Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where V. V. Hristov is active.

Publication


Featured researches published by V. V. Hristov.


Physical Review Letters | 2014

Detection of

Peter A. R. Ade; R. W. Aikin; D. Barkats; S. J. Benton; C. A. Bischoff; J. J. Bock; J. A. Brevik; I. Buder; E. Bullock; C. D. Dowell; L. Duband; J. Filippini; S. Fliescher; S. R. Golwala; M. Halpern; Matthew Hasselfield; S. R. Hildebrandt; G. C. Hilton; V. V. Hristov; K. D. Irwin; K. S. Karkare; J. P. Kaufman; Brian Keating; S. A. Kernasovskiy; J. M. Kovac; Chao-Lin Kuo; E. M. Leitch; M. Lueker; P. Mason; C. B. Netterfield

We report results from the BICEP2 experiment, a cosmic microwave background (CMB) polarimeter specifically designed to search for the signal of inflationary gravitational waves in the B-mode power spectrum around ℓ∼80. The telescope comprised a 26 cm aperture all-cold refracting optical system equipped with a focal plane of 512 antenna coupled transition edge sensor 150 GHz bolometers each with temperature sensitivity of ≈300  μK(CMB)√s. BICEP2 observed from the South Pole for three seasons from 2010 to 2012. A low-foreground region of sky with an effective area of 380 square deg was observed to a depth of 87 nK deg in Stokes Q and U. In this paper we describe the observations, data reduction, maps, simulations, and results. We find an excess of B-mode power over the base lensed-ΛCDM expectation in the range 30 < ℓ < 150, inconsistent with the null hypothesis at a significance of >5σ. Through jackknife tests and simulations based on detailed calibration measurements we show that systematic contamination is much smaller than the observed excess. Cross correlating against WMAP 23 GHz maps we find that Galactic synchrotron makes a negligible contribution to the observed signal. We also examine a number of available models of polarized dust emission and find that at their default parameter values they predict power ∼(5-10)× smaller than the observed excess signal (with no significant cross-correlation with our maps). However, these models are not sufficiently constrained by external public data to exclude the possibility of dust emission bright enough to explain the entire excess signal. Cross correlating BICEP2 against 100 GHz maps from the BICEP1 experiment, the excess signal is confirmed with 3σ significance and its spectral index is found to be consistent with that of the CMB, disfavoring dust at 1.7σ. The observed B-mode power spectrum is well fit by a lensed-ΛCDM+tensor theoretical model with tensor-to-scalar ratio r = 0.20_(-0.05)(+0.07), with r = 0 disfavored at 7.0σ. Accounting for the contribution of foreground, dust will shift this value downward by an amount which will be better constrained with upcoming data sets.


The Astrophysical Journal | 2000

B

S. Hanany; Peter A. R. Ade; A. Balbi; J. J. Bock; J. Borrill; A. Boscaleri; P. de Bernardis; Pedro G. Ferreira; V. V. Hristov; A. H. Jaffe; A. E. Lange; A. T. Lee; Philip Daniel Mauskopf; C. B. Netterfield; S. Oh; Enzo Pascale; B. Rabii; P. L. Richards; George F. Smoot; R. Stompor; C. D. Winant; Jiun-Huei Proty Wu

We present a map and an angular power spectrum of the anisotropy of the cosmic microwave background (CMB) from the first flight of MAXIMA. MAXIMA is a balloon-borne experiment with an array of 16 bolometric photometers operated at 100 mK. MAXIMA observed a 124 square degrees region of the sky with 10 arcminute resolution at frequencies of 150, 240 and 410 GHz. The data were calibrated using in-flight measurements of the CMB dipole anisotropy. A map of the CMB anisotropy was produced from three 150 and one 240 GHz photometer without need for foreground subtractions. Analysis of this CMB map yields a power spectrum for the CMB anisotropy over the range 36 < l < 785. The spectrum shows a peak with an amplitude of 78 +/- 6 micro-Kelvin at l ~ 220 and an amplitude varying between ~40 micro-Kelvin and ~50 micro-Kelvin for 400 < l < 785.


Physical Review Letters | 2001

-Mode Polarization at Degree Angular Scales by BICEP2

A. H. Jaffe; Peter A. R. Ade; A. Balbi; J. J. Bock; J. R. Bond; J. Borrill; A. Boscaleri; K. Coble; B. P. Crill; P. de Bernardis; P. Farese; Pedro G. Ferreira; K. Ganga; M. Giacometti; Shaul Hanany; E. Hivon; V. V. Hristov; A. Iacoangeli; A. E. Lange; A. T. Lee; L. Martinis; S. Masi; Philip Daniel Mauskopf; Alessandro Melchiorri; T. E. Montroy; C. B. Netterfield; S. Oh; Enzo Pascale; F. Piacentini; Dmitry Pogosyan

Recent results from BOOMERANG-98 and MAXIMA-1, taken together with COBE DMR, provide consistent and high signal-to-noise measurements of the cosmic microwave background power spectrum at spherical harmonic multipole bands over 2<l less similar to 800. Analysis of the combined data yields 68% (95%) confidence limits on the total density, Omega(tot) approximately 1.11+/-0.07 (+0.13)(-0.12), the baryon density, Omega(b)h(2) approximately 0.032(+0.005)(-0.004) (+0.009)(-0.008), and the scalar spectral tilt, n(s) approximately 1.01(+0.09)(-0.07) (+0.17)(-0.14). These data are consistent with inflationary initial conditions for structure formation. Taken together with other cosmological observations, they imply the existence of both nonbaryonic dark matter and dark energy in the Universe.


The Astrophysical Journal | 2000

MAXIMA-1: A Measurement of the Cosmic Microwave Background Anisotropy on Angular Scales of 10'-5°

A. Balbi; Peter A. R. Ade; J. J. Bock; J. Borrill; A. Boscaleri; P. de Bernardis; Pedro G. Ferreira; Shaul Hanany; V. V. Hristov; A. H. Jaffe; A. T. Lee; S. Oh; Enzo Pascale; B. Rabii; P. L. Richards; George F. Smoot; R. Stompor; C. D. Winant; Jiun-Huei Proty Wu

We set new constraints on a seven-dimensional space of cosmological parameters within the class of inflationary adiabatic models. We use the angular power spectrum of the cosmic microwave background measured over a wide range of l in the first flight of the MAXIMA balloon-borne experiment (MAXIMA-1) and the low-l results from the COBE Differential Microwave Radiometer experiment. We find constraints on the total energy density of the universe, Ω = 1.0img1.gif, the physical density of baryons, Ωbh2 = 0.03 ± 0.01, the physical density of cold dark matter, Ωcdmh2 = 0.2img2.gif, and the spectral index of primordial scalar fluctuations, ns = 1.08 ± 0.1, all at the 95% confidence level. By combining our results with measurements of high-redshift supernovae we constrain the value of the cosmological constant and the fractional amount of pressureless matter in the universe to 0.45 < ΩΛ < 0.75 and 0.25 < Ωm < 0.50, at the 95% confidence level. Our results are consistent with a flat universe and the shape parameter deduced from large-scale structure, and in marginal agreement with the baryon density from big bang nucleosynthesis.


The Astrophysical Journal | 2002

Cosmology from MAXIMA-1, BOOMERANG, and COBE DMR Cosmic Microwave Background Observations

P. de Bernardis; Peter A. R. Ade; J. J. Bock; J. R. Bond; J. Borrill; A. Boscaleri; K. Coble; C. R. Contaldi; B. P. Crill; G. De Troia; P. Farese; K. Ganga; M. Giacometti; E. Hivon; V. V. Hristov; A. Iacoangeli; A. H. Jaffe; W. C. Jones; A. E. Lange; L. Martinis; S. Masi; P. Mason; Philip Daniel Mauskopf; Alessandro Melchiorri; T. E. Montroy; C. B. Netterfield; Enzo Pascale; F. Piacentini; Dmitry Pogosyan; G. Polenta

Multiple Peaks in the Angular Power Spectrum of the Cosmic Microwave Background: Significance and Consequences for Cosmology arXiv:astro-ph/0105296 v1 17 May 2001 P. de Bernardis 1 , P.A.R. Ade 2 , J.J. Bock 3 , J.R. Bond 4 , J. Borrill 5 , A. Boscaleri 6 , K. Coble 7 , C.R. Contaldi 4 , B.P. Crill 8 , G. De Troia 1 , P. Farese 7 , K. Ganga 9 , M. Giacometti 1 , E. Hivon 9 , V.V. Hristov 8 , A. Iacoangeli 1 , A.H. Jaffe 10 , W.C. Jones 8 , A.E. Lange 8 , L. Martinis 11 , S. Masi 1 , P. Mason 8 , P.D. Mauskopf 12 , A. Melchiorri 13 , T. Montroy 7 , C.B. Netterfield 14 , E. Pascale 6 , F. Piacentini 1 , D. Pogosyan 4 , G. Polenta 1 , F. Pongetti 15 , S. Prunet 4 , G. Romeo 15 , J.E. Ruhl 7 , F. Scaramuzzi 11 Dipartimento di Fisica, Universita’ La Sapienza, Roma, Italy Queen Mary and Westfield College, London, UK Jet Propulsion Laboratory, Pasadena, CA, USA Canadian Institute for Theoretical Astrophysics, University of Toronto, Canada National Energy Research Scientific Computing Center, LBNL, Berkeley, CA, USA IROE-CNR, Firenze, Italy Dept. of Physics, Univ. of California, Santa Barbara, CA, USA California Institute of Technology, Pasadena, CA, USA IPAC, California Institute of Technology, Pasadena, CA, USA Department of Astronomy, Space Sciences Lab and Center for Particle Astrophysics, University of CA, Berkeley, CA 94720 USA ENEA, Frascati, Italy Dept. of Physics and Astronomy, Cardiff University, Cardiff CF24 3YB, Wales, UK Nuclear and Astrophysics Laboratory, University of Oxford, Keble Road, Oxford, OX 3RH, UK Depts. of Physics and Astronomy, University of Toronto, Canada Istituto Nazionale di Geofisica, Roma, Italy ABSTRACT Three peaks and two dips have been detected in the power spectrum of the cosmic microwave background from the BOOMERANG experiment, at ∼ 210, 540, 840 and ∼ 420, 750, respec- tively. Using model-independent analyses, we find that all five features are statistically significant and we measure their location and amplitude. These are consistent with the adiabatic inflation- ary model. We also calculate the mean and variance of the peak and dip locations and amplitudes in a large 7-dimensional parameter space of such models, which gives good agreement with the model-independent estimates, and forecast where the next few peaks and dips should be found if the basic paradigm is correct. We test the robustness of our results by comparing Bayesian marginalization techniques on this space with likelihood maximization techniques applied to a sec- ond 7-dimensional cosmological parameter space, using an independent computational pipeline, and find excellent agreement: Ω tot = 1.02 +0.06 vs. 1.04±0.05, Ω b h 2 = 0.022 −0.003 vs. 0.019 +0.005 , and n s = 0.96 −0.09 vs. 0.90±0.08. The deviation in primordial spectral index n s is a consequence of the strong correlation with the optical depth. Subject headings: Cosmic Microwave Background Anisotropy, Cosmology


Physical Review D | 2001

Constraints on Cosmological Parameters from MAXIMA-1

A. E. Lange; Peter A. R. Ade; J. J. Bock; J.R. Bond; J. Borrill; A. Boscaleri; K. Coble; B. P. Crill; P. de Bernardis; P. Farese; P. Ferreira; K. Ganga; M. Giacometti; E. Hivon; V. V. Hristov; A. Iacoangeli; A. Jaffe; L. Martinis; S. Masi; Philip Daniel Mauskopf; A. Melchiorri; T. E. Montroy; C. B. Netterfield; Enzo Pascale; F. Piacentini; D. Pogosyan; S. Prunet; S. Rao; G. Romeo; J. E. Ruhl

The anisotropy of the cosmic microwave background radiation contains information about the contents and history of the universe. We report new limits on cosmological parameters derived from the angular power spectrum measured in the first Antarctic flight of the BOOMERANG experiment. Within the framework of inflation-motivated adiabatic cold dark matter models, and using only weakly restrictive prior probabilites on the age of the universe and the Hubble expansion parameter


The Astrophysical Journal | 2000

Multiple peaks in the angular power spectrum of the cosmic microwave background: Significance and consequences for cosmology

Alessandro Melchiorri; Peter A. R. Ade; P. de Bernardis; J. J. Bock; J. Borrill; A. Boscaleri; B. P. Crill; G. De Troia; P. Farese; P. G. Ferreira; K. Ganga; G. de Gasperis; M. Giacometti; V. V. Hristov; A. H. Jaffe; A. E. Lange; S. Masi; Philip Daniel Mauskopf; L. Miglio; C. B. Netterfield; Enzo Pascale; F. Piacentini; G. Romeo; J. E. Ruhl; N. Vittorio

h


The Astrophysical Journal | 2000

Cosmological parameters from the first results of Boomerang

Philip Daniel Mauskopf; Peter A. R. Ade; P. de Bernardis; J. J. Bock; J. Borrill; A. Boscaleri; B. P. Crill; G. DeGasperis; G. De Troia; P. Farese; P. G. Ferreira; K. Ganga; M. Giacometti; Shaul Hanany; V. V. Hristov; A. Iacoangeli; A. H. Jaffe; A. E. Lange; A. T. Lee; S. Masi; Alessandro Melchiorri; F. Melchiorri; L. Miglio; T. E. Montroy; C. B. Netterfield; Enzo Pascale; F. Piacentini; P. L. Richards; G. Romeo; J. E. Ruhl

, we find that the curvature is consistent with flat and that the primordial fluctuation spectrum is consistent with scale invariant, in agreement with the basic inflation paradigm. We find that the data prefer a baryon density


The Astrophysical Journal | 2003

A measurement of Ω from the North American test flight of Boomerang

J. E. Ruhl; Peter A. R. Ade; J. J. Bock; J. R. Bond; J. Borrill; A. Boscaleri; C. R. Contaldi; B. P. Crill; P. de Bernardis; G. De Troia; K. Ganga; M. Giacometti; E. Hivon; V. V. Hristov; A. Iacoangeli; A. H. Jaffe; W. C. Jones; A. E. Lange; S. Masi; P. Mason; Philip Daniel Mauskopf; Alessandro Melchiorri; T. E. Montroy; C. B. Netterfield; Enzo Pascale; F. Piacentini; Dmitry Pogosyan; G. Polenta; S. Prunet; G. Romeo

\Omega_b h^2


Astronomy and Astrophysics | 2006

Measurement of a Peak in the Cosmic Microwave Background Power Spectrum from the North American Test Flight of Boomerang

S. Masi; Peter A. R. Ade; J. J. Bock; J. R. Bond; J. Borrill; A. Boscaleri; P. Cabella; Carlo R. Contaldi; B. P. Crill; P. de Bernardis; G. de Gasperis; A. de Oliveira-Costa; G. De Troia; G. Di Stefano; P. Ehlers; E. Hivon; V. V. Hristov; A. Iacoangeli; A. H. Jaffe; W. C. Jones; T. S. Kisner; A. E. Lange; C. J. MacTavish; C. Marini Bettolo; P. Mason; Philip Daniel Mauskopf; T. E. Montroy; F. Nati; L. Nati; P. Natoli

above, though similar to, the estimates from light element abundances and big bang nucleosynthesis. When combined with large scale structure observations, the BOOMERANG data provide clear detections of both dark matter and dark energy contributions to the total energy density

Collaboration


Dive into the V. V. Hristov's collaboration.

Top Co-Authors

Avatar

J. J. Bock

California Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

A. E. Lange

California Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

A. Boscaleri

California Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

P. de Bernardis

Sapienza University of Rome

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

B. P. Crill

California Institute of Technology

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

J. Borrill

Lawrence Berkeley National Laboratory

View shared research outputs
Top Co-Authors

Avatar

P. Mason

California Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

T. E. Montroy

Case Western Reserve University

View shared research outputs
Researchain Logo
Decentralizing Knowledge