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Featured researches published by M. Bolzonella.


Astronomy and Astrophysics | 2006

Accurate photometric redshifts for the CFHT Legacy Survey calibrated using the VIMOS VLT Deep Survey

O. Ilbert; S. Arnouts; H. J. McCracken; M. Bolzonella; E. Bertin; O. Le Fèvre; Y. Mellier; G. Zamorani; R. Pello; A. Iovino; L. Tresse; V. Le Brun; D. Bottini; B. Garilli; D. Maccagni; J. P. Picat; R. Scaramella; M. Scodeggio; G. Vettolani; A. Zanichelli; C. Adami; S. Bardelli; A. Cappi; S. Charlot; P. Ciliegi; T. Contini; O. Cucciati; S. Foucaud; P. Franzetti; I. Gavignaud

We present photometric redshifts for an uniquely large and deep sample of 522286 objects with i_{AB}<25 in the Canada-France Legacy Survey ``Deep Survey fields, which cover a total effective area of 3.2 deg^2. We use 3241 spectroscopic redshifts with 0


The Astrophysical Journal | 2005

The GALEX-VVDS measurement of the evolution of the far-ultraviolet luminosity density and the cosmic star formation rate

David Schiminovich; O. Ilbert; S. Arnouts; B. Milliard; L. Tresse; O. Le Fèvre; Marie Treyer; Ted K. Wyder; Tamas Budavari; E. Zucca; G. Zamorani; D. C. Martin; C. Adami; M. Arnaboldi; S. Bardelli; Tom A. Barlow; Luciana Bianchi; M. Bolzonella; D. Bottini; Yong-Ik Byun; A. Cappi; T. Contini; S. Charlot; J. Donas; Karl Forster; S. Foucaud; P. Franzetti; Peter G. Friedman; B. Garilli; I. Gavignaud

In a companion paper (Arnouts et al. 2004) we presented new measurements of the galaxy luminosity function at 1500 Angstroms out to z~1 using GALEX-VVDS observations (1039 galaxies with NUV 0.2) and at higher z using existing data sets. In this paper we use the same sample to study evolution of the FUV luminosity density. We detect evolution consistent with a (1+z)^{2.5+/-0.7} rise to z~1 and (1+z)^{0.5+/-0.4} for z>1. The luminosity density from the most UV-luminous galaxies (UVLG) is undergoing dramatic evolution (x30) between 025%) of the total FUV luminosity density at z<1. We measure dust attenuation and star formation rates of our sample galaxies and determine the star formation rate density as a function of redshift, both uncorrected and corrected for dust. We find good agreement with other measures of the SFR density in the rest ultraviolet and Halpha given the still significant uncertainties in the attenuation correction.


Astronomy and Astrophysics | 2005

The VIMOS-VLT Deep Survey: Evolution of the galaxy luminosity function up to z=2 in first epoch data

O. Ilbert; L. Tresse; E. Zucca; S. Bardelli; S. Arnouts; G. Zamorani; L. Pozzetti; D. Bottini; B. Garilli; V. Le Brun; O. Le Fèvre; D. Maccagni; J. P. Picat; R. Scaramella; M. Scodeggio; G. Vettolani; Alessandra Zanichelli; C. Adami; M. Arnaboldi; M. Bolzonella; A. Cappi; S. Charlot; T. Contini; Sylvie Foucaud; P. Franzetti; I. Gavignaud; L. Guzzo; A. Iovino; H. J. McCracken; B. Marano

We investigate the evolution of the galaxy luminosity function from the VIMOS-VLT Deep Survey (VVDS) from the present to z=2 in five (U, B, V, R and I) rest-frame band-passes. We use the first epoch VVDS deep sample of 11,034 spectra selected at 17.5 <= I_{AB} <= 24.0, on which we apply the Algorithm for Luminosity Function (ALF), described in this paper. We observe a substantial evolution with redshift of the global luminosity functions in all bands. From z=0.05 to z=2, we measure a brightening of the characteristic magnitude M* included in the magnitude range 1.8-2.5, 1.7-2.4, 1.2-1.9, 1.1-1.8 and 1.0-1.6 in the U, B, V, R and I rest-frame bands, respectively. We confirm this differential evolution of the luminosity function with rest-frame wavelength, from the measurement of the comoving density of bright galaxies (M < M*(z=0.1)). This density increases by a factor of around 2.6, 2.2, 1.8, 1.5, 1.5 between z=0.05 and z=1 in the U, B, V, R, I bands, respectively. We also measure a possible steepening of the faint-end slope of the luminosity functions, with Deltaalpha ~ -0.3 between z=0.05 and z=1, similar in all bands.


The Astrophysical Journal | 2005

The GALEX VIMOS-VLT Deep Survey Measurement of the Evolution of the 1500 Å Luminosity Function

S. Arnouts; David Schiminovich; O. Ilbert; L. Tresse; B. Milliard; Marie Treyer; S. Bardelli; Tamas Budavari; Ted K. Wyder; E. Zucca; O. Le Fèvre; D. C. Martin; Giampaolo Vettolani; C. Adami; M. Arnaboldi; Tom A. Barlow; Luciana Bianchi; M. Bolzonella; D. Bottini; Yong-Ik Byun; A. Cappi; S. Charlot; T. Contini; J. Donas; Karl Forster; Sylvie Foucaud; P. Franzetti; Peter G. Friedman; B. Garilli; I. Gavignaud

We present the first measurement of the galaxy luminosity function (LF) at 1500 A in the range 0.2 ≤ z ≤ 1.2 based on Galaxy Evolution Explorer VIMOS-VLT Deep Survey observations (~1000 spectroscopic redshifts for galaxies with NUV ≤ 24.5) and at higher z using existing data sets. Our main results are summarized as follows: (1) Luminosity evolution is observed with ΔM* ~ -2.0 mag between z = 0 and z = 1 and ΔM* ~ -1.0 mag between z = 1 and z = 3. This confirms that the star formation activity was significantly higher in the past. (2) The LF slopes vary in the range -1.2 ≥ α ≥ -1.65, with a marginally significant hint of increase at higher z. (3) We split the sample in three rest-frame (B - I) intervals, providing an approximate spectral type classification: Sb-Sd, Sd-Irr, and unobscured starbursts. We find that the bluest class evolves less strongly in luminosity than the two other classes. On the other hand, their number density increases sharply with z (~15% in the local universe to ~55% at z ~ 1), while that of the reddest classes decreases.


Astronomy and Astrophysics | 2006

The VIMOS-VLT deep survey - evolution of the luminosity functions by galaxy type up to z = 1.5 from first epoch data

E. Zucca; O. Ilbert; S. Bardelli; L. Tresse; G. Zamorani; S. Arnouts; L. Pozzetti; M. Bolzonella; H. J. McCracken; D. Bottini; B. Garilli; V. Le Brun; O. Le Fèvre; D. Maccagni; J. P. Picat; R. Scaramella; M. Scodeggio; G. Vettolani; A. Zanichelli; C. Adami; M. Arnaboldi; A. Cappi; S. Charlot; P. Ciliegi; T. Contini; Sylvie Foucaud; P. Franzetti; I. Gavignaud; L. Guzzo; A. Iovino

From the first epoch observations of the VVDS up to z=1.5 we have derived luminosity functions (LF) of different spectral type galaxies. The VVDS data, covering ~70% of the life of the Universe, allow for the first time to study from the same sample and with good statistical accuracy the evolution of the LFs by galaxy type in several rest frame bands from a purely magnitude selected sample. The magnitude limit of the VVDS allows the determination of the faint end slope of the LF with unprecedented accuracy. Galaxies have been classified in four spectral classes, using their colours and redshift, and LFs have been derived in the U, B, V, R and I rest frame bands from z=0.05 to z=1.5. We find a significant steepening of the LF going from early to late types. The M* parameter is significantly fainter for late type galaxies and this difference increases in the redder bands. Within each of the galaxy spectral types we find a brightening of M* with increasing redshift, ranging from =< 0.5 mag for early type galaxies to ~1 mag for the latest type galaxies, while the slope of the LF of each spectral type is consistent with being constant with redshift. The LF of early type galaxies is consistent with passive evolution up to z~1.1, while the number of bright early type galaxies has decreased by ~40% from z~0.3 to z~1.1. We also find a strong evolution in the normalization of the LF of latest type galaxies, with an increase of more than a factor 2 from z~0.3 to z~1.3: the density of bright late type galaxies in the same redshift range increases of a factor ~6.6. These results indicate a strong type-dependent evolution and identifies the latest spectral types as responsible for most of the evolution of the UV-optical luminosity function out to z=1.5.


Astronomy and Astrophysics | 2006

The VIMOS-VLT Deep Survey: The evolution of galaxy clustering per spectral type to z ≃ 1.5

B. Meneux; O. Le Fèvre; L. Guzzo; A. Pollo; A. Cappi; O. Ilbert; A. Iovino; Christian Marinoni; H. J. McCracken; D. Bottini; B. Garilli; V. Le Brun; D. Maccagni; J. P. Picat; R. Scaramella; M. Scodeggio; L. Tresse; G. Vettolani; A. Zanichelli; C. Adami; S. Arnouts; M. Arnaboldi; S. Bardelli; M. Bolzonella; S. Charlot; P. Ciliegi; T. Contini; S. Foucaud; P. Franzetti; I. Gavignaud

We measure the evolution of clustering for galaxies with different spectral types from 6495 galaxies with 17.5 1.2, due to the growth in clustering of the star-forming population. We find similar results when splitting the sample into `red and `blue galaxies using the observed color bi-modality. When compared to the expected linear growth of mass fluctuations, a natural interpretation of these observations is that: (a) the assembly of massive early type galaxies is already mostly complete in the densest dark matter halos at z~=1; (b) luminous late-type galaxies are located in higher-density, more clustered regions of the Universe at z~=1.5 than at present, indicating that star formation activity is progressively increasing, going back in time, in the higher-density peaks that today are mostly dominated by old galaxies.We measure the evolution of clustering for galaxies with different spectral types from 6495 galaxies with 17.5<=I_AB<=24 and measured spectroscopic redshift in the first epoch VIMOS-VLT Deep Survey. We classify our sample into 4 classes, based on the fit of well-defined galaxy spectral energy distributions on observed multi-color data. We measure the projected function wp(rp) and estimate the best-fit parameters for a power-law real-space correlation function. We find the clustering of early-spectral-type galaxies to be markedly stronger than that of late-type galaxies at all redshifts up to z<=1.2. At z~0.8, early-type galaxies display a correlation length r_0=4.8+/-0.9h^{-1}Mpc, while late types have r_0=2.5+/-0.4h^{-1}Mpc. The clustering of these objects increases up to r_0=3.42+/-0.7h^{-1}Mpc for z~1.4. The relative bias between early- and late-type galaxies within our magnitude-limited survey remains approximately constant with b~1.7-1.8 from z~=0.2 up to z~=1, with indications for a decrease at z>1.2, due to the growth in clustering of the star-forming population. We find similar results when splitting the sample into `red and `blue galaxies using the observed color bi-modality. When compared to the expected linear growth of mass fluctuations, a natural interpretation of these observations is that: (a) the assembly of massive early type galaxies is already mostly complete in the densest dark matter halos at z~=1; (b) luminous late-type galaxies are located in higher-density, more clustered regions of the Universe at z~=1.5 than at present, indicating that star formation activity is progressively increasing, going back in time, in the higher-density peaks that today are mostly dominated by old galaxies.


Astronomy and Astrophysics | 2005

The VIMOS VLT Deep Survey - Evolution of the non-linear galaxy bias up to z = 1.5

Christian Marinoni; O. Le Fèvre; B. Meneux; A. Iovino; A. Pollo; O. Ilbert; G. Zamorani; L. Guzzo; A. Mazure; R. Scaramella; A. Cappi; H. J. McCracken; D. Bottini; B. Garilli; V. Le Brun; D. Maccagni; J. P. Picat; M. Scodeggio; L. Tresse; G. Vettolani; Alessandra Zanichelli; C. Adami; Stephane Arnouts; S. Bardelli; J. Blaizot; M. Bolzonella; S. Charlot; P. Ciliegi; T. Contini; Sylvie Foucaud

We present the first measurements of the Probability Distribution Function (PDF) of galaxy fluctuations in the VIMOS-VLT Deep Survey (VVDS) cone, covering 0.4x0.4 deg between 0.45Mpc.


Astronomy and Astrophysics | 2006

The VIMOS-VLT Deep Survey: Galaxy luminosity function per morphological type up to z = 1.2

O. Ilbert; S. Lauger; L. Tresse; V. Buat; Stephane Arnouts; O. Le Fèvre; D. Burgarella; E. Zucca; S. Bardelli; G. Zamorani; D. Bottini; B. Garilli; V. Le Brun; D. Maccagni; J. P. Picat; R. Scaramella; M. Scodeggio; G. Vettolani; A. Zanichelli; C. Adami; M. Arnaboldi; M. Bolzonella; A. Cappi; S. Charlot; T. Contini; Sylvie Foucaud; P. Franzetti; I. Gavignaud; L. Guzzo; A. Iovino

We have computed the evolution of the rest-frame B-band luminosity function (LF) for bulge and disk-dominated galaxies since z=1.2. We use a sample of 605 spectroscopic redshifts with I_{AB} 0.9 and bright galaxies showing a strongly decreasing LF slope alpha=+0.55 pm 0.21, and 32% of blue (B-I)_{AB}<0.9 and more compact galaxies which populate the LF faint-end. We observe that red bulge-dominated galaxies are already well in place at z~1, but the volume density of this population is increasing by a factor 2.7 between z~1 and z~0.6. It may be related to the building-up of massive elliptical galaxies in the hierarchical scenario. In addition, we observe that the blue bulge-dominated population is dimming by 0.7 magnitude between z~1 and z~0.6. Galaxies in this faint and more compact population could possibly be the progenitors of the local dwarf spheroidal galaxies.


Astronomy and Astrophysics | 2005

The VIMOS VLT deep survey. The evolution of galaxy clustering to z 2 from first epoch observations

O. Le Fèvre; L. Guzzo; B. Meneux; A. Pollo; A. Cappi; S. Colombi; A. Iovino; C. Marinoni; H. J. McCracken; R. Scaramella; D. Bottini; B. Garilli; V. Le Brun; D. Maccagni; J. P. Picat; M. Scodeggio; L. Tresse; G. Vettolani; A. Zanichelli; C. Adami; M. Arnaboldi; S. Arnouts; S. Bardelli; J. Blaizot; M. Bolzonella; S. Charlot; P. Ciliegi; T. Contini; Sylvie Foucaud; P. Franzetti

This paper presents the evolution of the clustering of the main population of galaxies from z=2.1 to z=0.2, from the first epoch VIMOS VLT Deep Survey (VVDS), a magnitude limited sample with 17.5<=I_{AB}<=24. We have computed the correlation functions xi(r_p,pi) and w_p(r_p), and the correlation length r_0(z), for the VVDS-02h and VVDS-CDFS fields, for a total of 7155 galaxies in a 0.61deg^2 area. We find that the correlation length in this sample stays roughly constant from z=0.5 to z=1.1, with r_0(z)=2.5-2.8 h^{-1} Mpc (comoving), for galaxies comparable in luminosity to the local 2dFGRS and SDSS samples, indicating that the amplitude of the correlation function was ~2.5x lower at z~1 than observed locally. The correlation length in our lowest redshift bin z=[0.2,0.5] is r_0=2.4 h^{-1} Mpc, lower than for any other population at the same redshift, indicating the low clustering of very low luminosity galaxies, 1.5 magnitudes fainter than in the 2dFGRS or SDSS. The correlation length is increasing to r_0~3.0 h^{-1} Mpc at higher redshifts z=[1.3,2.1], as we are observing increasingly brighter galaxies, comparable to galaxies with MB_AB=-20.5 locally. We compare our measurement to the DEEP2 measurements in the range z=[0.7,1.35] citep{coil} on the population selected applying the same magnitude and color selection criteria as in their survey, and find comparable results. The slowly varying clustering of VVDS galaxies as redshift increases is markedly different from the predicted evolution of the clustering of dark matter, indicating that bright galaxies are already tracing the large scale structures emerging from the dark matter distribution 9-10 billion years ago, a supporting evidence for a strong evolution of the galaxy vs. dark matter bias.


Publications of the Astronomical Society of the Pacific | 2005

The Very Large Telescope Visible Multi-Object Spectrograph Mask Preparation Software

D. Bottini; B. Garilli; D. Maccagni; L. Tresse; V. Le Brun; O. Le Fèvre; J. P. Picat; R. Scaramella; M. Scodeggio; G. Vettolani; Alessandra Zanichelli; C. Adami; Magda Arnaboldi; Stephane Arnouts; S. Bardelli; M. Bolzonella; A. Cappi; S. Charlot; P. Ciliegi; T. Contini; Sylvie Foucaud; P. Franzetti; L. Guzzo; O. Ilbert; A. Iovino; H. J. McCracken; B. Marano; Christian Marinoni; G. Mathez; A. Mazure

VIMOS (Visible Multi-Object Spectrograph) is a multiobject imaging spectrograph installed at the VLT (Very large Telescope) at the ESO (European Southern Observatory) Paranal Observatory that is especially suited for survey work. VIMOS is characterized by its very high multiplexing factor: it is possible to take up to 800 spectra with 10 long slits in a single exposure. To fully exploit its multiplexing potential, we designed and implemented a dedicated software tool: the VIMOS Mask Preparation Software (VMMPS), which allows the astronomer to select the objects to be spectroscopically observed, and provides for automatic slit positioning and slit number maximization within the instrumental constraints. The output of VMMPS is used to manufacture the slit masks to be mounted in the instrument for spectroscopic observations.

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