Observing the birth of planets Valentin Christiaens Postdoctoral - - PowerPoint PPT Presentation

▶
observing the birth of planets
SMART_READER_LITE
LIVE PREVIEW

Observing the birth of planets Valentin Christiaens Postdoctoral - - PowerPoint PPT Presentation

Observing the birth of planets Valentin Christiaens Postdoctoral researcher - Monash University University of Melbourne - 17 October 2018 Outline I. Introduction High-contrast imaging of exoplanets Transition disks II. Direct


slide-1
SLIDE 1

Observing the birth of planets

University of Melbourne - 17 October 2018

Valentin Christiaens

Postdoctoral researcher - Monash University

slide-2
SLIDE 2

Outline

❖ I. Introduction ❖ High-contrast imaging of exoplanets ❖ Transition disks ❖ II. Direct search for protoplanets ❖ In thermal-IR ❖ In NIR with an IFS ❖ III. Indirect constraints: spiral arms and hydro-dynamical simulations ❖ IV. Future of the search for protoplanets ❖ V. Conclusions

slide-3
SLIDE 3

Outline

❖ I. Introduction ❖ High-contrast imaging of exoplanets ❖ Transition disks ❖ II. Direct search for protoplanets ❖ In thermal-IR ❖ In NIR with an IFS ❖ III. Indirect constraints: spiral arms and hydro-dynamical simulations ❖ IV. Future of the search for protoplanets ❖ V. Conclusions

slide-4
SLIDE 4

Challenge of high-contrast imaging

  • I. Introduction

“Where’s the firefly?”

Credit: G. Duchêne

slide-5
SLIDE 5

Challenge of high-contrast imaging

  • I. Introduction

Credit: G. Duchêne

slide-6
SLIDE 6

Challenge of high-contrast imaging

  • I. Introduction

Credit: G. Duchêne

slide-7
SLIDE 7

Challenge of high-contrast imaging

AO

❖

2 major hurdles to directly image exoplanets: contrast and angular resolution no AO AO + coronagraph 0.5’’ 0.5’’ 0.5’’ AO + coronagraph Stellar halo subtracted Frames combined … … … 0.5’’ 1) adaptive optics 2) coronagraphy 3) differential imaging

  • I. Introduction

❖

Residual hurdle: (quasi-static) speckles

❖

HCI techniques:

(Mawet+05,Absil+16)

slide-8
SLIDE 8

PSF modeling + differential imaging

Reference star Differential Imaging (RDI)

  • =

Credit: C. Marois

Spectral Differential Imaging (SDI)

Credit: B. Macintosh

  • I. Introduction

Credit: O. Absil

Angular Differential Imaging (ADI)

slide-9
SLIDE 9

Principal component analysis (PCA)

❖

Build an orthogonal basis to reproduce the observed PSFs

❖

Analogy:

  • bs PSF #1

model PSF (100 pcs)

  • bs-model

Male face model built from a basis of female faces PSFs

  • I. Introduction
  • bs PSF #N

…

slide-10
SLIDE 10

Principal component analysis (PCA) + ADI

  • I. Introduction

Credit: C. Gomez

slide-11
SLIDE 11

Exoplanet direct images

  • I. Introduction

Uranus

  • rbit

Keck (Hawaii) Gemini South (Chile) 10m-class telescopes VLT (Chile) Subaru (Hawaii) 2004 2003 2009 2008 2013 2015 2013

slide-12
SLIDE 12

Exoplanet direct images

❖

Directly imaged exoplanets provide invaluable information:

❖

parameter space inaccessible with other techniques

❖

spectrum => Teff, log(g), atmosphere composition

❖

exact orbital architecture of exoplanetary systems

  • I. Introduction

=> constraints on planet formation models

}

Directly Imaged

Mordasini+18 Niche: young giant planets (on wide orbit)

Uranus

  • rbit

2004 2003 2009 2008 2013 2015 2013

slide-13
SLIDE 13

Formation of giant planets

Gravitational instability Core accretion

  • I. Introduction
slide-14
SLIDE 14

Gravitational instability

❖

If

=> gravitational fragmentation

GI condition (Toomre 1964) Cooling condition (Gammie 2001)

Forgan & Rice 2013 Rice+2003

  • I. Introduction

AND

slide-15
SLIDE 15

Observable Obs.

Credit: C. Dullemond

Core accretion

❖

5 main steps: 2) Planetesimal formation? 1) Grain growth 5) Runaway accretion 4) Hydrostatic growth 3) Core formation

  • I. Introduction
slide-16
SLIDE 16

Circumplanetary disk (CPD)?

❖

CPD at the scale of the protoplanetary disk

  • I. Introduction

solid: protoplanet alone dashed: protoplanet + CPD

❖

Expected SED

Eisner 2015 Credit: SNSC Perez+2015

slide-17
SLIDE 17

Where to look for protoplanets?

Molecular cloud Protoplanetary disk (up to a few Myr old) Transition disk (~1-10 Myr old) Debris disk (> 10 Myr old)

  • I. Introduction
slide-18
SLIDE 18

Possible companion signposts in TDs

b) a)

Large cavities+asymmetries

Credit: N. van der Marel

Shadows / Inner Warps

Several mechanisms can induce these disk features…

Spiral arms

  • I. Introduction

Sub-mm continuum (large grains) NIR polarized light (small grains) NIR polarized light (small grains) Sub-mm lines (gas)

but a single one might be enough: the dynamical interaction with embedded companion(s)

slide-19
SLIDE 19

Protoplanet candidates?

  • II. Direct search for protoplanets in TDs - in thermal IR

?

=> First bona fide detection required (as of 6 months ago)

slide-20
SLIDE 20

Outline

❖ I. Introduction ❖ High-contrast imaging of exoplanets ❖ Transition disks ❖ II. Direct search for protoplanets ❖ In thermal-IR ❖ In NIR with an IFS ❖ III. Indirect constraints: spiral arms and hydro-dynamical simulations ❖ IV. Future of the search for protoplanets ❖ V. Conclusions

slide-21
SLIDE 21

Protoplanet candidate MWC 758 b

Keck/NIRC2 (L’-3.8µm) - PCA-ADI

(Reggiani, Christiaens+ 2018)

  • Oct. 2015
  • Oct. 2016

r~0.12’’ (~18au)

❖

BRIGHT! Protoplanet with CPD: 4 MJup accreting at 10-5 MJup yr-1?

(based on models in Zhu 2015)

  • II. Direct search for protoplanets in TDs - in thermal IR

Previous observations r~0.12’’ (~18au)

Benisty+15 Marino+15 IR polar light sub-mm radio

slide-22
SLIDE 22

Integral field spectroscopy

  • II. Direct search for protoplanets in TDs - in NIR

Credit: C. Marois

Spectral Differential Imaging (SDI)

Credit: B. Macintosh

Angular Differential Imaging (ADI)

slide-23
SLIDE 23

Mini-survey of transition disks with VLT/SINFONI

❖

VLT/SINFONI, H+K band (2000 channels in 1.45–2.45 µm)

❖

Targets: 5 transition disks with large gaps and signposts of companion presence

❖

Post-processing using PCA-ADI, -SDI, -ASDI and -ADBI

(Christiaens+ in prep.)

  • II. Direct search for protoplanets in TDs - in NIR

=> At 0.15’’–0.20’’ separation, similar contrast as newer instruments (e.g. VLT/SPHERE)

slide-24
SLIDE 24

Results of the VLT/SINFONI survey: PDS 70

Companion candidate or gap-crossing bridge?

(Christiaens+ 2018b, subm. to MNRAS) Hashimoto+2012 Keppler+2018

0.1’’ 20au 0.1’’ 20au

Polarized light - 1.66 µm Polarized light - 1.2 µm

0.1’’ 20au Disk

Long+2018 Continuum 0.88 mm (Christiaens+ 2018b,

  • subm. to MNRAS)
  • II. Direct search for protoplanets in TDs - in NIR
slide-25
SLIDE 25

PDS 70 b?

(Keppler+ 2018; Müller+2018) Hashimoto+2012 Keppler+2018 Keppler+2018 Müller+2018

0.1’’ 20au 0.1’’ 20au 0.1’’ 20au 0.1’’ 20au

Polarized light - 1.66 µm Polarized light - 1.2 µm PCA-ADI - 2.2 µm m-ADI - 2.2 µm

0.1’’ 20au Disk Protoplanet?

Long+2018 Continuum 0.88 mm Müller+2018

=> 0.2-55 MJup

  • II. Direct search for protoplanets in TDs - in NIR
slide-26
SLIDE 26

❖

First extraction of the medium resolution spectrum of a companion at < 0.1’’

❖

PCA-ADI: detection in ~2000 individual spectral channels, e.g.:

(Christiaens+ 2018a)

Results of the VLT/SINFONI survey: HD 142527

=> Confirmation of first detections in Biller+2012 and Close+2014

  • II. Direct search for protoplanets in TDs - in NIR
slide-27
SLIDE 27

❖

Comparison to a template library

❖

Spectral characterization of the companion

❖

Best-fit template spectrum from SpeX library

=> M2.5 => M2.5 1.0

(Christiaens+ 2018a)

Results of the VLT/SINFONI survey: HD 142527

  • II. Direct search for protoplanets in TDs - in NIR
slide-28
SLIDE 28

❖

Mass and age estimates based on evolutionary tracks in HR diagrams

2900 3000 3100 3200 3300 3400 3500 3600 3700 3800 3900 4000

Teff (K)

2 3 4 5 6 7

H absolute magnitude

0.1 0.2 0.3 0.4 0.5 0.6 0.5 1 2 3 4 5 8 10 a) Evolutionary tracks for different masses (in M) Isochrones (in Myr) Best fit BT-SETTL model alone Best fit BT-SETTL+environment model

2900 3000 3100 3200 3300 3400 3500 3600 3700 3800 3900 4000

Teff (K)

2 3 4 5 6 7

K absolute magnitude

0.1 0.2 0.3 0.4 0.5 0.6 0.5 1 2 3 4 5 8 10 b) Evolutionary tracks for different masses (in M) Isochrones (in Myr) Best fit BT-SETTL model alone Best fit BT-SETTL+environment model

❖

Spectral characterization of the companion

❖

Temperature and surface gravity estimated using BT-SETTL synthetic spectra: Best-fit photospheric model Best-fit model including a hot circum-secondary environment

=> T=3500 100K (Tenvt ~ 1700K) => M~0.35 0.05 MSun; Age~1–3 Myr

It’s a small star... not a planet!

(Christiaens+ 2018a)

Results of the VLT/SINFONI survey: HD 142527

  • II. Direct search for protoplanets in TDs - in NIR
slide-29
SLIDE 29

Outline

❖ I. Introduction ❖ High-contrast imaging of exoplanets ❖ Transition disks ❖ II. Direct search for protoplanets ❖ In thermal-IR ❖ In NIR with an IFS ❖ III. Indirect constraints: spiral arms and hydro-dynamical simulations ❖ IV. Future of the search for protoplanets ❖ V. Conclusions

slide-30
SLIDE 30

Spiral arms in TDs

  • III. Characterization of spiral arms in TDs

❖

Companion-induced density waves?

(Lin & Papaloizou 79, Rafikov 02)

❖

Gravitational instability?

(Durisen+07, Tomida+17)

❖

Stellar flyby?

(Pfalzner+03, Quillen+05)

❖

Shadow-induced spirals?

(Montesinos+16,+18)

slide-31
SLIDE 31

IR spiral arms of HD 142527

(Price+18)

Hydro-dynamical simulations for different orbits of the companion Multi-epoch astrometry of the companion (Lacour+16)

(Biller+12) (Close+14)

Observations: spirals and shadows (Fukagawa+06, Avenhaus+13)

  • III. Characterization of spiral arms

(Christiaens+18a)

slide-32
SLIDE 32

O S

a) b) c) d) e) f) g) h) i) j) k) l) (Price+18)

❖

All features of the disk can be qualitatively interpreted as disk-binary interaction:

❖

mm- and cm-size grains crescent-shape distribution

❖

CO distribution

❖

possible gap-crossing filaments

HD 142527: a resolved case

  • III. Characterization of spiral arms
slide-33
SLIDE 33

❖

Gravitational instability?

❖

Shadows/warp?

❖

Flyby?

❖

Embedded giant planet?

Spiral arms of MWC 758

Observations

(Reggiani, Christiaens+18)

  • III. Characterization of spiral arms

IRDIS (Benisty+15) Keck/NIRC2 (Reggiani, Christiaens+18) L’ (3.8µm) Y (1.0µm) S1 S2 ii S1 S2 S3 b? 2015 2016 ii 2015 L’ (3.8µm)

Origin of the spirals?

2018 0.87mm (ALMA, Dong+18)

slide-34
SLIDE 34

2018 0.87mm (ALMA, Dong+18)

❖

GP in the cavity on circular orbit?

❖

GP in the outer disk?

❖

1 GP in the outer disk and 1 in the cavity?

❖

GP in the cavity on an eccentric orbit?

Spiral arms of MWC 758

(Reggiani, Christiaens+18)

  • III. Characterization of spiral arms

( )

(Reggiani, Christiaens+18) (Dong+15) (Baruteau+ subm.)

Origin of the spirals - embedded giant planet? Observations

IRDIS (Benisty+15) Keck/NIRC2 (Reggiani, Christiaens+18) L’ (3.8µm) Y (1.0µm) S1 S2 ii S1 S2 S3 b? 2015 2016 ii 2015 L’ (3.8µm)

slide-35
SLIDE 35

Outline

❖ I. Introduction ❖ High-contrast imaging of exoplanets ❖ Transition disks ❖ II. Direct search for protoplanets ❖ In thermal-IR ❖ In NIR with an IFS ❖ III. Indirect constraints: spiral arms and hydro-dynamical simulations ❖ IV. Future of the search for protoplanets ❖ V. Conclusions

slide-36
SLIDE 36

Pinte+2018

❖

Channel maps

❖ HD 163296 b?

=> ~2 MJup @ 290 au

Disk kinematics

Perez+15

  • IV. Future of the search for protoplanets

(Perez+15, Pinte+18)

slide-37
SLIDE 37

Machine learning

  • IV. Future of the search for protoplanets

Negative samples (speckle+bkg) Positive samples (companions)

❖ Machine trained with post-processed patches of images: ❖ Comparison to classical post-processing:

Machine learning PCA-ADI

=> 1.0-2.5 mag contrast improvement!

(Gomez Gonzalez+18)

slide-38
SLIDE 38

Future instruments

❖ ELT/METIS (~2025) ❖ JWST (?)

❖

Characterization of protoplanets and young Neptunes far from their star

❖

Confirmation of HD 163296 b?

❖

Imaging and characterization of:

❖

protoplanets (140 pc)

❖

nearby (<10pc) exo-Earths? (Quanz+15)

  • IV. Future of the search for protoplanets

WL: 0.6-28 µm D=6.5m WL: 3-20 µm D=39m

slide-39
SLIDE 39

Take away message

❖

Puzzle of planet formation?

❖

Lot of new results brought with new instrumentation and techniques in the past years.

❖

Are TDs carved by embedded GPs or small stars?

❖

Global multi-wavelength and multi-technique approach required!

DIRECT DETECTION INDIRECT CONSTRAINTS IR polarimetric observations

  • Imaging of disk features (spirals, gap,

asymmetries) Sub-mm observations

  • Continuum => imaging of disk features
  • Gas lines => independent mass estimates

from disk kinematics Hydro-dynamical + RT simulations

  • Reproduction of disk features

=> independent mass and orbit estimates IR HC imaging

  • First detection
  • Flux/color measurement

IR spectroscopy

  • Spectral characterization
  • First estimates of T, M and age
slide-40
SLIDE 40

Transition disks… everywhere

residual fluid in the cavity asymmetric mm-size grain distribution clumps of mm-size grains

Squares with concentric circles (Kandinsky 1913)

Thank you for your attention!