The Infrared Universe as Seen by Spitzer and Beyond. February 20, 2007

Similar documents
The Scientific Legacy of IRAS A Personal Perspective

IRS Spectroscopy of z~2 Galaxies

Formation and Evolution of Planetary Systems

Mike Jura and IRAS, SIRTF, and Spitzer

Mid-IR and Far-IR Spectroscopic Measurements & Variability. Kate Su (University of Arizona)

arxiv: v1 [astro-ph.co] 27 May 2009

Debris Disks from Spitzer to Herschel and Beyond. G. H. Rieke, K. Y. L. Su, et al. Steward Observatory The University of Arizona

IRS SPECTRA OF SOLAR-TYPE STARS: A SEARCH FOR ASTEROID BELT ANALOGS

Star Formation. Spitzer Key Contributions to Date

SPITZER SPACE TELESCOPE

Star Formation. Answering Fundamental Questions During the Spitzer Warm Mission Phase

Probing silicates in disks around T Tauri stars with Spitzer IRS

The King's University College Astronomy 201 Mid-Term Exam Solutions

The Universe o. Galaxies. The Universe of. Galaxies. Ajit Kembhavi IUCAA

High Redshift Universe

Unveiling the Birth of Stars and Galaxies

Interstellar Medium and Star Birth

(Astronomy for Dummies) remark : apparently I spent more than 1 hr giving this lecture

Dust & Gas around Stars Young & Old, Near & Far

The Porcupine Survey: Spitzer Warm Mission Followup of WISE Brown Dwarf Candidates

Planet Detection. AST 105 Intro Astronomy The Solar System

Multi-wavelength Surveys for AGN & AGN Variability. Vicki Sarajedini University of Florida

The Dusty Universe. Joe Weingartner George Mason University Dept of Physics and Astronomy

AST 101 INTRODUCTION TO ASTRONOMY SPRING MIDTERM EXAM 2 TEST VERSION 1 ANSWERS

29:50 Stars, Galaxies, and the Universe Final Exam December 13, 2010 Form A

Searching for Other Worlds

Part III: Circumstellar Properties of Intermediate-Age PMS Stars

Debris Disks: A Brief Observational History Thomas Oberst April 19, 2006 A671

Warm Molecular Hydrogen at high redshift with JWST

Introduction to the Universe. What makes up the Universe?

Astronomy 1504 Section 10 Final Exam Version 1 May 6, 1999

Number of Stars: 100 billion (10 11 ) Mass : 5 x Solar masses. Size of Disk: 100,000 Light Years (30 kpc)

The Interstellar Medium in Galaxies: SOFIA Science

Dusty star-forming galaxies at high redshift (part 5)

LECTURE 1: Introduction to Galaxies. The Milky Way on a clear night

OPTION E, ASTROPHYSICS TEST REVIEW

The Birth Of Stars. How do stars form from the interstellar medium Where does star formation take place How do we induce star formation

Clicker Question: Clicker Question: What is the expected lifetime for a G2 star (one just like our Sun)?

Introduction to the Universe

Midterm Results. The Milky Way in the Infrared. The Milk Way from Above (artist conception) 3/2/10

The Interstellar Medium. Papillon Nebula. Neutral Hydrogen Clouds. Interstellar Gas. The remaining 1% exists as interstellar grains or

The Space InfraRed Telescope Facility - SIRTF SIRTF an Overview

Extrasolar Planets: Molecules and Disks

Spitzer Space Telescope Current Status and Future Plans

Beyond the Visible -- Exploring the Infrared Universe

Observations of exozodiacal disks. Jean-Charles Augereau LAOG, Grenoble, France. ISSI team: Exozodiacal dust diks and Darwin. Cambridge, August 2009

Feeding the Beast. Chris Impey (University of Arizona)

Interstellar Dust and Gas

The distance modulus in the presence of absorption is given by

OPTION E, ASTROPHYSICS TEST REVIEW

Astronomy 405 Solar System and ISM

Dust. The four letter word in astrophysics. Interstellar Emission

29:50 Stars, Galaxies, and the Universe Second Hour Exam November 10, 2010 Form A

Interstellar Dust and Gas

Lecture 9. Quasars, Active Galaxies and AGN

Chapter 19 Galaxies. Hubble Ultra Deep Field: Each dot is a galaxy of stars. More distant, further into the past. halo

Lecture 26 Low-Mass Young Stellar Objects

Astronomy 102: Stars and Galaxies Examination 3 Review Problems

Lecture 14: Other Galaxies A2020 Prof. Tom Megeath. The Milky Way in the Infrared 3/17/10. NGC 7331: the Milky Way s Twins. Spiral Galaxy bulge halo

Chapter 10 The Interstellar Medium

Ch. 25 In-Class Notes: Beyond Our Solar System

Our Galaxy. We are located in the disk of our galaxy and this is why the disk appears as a band of stars across the sky.

13 - EXTRASOLAR PLANETS

Paul Broberg Ast 4001 Dec. 10, 2007

Introduction The Role of Astronomy p. 3 Astronomical Objects of Research p. 4 The Scale of the Universe p. 7 Spherical Astronomy Spherical

Galaxies & Introduction to Cosmology

Chapter 17. Active Galaxies and Supermassive Black Holes

Stellar Life Cycle in Giant Galactic Nebula NGC 3603

Stellar Life Cycle in Giant Galactic Nebula NGC edited by David L. Alles Western Washington University

Transneptunian objects. Minor bodies in the outer Solar System. Transneptunian objects

Chapter 15 Star Birth. Star-Forming Clouds. Stars form in dark clouds of dusty gas in interstellar space

The Fomalhaut Debris Disk

Astro Fall 2012 Lecture 8. T. Howard

Part two of a year-long introduction to astrophysics:

Galaxies and the expansion of the Universe

Foundations of Astrophysics

This Week in Astronomy

Student Guide From Molecular Cores to Stars

Introduction to SDSS -instruments, survey strategy, etc

Galaxies. Galaxy Diversity. Galaxies, AGN and Quasars. Physics 113 Goderya

Structure of the Milky Way. Structure of the Milky Way. The Milky Way

Energy. mosquito lands on your arm = 1 erg. Firecracker = 5 x 10 9 ergs. 1 stick of dynamite = 2 x ergs. 1 ton of TNT = 4 x ergs

Exoplanetary Atmospheres: Temperature Structure of Irradiated Planets. PHY 688, Lecture 23 Mar 20, 2009

2018 TIARA Summer School Origins of the Solar System. Observations and Modelling of Debris Disks. J.P. Marshall (ASIAA) Wednesday 18 th July 2018

The Cosmological Redshift. Cepheid Variables. Hubble s Diagram

Placing Our Solar System in Context: [A 12 step program to learn to accept disk evolution]

Universe Now. 9. Interstellar matter and star clusters

The Milky Way Galaxy and Interstellar Medium

Circumstellar disks The MIDI view. Sebastian Wolf Kiel University, Germany

Learning Objectives: Chapter 13, Part 1: Lower Main Sequence Stars. AST 2010: Chapter 13. AST 2010 Descriptive Astronomy

Raven Eyes Elliptical Galaxies and Star Clusters. T. J. Davidge November 24, 2015

The Protostellar Luminosity Function

Young stellar objects and their environment

Benefits of Infrared. The Spitzer Space Telescope. Instruments/Components of Spitzer. Cryostat. Infrared Telescope

STAR FORMATION (Ch. 19)

Exploring ISM dust with IRSIS. Emmanuel DARTOIS IAS-CNRS

Chapter 5: Telescopes

Nearby Universe: Rapporteur

Chapter 23 The Milky Way Galaxy Pearson Education, Inc.

Deep Surveys or How We Learn About the Early Universe When We Can t Measure All that Would Be Nice!

Transcription:

The Infrared Universe as Seen by Spitzer and Beyond The Holly Berry Cluster [NOT the Halle Berry cluster] in Serpens February 20, 2007 Presented to the Herschel Open Time Key Project Workshop Michael Werner, Spitzer Project Scientist JPL/Caltech

The Holly Berry Cluster in Serpens

Candidate Young (Sub-)stellar Object in a Starless Core L1014

Detailed Spitzer Studies of Nearby Galaxies Like M81 Inform Interpretation of Deep Surveys

Mipsgal and Glimpse Images of a 20 Degree Swath of the Galactic Plane 8UM 24UM 70UM

Vega Fomalhaut IRAS and ISO set the stage for Spitzer studies of debris disks, important signposts of planetary system formation.

70um Images of Vega and Fomalhaut show strikingly different structure. Debris disks are not one size fits all.

Circumstellar dust around main sequence A stars varies stochastically with time, reminding us that the Earth grew up in a dangerous neighborhood. Image of Fomalhaut Disk

IRS Spectra and 70um photometry extend 24um measurement inward and outward

In IRS data, infrared excess can show either power law or blackbody spectral shape. Power law may extends at least to 70um revealing large amounts of cold Infrared material Excess from at large A stars distances can show either from blackbody the star. {left} At the shortest wavelengths, excess often can be traced down to 10um, probing the asteroidal/habitable zone

The central star of the Helix Nebula, a hot, luminous White Dwarf, shows an infrared excess attributable to a planetary debris disk

Spectral energy distribution of the central star of the Helix, showing infrared excess attributed to a debris disk created by comets and asteroids which survived the formation of the nebula

22Crystalline silicates - from the green sand beaches of Hawaii to the outer solar system to nearby stars and beyond..

Spitzer spectrum of ejecta from Deep Impact event show surprising compositional variety, suggesting that the early solar system was complex and diverse [cf. Stardust]

Crystalline silicates, not present in the ISM of our galaxy, appear in absorption in at least one dozen Ultraluminous Infrared Galaxies

[3.6] [4.5] Stars and Substellar Objects have Equal Disk Fractions (~40%) in Young (4-5 MYr) Clusters IC348 and Cha I These and related studies show: Material in terrestrial planet zone dissipates in ~10 Myr or less Brown dwarfs as low in mass as ~10 Jupiters form by same process as stars [4.5] - [5.8] Disk evolution around brown dwarfs shows start of planet forming process

Spitzer Image of the Orion Molecular Cloud

Spitzer + 2MASS = Thousands of Young Stellar Objects

In what environment do stars typically form? 15% in groups and small clusters In Spitzer surveys of the Orion A, Orion B and Ophiuchus molecular clouds, Spitzer finds the following demographics: 60% in large clusters 25% in relative isolation

Star formation propagates from upper left to lower right in the NGC 1333 cluster in Perseus. Red delineates hydrocabon-rich reflection nebulosity illuminated by main sequence stars Green delineates embedded outflows and earlier stage of star formation

Spitzer 10-20um Spectra of Reflection Nebulae

New 18.9um Emission Feature in NGC7023 anticorrelates with 16.4um PAH feature.could it be C60?

Binary Kuiper Belt Object 1999TC36 has density between 0.3 and 0.8 gm/cm+3, but it is 250 miles in diameter!

Light From Extrasolar Planets The first true spectra of extrasolar planets are just around the corner Spitzer has made first detections of light from extra solar planets by watching drop in infrared radiation as hot Jupiters pass behind the stars they orbit Temperature, albedo, day-night contrast, and perhaps composition of planets can be determined.

Silicate Emission in Type I AGN

Correlation of Silicate Optical Depth and Xray Column Density Probes Circumnuclear Geometry in AGN

Newly Published Silicate-PAH IR-Luminous Galaxy Diagnostic

NeIII and NeV IR Lines Correlate Over Four Orders of Magnitude in Luminosity

Can Spitzer Resolve the 160um Infrared Background? 160 micron simulated sky, observed at different resolutions DIRBE 45 ISO 90 MIPS 45 This prelaunch simulation shows how the improved spatial resolution of Spitzer could identify the sources responsible for the 160um background seen by COBE. Dole et al have now done this!!

Dole et al have stacked 70/160um data at positions of 24um detections to find fainter sources than can be seen separately

Dole suggests that these sources are Luminous Infrared Galaxies at Z~1. Spitzer s IRS can get good spectra of galaxies as distant as Z~3! The results strongly suggest that sources seen by Spitzer account for virtually all of the cosmic infrared background t0 ~200um.

3.5 degrees z = 6.1 Quasar Stern et al 2006 submitted Field T4.5 Brown Dwarf Stern et al 2006 submitted z = 1.41 Galaxy Cluster Stanford et al 2005 ApJ 634 L129 Spitzer/IRAC Shallow Survey 4.5 µm image 8.5 sq degrees N 3 x 30 sec/position E >300,000 sources

FINDING A DISTANT CLUSTER IN A ~5 SECTION OF THE IRAC SHALLOW SURVEY FIELD: Optical Alone START WITH IMAGE IN VISIBLE LIGHT BANDS V,R, I

ADD IRAC 4.5UM BAND AND, VOILA! Brodwin et al. (ApJ, 651, 791) Optical + Mid-IR A CLUSTER WITH Z=1.24

For z>1, emission peak due to stars in galaxies shifts into the IRAC bands

Photometric Redshifts, based on SED rather than true spectrum, suffice to define candidate clusters Vital Stats: σ = 0.101 σ /(1+z) = 0.059 AGES Survey In-house surveys Brodwin et al. (ApJ, 651, 791)

Clusters discovered in Bootes field may greatly increase the number of known high redshift clusters [from red to blue]. AFTER BEFORE Potential Applications Include: Determination of Cosmological Parameters Studies of Evolution of Cluster Galaxies Identification of z>1 Supernovae in Dust-Poor Galaxies

Cluster SN Cosmology Supernovae in cluster galaxies are ideal probes of dark energy. This supernova candidate at z=1.41 is one of the most distant known Reference Image Discovery Image ACS z (F850LP)

Spitzer, Hubble data on Galaxy with Spectroscopic Redshift = 5. 83 Stellar mass 3.4e+10 solar masses; Population age 450 Myr; Age of Universe 983 Myr

Spitzer posed a Cosmic Conundrum by finding very massive galaxies in the early Universe.This caught the fancy of Science News and challenges theories of structure formation

Spitzer Science Team: Mike Werner, Frank Low, George Rieke, Jim Houck, Giovanni Fazio, Mike Jura, Ned Wright, Tom Roellig, Marcia Rieke, Tom Soifer, Bob Gehrz, Dale Cruikshank, Charles Lawrence Spitzer One Slide History 1984 2003