact of several systematic effects that have been characterized through testing and modeling of various instrument components. In particular, we investigate the impact of the non-ideal spectral response of the half-wave plates, coupling between focal-plane components and Earths magnetic field, and beam mismatches and asymmetries. We also present a model of diffuse polarized foreground emission based on a three-dimensional model of the Galactic magnetic field and dust, and study the interaction of this foreground emission with our observation strategy and instrumental effects. We find that the expected level of foreground and systematic contamination is sufficiently low for SPIDER to achieve its science goals.
Monthly Notices of the Royal Astronomical Society | 2014
Lorenzo Moncelsi; Peter A. R. Ade; Francesco E. Angilè; Steven J. Benton; Mark J. Devlin; L. M. Fissel; N. N. Gandilo; Joshua O. Gundersen; Tristan G. Matthews; C. Barth Netterfield; Giles Novak; D. Nutter; Enzo Pascale; Frédérick Poidevin; G. Savini; Douglas Scott; J. D. Soler; L. D. Spencer; Matthew D. P. Truch; Gregory S. Tucker; Jin Zhang
A cryogenic achromatic half-wave plate (HWP) for submillimetre astronomical polarimetry has been designed, manufactured, tested and deployed in the Balloon-borne Large-Aperture Submillimeter Telescope for Polarimetry (BLASTPol). The design is based on the five-slab Pancharatnam recipe and itworks in thewavelength range 200–600 μm, making it the broadestband HWP built to date at (sub)millimetre wavelengths. The frequency behaviour of the HWP has been fully characterized at room and cryogenic temperatures with incoherent radiation from a polarizing Fourier transform spectrometer. We develop a novel empirical model, complementary to the physical and analytical ones available in the literature, that allows us to recover the HWP Mueller matrix and phase shift as a function of frequency and extrapolated to 4 K. We show that most of the HWP non-idealities can be modelled by quantifying one wavelength-dependent parameter, the position of the HWP equivalent axes, which is then readily implemented in a map-making algorithm. We derive this parameter for a range of spectral signatures of input astronomical sources relevant to BLASTPol, and provide a benchmark example of how our method can yield improved accuracy on measurements of the polarization angle on the sky at submillimetre wavelengths.
Proceedings of SPIE | 2012
Nicholas Galitzki; Peter A. R. Ade; F. E. Angilè; S. J. Benton; Mark J. Devlin; B. Dober; L. M. Fissel; Yasuo Fukui; N. N. Gandilo; J. Klein; Andrei Korotkov; Tristan G. Matthews; Lorenzo Moncelsi; C. B. Netterfield; Giles Novak; D. Nutter; Enzo Pascale; F. Poidevin; G. Savini; D. Scott; J. A. Shariff; J. D. Soler; Carole Tucker; Gregory S. Tucker; Derek Ward-Thompson
The Balloon-borne Large Aperture Submillimeter Telescope for Polarimetry (BLASTPol) is a suborbital mapping experiment designed to study the role played by magnetic fields in the star formation process. BLASTPol uses a total power instrument and an achromatic half-wave plate to modulate the polarization signal. During its first flight from Antarctica in December 2010, BLASTPol made degree scale maps of linearly polarized dust emission from molecular clouds in three wavebands centered at 250, 350, and 500 μm. This unprecedented dataset in terms of sky coverage, with sub-arcminute resolution, allows BLASTPol to trace magnetic fields in star-forming regions at scales ranging from cores to entire molecular cloud complexes. A second long-duration flight is scheduled for December 2012.
Review of Scientific Instruments | 2016
Sean Bryan; Peter A. R. Ade; M. Amiri; Steven J. Benton; R. Bihary; J. J. Bock; J. Richard Bond; H. Cynthia Chiang; Carlo R. Contaldi; Brendan Crill; Olivier Doré; Benjamin Elder; J. Filippini; A. A. Fraisse; A. E. Gambrel; N. N. Gandilo; J. E. Gudmundsson; Matthew Hasselfield; M. Halpern; G. C. Hilton; Warren Holmes; Viktor V. Hristov; K. D. Irwin; W. C. Jones; Z. Kermish; C. Lawrie; C. J. MacTavish; Peter Mason; K. G. Megerian; Lorenzo Moncelsi
We describe the cryogenic half-wave plate rotation mechanisms built for and used in Spider, a polarization-sensitive balloon-borne telescope array that observed the cosmic microwave background at 95 GHz and 150 GHz during a stratospheric balloon flight from Antarctica in January 2015. The mechanisms operate at liquid helium temperature in flight. A three-point contact design keeps the mechanical bearings relatively small but allows for a large (305 mm) diameter clear aperture. A worm gear driven by a cryogenic stepper motor allows for precise positioning and prevents undesired rotation when the motors are depowered. A custom-built optical encoder system monitors the bearing angle to an absolute accuracy of ±0.1(∘). The system performed well in Spider during its successful 16 day flight.