Active Galaxies Chapter 21 Centaurus A. What are Active Galactic Nuclei (AGN)? Galaxies with a source of non-stellar light coming from the nucleus (excessive.

Slides:



Advertisements
Similar presentations
Active Galaxies and Related Objects
Advertisements

Some examples of Type I supernova light curves Narrow range of absolute magnitude at maximum light indicates a good Standard Candle B band absolute magnitude.
Slide 1 Andromeda galaxy M31Milky Way galaxy similar to M31.
“Do I have your attention…?”
1 Galactic Groupings and Active Galactic Nuclei Topics Clusters and superclusters; Giant Elliptical Formation Starburst and other explosive galaxies; Seyferts,
Active Galactic Nuclei Chapter 28 Revised Active Galactic Nuclei Come in several varieties; Starburst Nuclei – Nearby normal galaxies with unusually.
Key points: Active Galactic Nuclei: powerful energy sources in “nuclei” (very center) of some galaxies Main types: Seyferts, radio galaxies and quasars.
Active Galactic Nuclei Astronomy 315 Professor Lee Carkner Lecture 19.
© 2010 Pearson Education, Inc. Chapter 21 Galaxy Evolution.
Galaxies with Active Nuclei Chapter 17. You can imagine galaxies rotating slowly and quietly making new stars as the eons pass, but the nuclei of some.
Galaxies What is a galaxy? How many stars are there in an average galaxy? About how many galaxies are there in the universe? What is the name of our galaxy?
Chapter 25: Quasars and active galaxies Features of quasars Quasars and distant galaxies Seyfert and radio galaxies Active galactic nuclei Supermassive.
Class 25 : Active galactic nuclei Discovery of AGN (3C 273). What are AGN? Radio galaxies. AGN and colliding galaxies.
Active Galaxies PHYS390 Astrophysics Professor Lee Carkner Lecture 22.
Quasars – Unsolved mysteries?
ASTR100 (Spring 2008) Introduction to Astronomy Galaxy Evolution & AGN Prof. D.C. Richardson Sections
Active Galactic Nuclei (or AGN) Seyfert galaxies have very small (unresolved), extremely powerful centers! The strength of the emission lines vary on timescales.
Galaxies and the Foundation of Modern Cosmology III.
Active Galactic Nuclei Ay 16, April 8, AGN DEFINITION PROPERTIES GRAVITATIONAL LENSES BLACK HOLES MODELS.
Quasars and Other Active Galaxies
Galaxies Live in Clusters Hickson Fornax. Coma Virgo.
Most of the power of galaxies come from the stars Almost all nearby galaxies Some galaxies have very bright sources right at the center Can be as bright.
 Galaxies with extremely violent energy release in their nuclei  Active Galactic Nuclei (AGN)  Up to many thousand times more luminous than the entire.
This is the Local Group of galaxies, about 45 galaxies within about 1 Mpc of the Milky Way. Most are dwarf-elliptical or iregular. A distance of one million.
Our goals for learning How did Hubble prove galaxies lie beyond our galaxy? How do we observe the life histories of galaxies? How did galaxies form? Why.
AGN (Continued): Radio properties of AGN I) Basic features of radio morphology II) Observed phenomena Superluminal motion III) Unification schemes.
1 Galaxies The Andromeda Galaxy - nearest galaxy similar to our own. Only 2 million light years away! Galaxies are clouds of millions to hundreds of billions.
Quasars, black holes and galaxy evolution Clive Tadhunter University of Sheffield 3C273.
Lecture 40 Galaxies (continued). Evolution of the Universe. Characteristics of different galaxies Redshifts Unusual Galaxies Chapter 18.6  18.9.
Active Galaxies Definition – –Amount of Energy –Type of Energy Non-thermal Polarized Other characteristics –Emission spectra Hydrogen – Balmer series &
Chapter 15 Normal and Active Galaxies
© 2010 Pearson Education, Inc. Chapter 21 Galaxy Evolution.
Quasars Chapter 17. Topics Quasars –characteristics –what are they? –what is their energy source? –where are they? –how old are they? –interactions of.
January 2nd 2013 Objective Warm-Up
ASTR 113 – 003 Spring 2006 Lecture 11 April 12, 2006 Review (Ch4-5): the Foundation Galaxy (Ch 25-27) Cosmology (Ch28-29) Introduction To Modern Astronomy.
15.4 Quasars and Other Active Galactic Nuclei Our Goals for Learning What are quasars? What is the power source for quasars and other active galactic nuclei?
Active Galaxies and Related Objects. What are Active Galactic Nuclei (AGN)?  Galaxies with a source of non-stellar emission arising in the nucleus (excessive.
Quasi-Stellar Objects (QSOs) and Schmidt’s Realization.
Galaxies with Active Nuclei Chapter 14:. Active Galaxies Galaxies with extremely violent energy release in their nuclei (pl. of nucleus).  “active galactic.
Quasars and Active Galactic Nuclei
Active Galactic Nuclei Chapter 25 Revised Active Galactic Nuclei Come in several varieties; Starburst Nuclei – Nearby normal galaxies with unusually.
Active Galaxies and Supermassive Black Holes Chapter 17.
Quasars and Other Active Galaxies
Active Galactic Nuclei Chapter 26 Revised Active Galactic Nuclei Come in several varieties; Starburst Nuclei – Nearby normal galaxies with unusually.
Copyright © 2010 Pearson Education, Inc. Clicker Questions Chapter 14 The Milky Way Galaxy.
Our Milky Way Galaxy. The Milky Way Almost everything we see in the night sky belongs to the Milky Way. We see most of the Milky Way as a faint band of.
Quasars, Active Galaxies, and Gamma-Ray Bursters Chapter Twenty-Seven.
© 2010 Pearson Education, Inc. Galaxies. © 2010 Pearson Education, Inc. Hubble Deep Field Our deepest images of the universe show a great variety of galaxies,
Chapter 21 Galaxy Evolution Looking Back Through Time Our goals for learning How do we observe the life histories of galaxies? How did galaxies.
Dec 3, 2003Astronomy 100 Fall 2003 Homework due on Friday– 11:50 am Honor credit– need to have those papers soon! THE FINAL IS DECEMBER 15 th : 7-10pm!
Chapter 25 Galaxies and Dark Matter. 25.1Dark Matter in the Universe 25.2Galaxy Collisions 25.3Galaxy Formation and Evolution 25.4Black Holes in Galaxies.
Active Galaxies Galaxies with extremely violent energy release in their nuclei (pl. of nucleus). → “Active Galactic Nuclei” (= AGN) Up to many thousand.
Astronomy 1020 Stellar Astronomy Spring_2016 Day-38.
Universe Tenth Edition Chapter 24 Quasars and Active Galaxies Roger Freedman Robert Geller William Kaufmann III.
Active Galaxies Today’s Lecture: Active Galaxies Quasars Seyfert Galaxies Radio Galaxies Supermassive Black Holes Homework 8: Due today Homework 9: Due.
Galaxies with Active Nuclei
Announcements Grades for third exam are now available on WebCT
Peculiar (colliding) Galaxies and Active Galaxies
Quasars, Active Galaxies, and super-massive black holes
Chapter 21 Galaxy Evolution
Active Galaxies and Related Objects
Active Galaxies and Related Objects
ACTIVE GALAXIES and GALAXY EVOLUTION
Quasars and Active Galactic Nuclei
Note that the following lectures include animations and PowerPoint effects such as fly ins and transitions that require you to be in PowerPoint's Slide.
AGN: Quasars By: Jay Hooper.
Galaxies With Active Nuclei
NOTES: Active Galactic Nuclei (AGN)
Galaxies With Active Nuclei
Presentation transcript:

Active Galaxies Chapter 21 Centaurus A

What are Active Galactic Nuclei (AGN)? Galaxies with a source of non-stellar light coming from the nucleus (excessive ultraviolet, infrared, radio and X-ray light), sometimes showing jets and variability Central Supermassive Black Hole accreting material from surrounding host galaxy (Lynden-Bell 1969) Quasars – luminous (M B <-23) objects with broad emission lines, distant, many are strong radio sources Seyferts – fainter (M B >-23), most identified locally, spiral hosts Sey 1s – broad emission lines (e.g. Hydrogen) Sey 2s – narrow emission lines Radio Galaxies – excess radio emission and jets Starbursts – extreme star-formation in addition to black hole accretion in the nucleus ULIRGS – ultra-luminous infrared galaxies

Quasars (or QSOs) By 1960, several hundred radio sources were cataloged with no obvious optical counterparts (due to poor positional accuracy). In the early 1960’s, positional improvements allowed for the detection of optical counterparts for two radio sources: 3C48 and 3C273. Both sources looked like normal stars – “quasi-stellar objects or QSOs” They appeared bluer than normal stars with strong, broad emission lines.

Maartin Schmidt was the first to recognize that these lines were normal Hydrogen emission lines redshifted by a large amount and indicating high velocities and great distances (according to Hubble’s Law). D = 660 Mpc (2.2 billion light years) for 3C Mpc (4.4 billion light years) for 3C48. The large distances implied large luminosities: L = 20 trillion L sun (or 1000 Milky Way’s) for 3C273 These point-like sources were the most luminous objects that had been found in the Universe at that time! Within ~2 years, quasars were discovered that were 10 billion light years away and L  100 trillion L sun. The most distant quasar known today is 12.7 billion light years away! Quasars - Discovery

The bright emission (light) from quasars is actually embedded in a “host galaxy” difficult to detect due to the brightness of nuclear quasar emission appear to be a mixture of galaxy types - from disturbed galaxies to normal E’s and early type spirals – brightest QSOs tend to be in E’s Quasars – Host Galaxies

Trump et al Some quasar spectra not only show broad emission lines but also broad absorption lines (BAL) Quasars: normal quasars viewed at angle along the line-of-sight of intervening, fast-moving material. Quasars – Broad Absorption lines

QSO spectra also reveal some absorption lines not associated with the quasar at all. These narrow absorption lines are caused by intervening galaxies (halos) between us and the QSO. Redshifts of the material will be equal to or less than the QSO. Lyman alpha is the lowest excitation level for Hydrogen gas. Quasars – Lyman Alpha Forest

First identified by Carl Seyfert in 1943 Defined class based on observational characteristics: Almost all the luminosity comes from a small (unresolved) region at the center of the galaxy – the galactic nucleus. NGC 4151 Nuclei fainter than QSOs – generally L ~ 10 8 to L sun Unusual spectra Light from the nucleus is variable on timescales of months Seyfert Galaxies

Seyfert 1s: Broad and narrow lines (BLAGNs) Seyfert 2s: Only narrow lines (NLAGNs) Seyfert galaxy spectra fall into two classes Broad emission line spectra (Seyfert type 1; similar to quasars) Narrow emission line spectra (Seyfert type 2) Seyfert Galaxies - spectra

Seyfert 2 galaxies (Narrow-Line AGN) can be differentiated from normal emission line galaxies through the flux ratios of certain emission lines. shape of the underlying ionizing source determines how many photons are available to produce particular emission lines. Kewley et al 2006 – red line shows extreme starburst, dashed line separates Active galaxies (AGN/Seyfert) from normal, star-forming galaxies (HII) Seyfert Galaxies - spectra

Variability occurs at most wavelengths - X-rays through radio This indicates that the fluctuations are originating from a very tiny object. QSOs and Seyfert nuclei have long been recognized as variable Optical flux changes occur on timescales of months to years Cause of variability? – instabilities in accretion disk, SN or starbursts, microlensing….. Quasar light curve ~25 years Seyfert light curve over ~11 months Hawkins 2002 Seyfert Galaxies - variability

Why does rapid variability indicate small physical size of the emitting object? Time Delay =  t = R Sun / c 700,000 km / 300,000 km/s = 2.3 sec Consider an object like the Sun. Any instantaneous flash would appear “blurred” in time by  t = R Sun / c. observer R Sun Seyfert continuum luminosity varies significantly in less than a year (some variation occurs on timescales of days or weeks). This implies an emitting source less than a few light-weeks across!

BL Lac objects Bright radio sources Variability faster and higher amplitude than normal quasars and Seyferts Look like QSOs with extremely bright nucleus and faint fuzz “host” galaxy surrounding Rapid and strong variability “floods” emission lines so that they can’t be detected Variability light curve indicates emitting region less than one light- day across (or ~200 AU) Spectrum Light Curve

Which AGN are the brightest? QSOs (Quasi-Stellar Objects) or quasars Which AGN are fainter than the QSOs? Seyferts What’s the difference between Type 1 and 2 Seyferts? Type 1 have broad & narrow emission lines, Type 2 only have narrow emission lines Which AGN are the most variable? BL Lac objects Which AGN generally have high redshifts (are at great distances)? QSOs Which AGN are brightest at radio wavelengths? Radio galaxies of course!

Radio Galaxies Emit most light at radio wavelengths (~10 7 to L sun ) Radio emission is highly polarized synchrotron radiation Morphology can be extended or compact Host galaxies are generally Ellipticals Radio morphology first classified by Fanaroff & Riley (1974) FR I: less luminous, 2-sided jets brightest closest to core and dominate over radio lobes  compact FR II: more luminous, edge-brightened radio lobes dominate over 1-sided jet (due to Doppler effect “brightening” of approaching jet over receding jet)  extended

FR I - 3C 47FR II - 3C 449 Radio Galaxies

FR II radio galaxies: most emission comes from lobes Radio “Light” Centaurus A Visible Light 0.8 Mpc The radio lobes span about 10 degrees on the sky! Lobes consist of material ejected from the nucleus. Radio Galaxies

Radio image of the FR II radio galaxy Cygnus A. The lobes occur where the jets plow into intracluster gas. ~1 Mpc Radio Galaxies

This giant elliptical (E1) galaxy is ~100 Kpc across. Radio jet is visible in radio, optical and X-ray light Visible image of the FR I radio galaxy M87. FR I radio galaxy: most of the energy comes from a small nucleus with a halo of weaker emission around the nucleus and jets close to nucleus. Radio Galaxies

Close-up view of the jet in M87 at radio wavelengths. ~2 kpc galaxy nucleus, i.e. the radio core The jet is apparently a series of distinct “blobs”, ejected by the galaxy nucleus, and moving at up to half the speed of light. Radio Galaxies

Some radio “blobs” in jets appear to move faster than the speed of light – superluminal For a blob moving distance r below: x = r cos , y = r sin  and t = r/v object moving at v Light from P takes x/c less time to reach us than light emitted from O. Time the observer sees for object to travel from O to P is t app = t - x/c t app = (r/v) - (r/c) cos  t app = (r/v) (1 -  cos  ) Apparent velocity across sky v app = y/t app v app = (v sin  )/(1 -  cos  ) radio jet in 3C273 Radio Galaxies: Superluminal Expansion

v app = (v sin  )/(1 -  cos  ) For v << c,  is close to 0 and v app = v sin  For v close to c, v app can be much more than v and even greater than c Substitute this into the above equation gives (v app /v) max = 1/(1-  2 ) 1/2 What is the maximum apparent velocity that could be observed for a “blob” moving at 0.95c? What is the angle required to get this velocity? To see this, find the angle that gives the maximum v app for a given v by dividing this equation by v, differentiate wrt theta and set equal to zero Radio Galaxies: Superluminal Expansion

Radio Galaxies: M87 Mini-spiral at the center of the galaxy Radius of central disk: r = 16 pc = 4.9 x m Inclination of disk: i = 42 degrees Doppler shifted spectrum reveals rotation rate: v r = v c sin i = 460 km/s So that v c = 690 km/s M BH = v c 2 r / G = 4 x kg = 2 x 10 9 M sun

ULIRGs (ultra luminous IR galaxy) - Starburst or AGN? A starburst galaxy: May result from a galaxy collision/merger Gas streams converge from different directions causing shocks which compress material and trigger star formation Gas which loses enough angular momentum falls into the galaxy center  bar formation  funnels more gas inward  violent star formation near center of disk and further out Nuclear close-up (HST) of NGC 1808 starburst galaxy. Galaxy has barred-spiral morphology. ULIRGS are: Galaxies that emit most of their light in the IR - L IR > L sun more common beyond z > 1 nearly all are undergoing mergers IR light is a combination of dust reprocessed AGN emission and star formation Some AGN may appear as ULIRGs during different stages of galaxy evolution.

Obscuring Torus Dusty structure that blocks view of inner region Broad Line Region dense (10 9 /cm 3 ) gas clouds in area a few light- days to months across outer edge defined by dust sublimation radius (1500K) Narrow Line Region less dense (10 3 /cm 3 ) gas clouds located 10 to 1000 lyrs out part of the host galaxy ISM near galaxy center Central Black Hole R s = 3x10 11 m or 2 AU for 10 8 M sun Masses of a million to a billion M sun Accretion disk UV/visible light from region m (X- rays probably come from a corona that surrounds the disk) Jets – ionized gas from accretion disk spirals along magnetic field lines away from the disk Structure of AGNs and Unified Theory

Observer is looking into the center of the accretion disk, viewing motions of gas near blackhole - sees broad emission lines Seyfert 2 Quasar/Seyfert 1 Observer is looking at blackhole “edge-on” through the surrounding dusty torus - does not see broad emission lines produced by gas near BH /BL Lac Observer sees mostly synchrotron emission from jet - highly variable with hardly any emission lines/absorption lines

What Powers Active Galactic Nuclei?? (1)A compact central black hole provides a very intense gravitational field. M BH = M sun (2)Infalling gas forms an accretion disk around the black hole. (3) As the gas spirals inward, friction heats it to extremely high temperatures (T>10 4 K); emission from the accretion disk at different radii accounts for optical thru soft X-ray continuum. (4) Some of the gas is driven out into jets focused by the magnetic field.

Before entering the black hole, some fraction of the mass is converted into energy. Matter is heated to high temps by dissipation in the accretion disk and radiates away its gravitational potential energy. BH radius is R s =2GM bh /c 2 = 0.25 M 8 light hours. What energy is available (via gravitational potential energy) for a mass m falling from far away to the R s ? How efficient is the energy production? E max = GM bh m/R s Substituting equation for R s E max = (1/2)mc 2 Half the rest energy of the infalling mass is converted to kinetic energy. If the mass is decelerated (via the accretion disk), KE can be converted to thermal energy and then photon energy. E phot = ηmc 2 where η is efficiency and should be ≤ 0.5 The efficiency of this conversion is typically ~10% (η=0.1) for AGN.

Since the luminosity is dE/dt, then the AGN luminosity is L = η(dm/dt)c 2 If we know an AGN’s luminosity, we can deduce infall rate Example:MW “AGN” luminosity is1000 L sun  implying dm/dt = M sun per year) What would be the luminosity if the infall rate (dm/dt) is one solar mass per year with 10% efficiency? L = η(dm/dt)c 2 = (0.1)(2 x g / 3.15 x 10 7 s)(3 x cm/s) 2 = 6 x ergs/s = 1.6 x L sun  100 times brighter than the entire Milky Way Galaxy

The Eddington Limit – the maximum L for a given black hole mass (any higher and radiation pressure will blow away surrounding gas!) Force caused by outward flow of photons balances gravitational force of infalling matter (assuming pure ionized H gas) σ e L / (4πr 2 c) = GM bh m p / r 2 (eq ) L E = 4πcGM bh m p /σ e = 3.3x10 12 L  (M bh /10 8 M  ) If L is greater than L E, ionized gas will be accelerated outward and accretion will cease. This leads to a maximum accretion rate for black holes: M E = L E / ηc 2 = 2M  /yr (M bh /10 8 M  ) (0.1/η) The Eddington ratio is then m = M / M E = L bol /L E where m = dm/dt.... So...can you just shovel in mass at higher and higher rates to create a superluminous AGN?.

(Gebhardt et al. 2000; Ferrarese & Merritt 2000) Black Hole Mass - Bulge Mass Relation Evidence for SMBHs has been found in most galaxies with a significant spheroidal component. It is now generally believed that all galaxies contain SMBHs. A clear relationship between the mass of the spheroidal component of a host galaxy and the black hole mass has been found. indicates connection between galaxy formation (star formation) and growth/evolution of central black hole

Active Galaxies as part of Galaxy Evolution Additional mergers and depletion of fuel may result in radio galaxies and Seyfert galaxies. Further fuel depletion results in a normal galaxy with a dormant black hole at the nucleus. As small galaxies merge to form larger ones, black holes may form at the nucleus (ULIRG stage?) With plenty of fuel available early on, the galaxy light is dominated by emission of the black hole (Quasar). Feedback from AGN radiation may squelch star formation in the host galaxy – setting spheriodal component size Quasars are relatively short-lived phenomena – only need 20 Myr to grow largest BHs known Number density of quasars peaked when universe was about 3 Gyr old Where do those BH’s go? Become dormant – go into “hibernation”?

Hopkins et al A closer look at how the AGN phase may be the result of galaxy mergers Active Galaxies as part of Galaxy Evolution