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Featured researches published by J.-Ph. Bernard.


Astronomy and Astrophysics | 2010

The Aquila prestellar core population revealed by Herschel

V. Könyves; P. André; A. Men'shchikov; N. Schneider; D. Arzoumanian; Sylvain Bontemps; M. Attard; F. Motte; P. Didelon; A. Maury; Alain Abergel; B. Ali; J.-P. Baluteau; J.-Ph. Bernard; L. Cambrésy; P. Cox; J. Di Francesco; A. M. di Giorgio; Matthew Joseph Griffin; Peter Charles Hargrave; M. Huang; Jason M. Kirk; J. Z. Li; Peter G. Martin; V. Minier; S. Molinari; G. Olofsson; S. Pezzuto; D. Russeil; Helene Roussel

The origin and possible universality of the stellar initial mass function (IMF) is a major issue in astrophysics. One of the main objectives of the Herschel Gould Belt Survey is to clarify the link between the prestellar core mass function (CMF) and the IMF. We present and discuss the core mass function derived from Herschel data for the large population of prestellar cores discovered with SPIRE and PACS in the Aquila Rift cloud complex at d ~ 260 pc. We detect a total of 541 starless cores in the entire ~11 deg^2 area of the field imaged at 70-500 micron with SPIRE/PACS. Most of these cores appear to be gravitationally bound, and thus prestellar in nature. Our Herschel results confirm that the shape of the prestellar CMF resembles the stellar IMF, with much higher quality statistics than earlier submillimeter continuum ground-based surveys.


Astronomy and Astrophysics | 2012

Cluster-formation in the Rosette molecular cloud at the junctions of filaments (Corrigendum)

N. Schneider; T. Csengeri; M. Hennemann; F. Motte; P. Didelon; Christoph Federrath; Sylvain Bontemps; J. Di Francesco; D. Arzoumanian; V. Minier; P. André; T. Hill; A. Zavagno; Q. Nguyen-Luong; M. Attard; J.-Ph. Bernard; D. Elia; C. Fallscheer; Matthew Joseph Griffin; Jason M. Kirk; Ralf S. Klessen; V. Könyves; P. G. Martin; A. Men'shchikov; P. Palmeirim; Nicolas Peretto; M. Pestalozzi; D. Russeil; S. Sadavoy; T. Sousbie

For many years feedback processes generated by OB-stars in molecular clouds, including expanding ionization fronts, stellar winds, or UV-radiation, have been proposed to trigger subsequent star formation. However, hydrodynamic models including radiation and gravity show that UV-illumination has little or no impact on the global dynamical evolution of the cloud. The Rosette molecular cloud, irradiated by the NGC2244 cluster, is a template region for triggered star-formation, and we investigated its spatial and density structure by applying a curvelet analysis, a filament-tracing algorithm (DisPerSE), and probability density functions (PDFs) on Herschel column density maps, obtained within the HOBYS key program. The analysis reveals not only the filamentary structure of the cloud but also that all known infrared clusters except one lie at junctions of filaments, as predicted by turbulence simulations. The PDFs of sub-regions in the cloud show systematic differences. The two UV-exposed regions have a double-peaked PDF we interprete as caused by shock compression. The deviations of the PDF from the log-normal shape typically associated with low- and high-mass star-forming regions at Av~3-4m and 8-10m, respectively, are found here within the very same cloud. This shows that there is no fundamental difference in the density structure of low- and high-mass star-forming regions. We conclude that star-formation in Rosette - and probably in high-mass star-forming clouds in general - is not globally triggered by the impact of UV-radiation. Moreover, star formation takes place in filaments that arose from the primordial turbulent structure built up during the formation of the cloud. Clusters form at filament mergers, but star formation can be locally induced in the direct interaction zone between an expanding HII--region and the molecular cloud.


Astronomy and Astrophysics | 2010

Planck pre-launch status: The HFI instrument, from specification to actual performance

J.-M. Lamarre; Jean-Loup Puget; Peter A. R. Ade; F. R. Bouchet; G. Guyot; A. E. Lange; F. Pajot; A. Arondel; K. Benabed; J.-L. Beney; A. Benoit; J.-Ph. Bernard; R. S. Bhatia; Y. Blanc; J. J. Bock; E. Bréelle; T. Bradshaw; P. Camus; A. Catalano; J. Charra; M. Charra; S. Church; F. Couchot; A. Coulais; B. P. Crill; M. Crook; K. Dassas; P. de Bernardis; J. Delabrouille; P. de Marcillac

Context. The High Frequency Instrument (HFI) is one of the two focal instruments of the Planck mission. It will observe the whole sky in six bands in the 100 GHz-1 THz range. Aims: The HFI instrument is designed to measure the cosmic microwave background (CMB) with a sensitivity limited only by fundamental sources: the photon noise of the CMB itself and the residuals left after the removal of foregrounds. The two high frequency bands will provide full maps of the submillimetre sky, featuring mainly extended and point source foregrounds. Systematic effects must be kept at negligible levels or accurately monitored so that the signal can be corrected. This paper describes the HFI design and its characteristics deduced from ground tests and calibration. Methods: The HFI instrumental concept and architecture are feasible only by pushing new techniques to their extreme capabilities, mainly: (i) bolometers working at 100 mK and absorbing the radiation in grids; (ii) a dilution cooler providing 100 mK in microgravity conditions; (iii) a new type of AC biased readout electronics and (iv) optical channels using devices inspired from radio and infrared techniques. Results: The Planck-HFI instrument performance exceeds requirements for sensitivity and control of systematic effects. During ground-based calibration and tests, it was measured at instrument and system levels to be close to or better than the goal specification.


Astronomy and Astrophysics | 2003

Cosmological constraints from Archeops

A. Benoit; Peter A. R. Ade; A. Amblard; R. Ansari; Eric Aubourg; S. Bargot; James G. Bartlett; J.-Ph. Bernard; R. S. Bhatia; A. Blanchard; J. J. Bock; A. Boscaleri; F. R. Bouchet; A. Bourrachot; P. Camus; F. Couchot; P. de Bernardis; J. Delabrouille; F.-X. Desert; O. Dore; M. Douspis; L. Dumoulin; X. Dupac; Ph. Filliatre; P. Fosalba; K. Ganga; F. Gannaway; B. Gautier; M. Giard; Y. Giraud-Héraud

We analyze the cosmological constraints that Archeops places on adiabatic cold dark matter models with passive power-law initial fluctuations. Because its angular power spectrum has small bins in l and large l coverage down to COBE scales, Archeops provides a precise determination of the first acoustic peak in terms of position at multipole l_peak=220 +- 6, height and width. An analysis of Archeops data in combination with other CMB datasets constrains the baryon content of the Universe, Omega(b)h^2 = 0.022 (+0.003,-0.004), compatible with Big-Bang nucleosynthesis and with a similar accuracy. Using cosmological priors obtainedfrom recent non-CMB data leads to yet tighter constraints on the total density, e.g. Omega(tot)=1.00 (+0.03,-0.02) using the HST determination of the Hubble constant. An excellent absolute calibration consistency is found between Archeops and other CMB experiments, as well as with the previously quoted best fit model.The spectral index n is measured to be 1.04 (+0.10,-0.12) when the optical depth to reionization, tau, is allowed to vary as a free parameter, and 0.96 (+0.03,-0.04) when tau is fixed to zero, both in good agreement with inflation.


Astronomy and Astrophysics | 2003

The cosmic microwave background anisotropy power spectrum measured by archeops

A. Benoit; Peter A. R. Ade; A. Amblard; R. Ansari; Eric Aubourg; S. Bargot; James G. Bartlett; J.-Ph. Bernard; R. S. Bhatia; A. Blanchard; J. J. Bock; A. Boscaleri; F. R. Bouchet; A. Bourrachot; P. Camus; F. Couchot; P. de Bernardis; J. Delabrouille; F.-X. Desert; O. Dore; M. Douspis; L. Dumoulin; X. Dupac; Ph. Filliatre; P. Fosalba; K. Ganga; F. Gannaway; B. Gautier; M. Giard; Y. Giraud-Héraud

We present a determination by the Archeops experiment of the angular power spectrum of the cosmic microwave background anisotropy in 16 bins over the multipole range l=15-350. Archeops was conceived as a precursor of the Planck HFI instrument by using the same optical design and the same technology for the detectors and their cooling. Archeops is a balloon-borne instrument consisting of a 1.5 m aperture diameter telescope and an array of 21 photometers maintained at ~100 mK that are operating in 4 frequency bands centered at 143, 217, 353 and 545 GHz. The data were taken during the Arctic night of February 7, 2002 after the instrument was launched by CNES from Esrange base (Sweden). The entire data cover ~ 30% of the sky.This first analysis was obtained with a small subset of the dataset using the most sensitive photometer in each CMB band (143 and 217 GHz) and 12.6% of the sky at galactic latitudes above 30 degrees where the foreground contamination is measured to be negligible. The large sky coverage and medium resolution (better than 15 arcminutes) provide for the first time a high signal-to-noise ratio determination of the power spectrum over angular scales that include both the first acoustic peak and scales probed by COBE/DMR. With a binning of Delta(l)=7 to 25 the error bars are dominated by sample variance for l below 200. A companion paper details the cosmological implications.


Astronomy and Astrophysics | 2010

Filamentary structures and compact objects in the Aquila and Polaris clouds observed by Herschel

A. Men'shchikov; P. André; P. Didelon; V. Könyves; N. Schneider; F. Motte; Sylvain Bontemps; D. Arzoumanian; M. Attard; Alain Abergel; J.-P. Baluteau; J.-Ph. Bernard; L. Cambrésy; P. Cox; J. Di Francesco; A. M. di Giorgio; Matthew Joseph Griffin; Peter Charles Hargrave; M. Huang; Jason M. Kirk; J. Z. Li; P. G. Martin; V. Minier; M.-A. Miville-Deschênes; S. Molinari; G. Olofsson; S. Pezzuto; H. Roussel; D. Russeil; P. Saraceno

Our PACS and SPIRE images of the Aquila Rift and part of the Polaris Flare regions, taken during the science demonstration phase of Herschel discovered fascinating, omnipresent filamentary structures that appear to be physically related to compact cores. We briefly describe a new multi-scale, multi-wavelength source extraction method used to detect objects and measure their parameters in our Herschel images. All of the extracted starless cores (541 in Aquila and 302 in Polaris) appear to form in the long and very narrow filaments. With its combination of the far-IR resolution and sensitivity, Herschel directly reveals the filaments in which the dense cores are embedded; the filaments are resolved and have deconvolved widths of 35 arcsec in Aquila and 59 arcsec in Polaris (9000 AU in both regions). Our first results of observations with Herschel enable us to suggest that in general dense cores may originate in a process of fragmentation of complex networks of long, thin filaments, likely formed as a result of an interplay between gravity, interstellar turbulence, and magnetic fields. To unravel the roles of the processes, one has to obtain additional kinematic and polarization information; these follow-up observations are planned.


Astronomy and Astrophysics | 2010

Initial highlights of the HOBYS key program, the Herschel imaging survey of OB young stellar objects

F. Motte; A. Zavagno; Sylvain Bontemps; N. Schneider; M. Hennemann; J. Di Francesco; P. André; P. Saraceno; Matthew Joseph Griffin; A. Marston; Derek Ward-Thompson; G. J. White; V. Minier; A. Men'shchikov; T. Hill; Alain Abergel; L. D. Anderson; H. Aussel; Zoltan Balog; J.-P. Baluteau; J.-Ph. Bernard; P. Cox; T. Csengeri; L. Deharveng; P. Didelon; A. M. di Giorgio; Peter Charles Hargrave; M. Huang; Jason M. Kirk; S. J. Leeks

We present the initial highlights of the HOBYS key program, which are based on Herschel images of the Rosette molecular complex and maps of the RCW120 H ii region. Using both SPIRE at 250/350/500 μm and PACS at 70/160 μm or 100/160 μm, the HOBYS survey provides an unbiased and complete census of intermediate- to high-mass young stellar objects, some of which are not detected by Spitzer. Key core properties, such as bolometric luminosity and mass (as derived from spectral energy distributions), are used to constrain their evolutionary stages. We identify a handful of high-mass prestellar cores and show that their lifetimes could be shorter in the Rosette molecular complex than in nearby low-mass star-forming regions. We also quantify the impact of expanding H ii regions on the star formation process acting in both Rosette and RCW 120.


Astronomy and Astrophysics | 2010

Dust temperature tracing the ISRF intensity in the Galaxy

J.-Ph. Bernard; D. Paradis; D. J. Marshall; L. Montier; Guilaine Lagache; R. Paladini; M. Veneziani; Christopher M. Brunt; J. C. Mottram; Peter G. Martin; I. Ristorcelli; Alberto Noriega-Crespo; M. Compiegne; Nicolas Flagey; L. D. Anderson; Cristina Popescu; Richard J. Tuffs; William T. Reach; G. J. White; M. Benedetti; L. Calzoletti; A. M. DiGiorgio; F. Faustini; M. Juvela; C. Joblin; G. Joncas; M.-A. Mivilles-Deschenes; Luca Olmi; A. Traficante; F. Piacentini

New observations withHerschel allow accurate measurement of the equilibrium temperature of large dust grains heated by the interstellar radiation field (ISRF), which is critical in deriving dust column density and masses. We present temperature maps derived from the Herschel SPIRE and PACS data in two fields along the Galactic plane, obtained as part of the Hi-GAL survey during the Herschel science demonstration phase (SDP). We analyze the distribution of the dust temperature spatially, as well as along the two lines-of-sight (LOS) through the Galaxy. The zero-level offsets in the Herschel maps were established by comparison with the IRAS and Planck data at comparable wavelengths. We derive maps of the dust temperature and optical depth by adjusting a detailed model for dust emission at each pixel. The dust temperature maps show variations in the ISRF intensity and reveal the intricate mixture of the warm dust heated by massive stars and the cold filamentary structures of embedded molecular clouds. The dust optical depth at 250 μm is well correlated with the gas column density, but with a significantly higher dust emissivity than in the solar neighborhood. We correlate the optical depth with 3-D cubes of the dust extinction to investigate variations in the ISRF strength and dust abundance along the line of sight through the spiral structure of the Galaxy. We show that the warmest dust along the LOS is located in the spiral arms of the Galaxy, and we quantify their respective IR contribution.


Astronomy and Astrophysics | 2007

Far-infrared to millimeter astrophysical dust emission I: A model based on physical properties of amorphous solids

C. Meny; V. Gromov; N. Boudet; J.-Ph. Bernard; D. Paradis; C. Nayral

Aims. We propose a new description of astronomical dust emission in the spectral region from the far-infrared to millimeter wavelengths. Methods. Unlike previous classical models, this description explicitly incorporates the effect of the disordered internal structure of amorphous dust grains. Our model is based on results from solid state physics used to interpret laboratory data. The model takes into account the effect of absorption by disordered charge distribution, as well as the effect of absorption by localized two level systems. Results. We review constraints on the various free parameters of the model from theory and laboratory experimental data. We show that, for realistic values of the free parameters, the shape of the emission spectrum will exhibit very broad structures whose shape will change in a non trivial way with the temperature of dust grains. The spectral shape also depends upon the parameters describing the internal structure of the grains. This opens new perspectives for identifying the nature of astronomical dust from the observed shape of the FIR/mm emission spectrum. A companion paper will provide an explicit comparison of the model with astronomical data.


Astronomy and Astrophysics | 2012

The spine of the swan: a Herschel study of the DR21 ridge and filaments in Cygnus X

M. Hennemann; F. Motte; N. Schneider; P. Didelon; T. Hill; D. Arzoumanian; Sylvain Bontemps; T. Csengeri; P. André; V. Könyves; F. Louvet; A. Marston; A. Men’shchikov; V. Minier; Q. Nguyen Luong; P. Palmeirim; Nicolas Peretto; Marc Sauvage; A. Zavagno; L. D. Anderson; J.-Ph. Bernard; J. Di Francesco; D. Elia; J. Z. Li; P. G. Martin; S. Molinari; S. Pezzuto; D. Russeil; K. L. J. Rygl; E. Schisano

In order to characterise the cloud structures responsible for the formation of high-mass stars, we present Herschel observations of the DR21 environment. Maps of the column density and dust temperature unveil the structure of the DR21 ridge and several connected filaments. The ridge has column densities larger than 1e23/cm^2 over a region of 2.3 pc^2. It shows substructured column density profiles and branching into two major filaments in the north. The masses in the studied filaments range between 130 and 1400 Msun whereas the mass in the ridge is 15000 Msun. The accretion of these filaments onto the DR21 ridge, suggested by a previous molecular line study, could provide a continuous mass inflow to the ridge. In contrast to the striations seen in e.g., the Taurus region, these filaments are gravitationally unstable and form cores and protostars. These cores formed in the filaments potentially fall into the ridge. Both inflow and collisions of cores could be important to drive the observed high-mass star formation. The evolutionary gradient of star formation running from DR21 in the south to the northern branching is traced by decreasing dust temperature. This evolution and the ridge structure can be explained by two main filamentary components of the ridge that merged first in the south.

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M. Giard

University of Toulouse

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F.-X. Desert

Centre national de la recherche scientifique

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William T. Reach

Universities Space Research Association

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Guy Serra

Centre national de la recherche scientifique

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F. Pajot

University of Paris-Sud

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