PLACEHOLDER — NOT PART OF THE TALK
With JWST, ALMA and the VLA we can now resolve individual forming stars, their outflows and even their ice chemistry across the Milky Way’s Central Molecular Zone — and the clouds there turn out not to be alike.
That census still covers only a small fraction of the CMZ; the JWST Treasury survey and Roman will finish it and, for the first time, place these clouds in three dimensions.
What the audience will actually hear, read off the slide order — see the comment above for where this differs from the intended narrative.
Slide 0 - Instructions:
  • To move slides, use the arrow keys or swipe on your mobile device
  • To see the speaker notes, press "s"
  • To go to full screen, press "f"
  • To print as PDF, go to this URL: ?print-pdf, then print.
  • To get a PDF with speaker notes, add ?print-pdf&showNotes=true to the URL.

What sets star and planet formation in the Galaxy’s richest environments across cosmic time

  • Postdocs: Nazar Budaiev (2026-), Theo Richardson (2025-2026), Miriam Garcia Santa Maria (2024-2025), Allison Towner (2020-2023)
  • PhD: Desmond Jeff (2025), Theo Richardson (2025), Alyssa Bulatek (2026), Nazar Budaiev (2026), Savannah Gramze (2027), Taehwa Yoo (2028)
  • Undergrad/postbac: Derod Deal, Aden Dawson, Ethan Bhula, Mario Antonio Daley, Prashant Sikhdar, Avery Lacon, Laya Damaraju
  • Supported by NSF 2008101, 2206511, CAREER 2142300, STSCI 1905, 2221, 3523, 5365, 6151, 10662, 10678, Roman 19008, 19012, Astropy
Slides available at https://keflavich.github.io/talks/colloquium_sep2026_granada.html or from my webpage →talks

The Galactic Center is where we study cosmologically relevant conditions at planet-forming scales

  • Part 1: We see star formation in the CMZ, but it's different.
  • Part 2: CMZ clouds are icier and dustier
  • Part 3: Future: JWST-GC, Roman, tomography
?
What happens to
proto-stellar discs
in these extreme
environments?
Proplyds: discs photoevaporated
Accretion-driven truncation
Wijnen+ 2017; Otter+ 2021
Madau & Dickinson 2014

The CMZ

$\sim10^8$ M$_\odot$ of gas in $\sim200$ pc, 10% of Galactic star formation
$>\frac{1}{3}$ of CMZ SF is in bound clusters (3-8$\times$ local)
$\sim$50% of CMZ SF occurs in the Sgr B2 cloud.

The Central Molecular Zone of the Galaxy represents one extreme of star forming conditions in the Galaxy

Sgr B2 with JWST/ NIRCam MIRI on MEERKAT: Ionized gas shows HII regions (OB stars)
Protoclusters
MIRI reveals deeply embedded feedback sources
MIRI 25 micron shows the outflow:
first IR light from within Sgr B2 N;
$\dot{M} \sim 10^{-1} \mathrm{~M}_\odot \mathrm{~yr}^{-1}$, $M_{cl} \sim 3\times10^3 \mathrm{M}_\odot$
Sgr B2 N Accretion + Outflow
Budaiev+ 2025: H$_2$O masers & SiO outflow
Schwörer+ 2019: Accretion along filaments: \(\sim0.1~\mathrm{M}_\odot \mathrm{yr}^{-1}\)
Massive clusters account for 30-40% of the star formation
A dark, dusty swath hides ongoing unclustered SF
Sgr B2 Deep South — extended star formation with JWST
Sgr B2 Deep South — mostly seen by ALMA
NIRCam starless
F480M (hot dust &/or CO+H2) Brα Paα
ALMA 1.3 mm continuum
contour: ALMA SiO 5–4
Sgr B2 Deep South — Bipolar flow; 5$\mu$m from the cavity?
NIRCam starless
F480M (hot dust &/or CO+H2)Brα Paα
ALMA 1.3 mm continuum
contour: ALMA SiO 5–4
Sgr B2 Deep South — DS9, a hot core containing a massive star, along a thin filament
NIRCam starless
F480M (hot dust &/or CO+H2) Brα Paα
ALMA 1.3 mm continuum
contour: ALMA SiO 5–4
Zooming back out to the overview...
JWST finds the extended, older star formation
ALMA finds the embedded, ongoing star formation
JWST 4.8μm excess sources (Budaiev+ 2026)
ALMA 3 mm continuum sources (Ginsburg+ 2018, Budaiev+ 2024, Daley+ in prep)
JWST 4.8μm excess source density
There is an overall asymmetry in the star formation seen both in JWST (HII regions) and ALMA (embedded YSOs)
JWST shows the transition is sharp
What ALMA sees, JWST doesn't: 3/700 point source matches
(HII regions, outflow cavities do match)
  • Star formation is ongoing
  • JWST & ALMA see different phases - complementary
  • Sgr B2 asymmetry is compression/collision
Zooming back out to the Galactic Center as seen by ACES....
JWST has observed much of the Galactic Center
The Galactic Center in the mid-infrared (Spitzer/GLIMPSE)
…and in the radio
…with ACES + MUSTANG on top
Sgr B2: >500 YSOs w/ALMA
~100 HII regions JWST+ALMA+VLA
Ginsburg+ 2018, Jeff+ 2024, Budaiev+ 2024, 2025, 2026, Daley+ in prep
Cloud E/F: $10^5\mathrm{~M}_\odot$ gas, 1? YSO
Houghton, Esteve, Gutermuth, Longmore, Huard, Kauffmann subm.
Clouds C & D: $10^5\mathrm{~M}_\odot$ gas, one small “cluster” of 5–10 YSOs each
Gramze+ in prep
The Brick: $10^5\mathrm{~M}_\odot$ gas, about 10 YSOs, one above 5 M$_\odot$
Walker+ 2021
Quintuplet & Arches: no gas, few-Myr old, >10$^4$ M$_\odot$ clusters
Hosek+ 2019
Sgr C: $10^4\mathrm{~M}_\odot$ gas, ~5 IR–ALMA matched YSOs,
~40 inferred from outflows
Crowe+ 2023, Lu+ 2021
Star formation in the CMZ does not follow the local relation
What is different about the CMZ?
JWST has observed the CMZ dust ridge
JWST's colors show ice
JWST's colors show ice
dust ice

The Dust ridge: Cloud A (brick), C, D

All have different ice-to-dust ratios
D
C
A
Gramze+ (subm 2026)
Cloud D
Ice is everywhere
But it's different between clouds
3 kpc filament
Brick Head
Gramze+ (subm 2026)
Gramze+ (subm 2026)
Slope changes imply chemical differences between clouds within the CMZ
CO/Water ratio?
OCN / Ammonium salt abundance?
TBD: Ashby+ NIRSPEC 6927
Gramze+ (subm 2026)
We know stars are forming in the CMZ, but we've measured only a small portion
The JWST Galactic Center Treasury Survey (GO 10678) — NIRCam: running now
  • Stellar populations: star formation history
  • Extinction maps: where is the gas?
  • YSO candidates
■ observed (12)   ■ scheduled (62)   ■ delayed (1)   ■ awaiting a date (64)   status 2026-09-12
…and the same survey with MIRI
  • YSO candidates
  • PAH feedback maps
■ observed (12)   ■ scheduled (62)   ■ delayed (1)   ■ awaiting a date (64)   status 2026-09-12
Progress:
  • 38 of 139 pointings observed
  • F212N + F480M, opened at $\ell = +0.7$
  • a second block has opened at Sgr C
□ observed — NIRCam F212N/F480M   mosaic of 2026-09-15, still growing
…and the MIRI parallel, ~6′ to the east
  • F770W: PAH emission, warm dust
□ observed — MIRI F770W   mosaic of 2026-09-15, still growing
Roman covers the CMZ & more
  • Astrometry!
  • Variability!
  • $\rightarrow$ 3D tomography
□ Roman GC hourly-cadence   □ Roman GBTDS   PA 90.6° (spring window)
We have had access to position-velocity for a long time, but we still argue about position
Dani Lipman, Robin Tress, Mattia Sormani, et al — inner-Galaxy simulation, gas color-tagged by its true 3D position: face-on (top left), as we see it on the sky (bottom left), and in lv (right)
Cloud Tomography with Stellar Proper Motions
Stellar orbital motion is measurable w/JWST + Roman
Clouds block and redden stars behind and within
The measurable stellar density with Roman is enough to achieve ~10 pc resolution
Interactive version; orbits after Nieuwmunster+ 2024; method after Vasini+ 2026
Cloud location inversion: ~10 pc resolution along the line of sight
~104 stars → ~10 pc accuracy.

Observed density ~500 stars pc−2 at mK<19 gives ~10–20 pc
The GC is the laboratory where cosmologically common conditions are observed at planetary-system forming scales.
STOP HERE
The cometary hypothesis: the molecules for life are built in the cloud
Complex organics form on icy grains in cold molecular clouds
…and survive the collapse into the protoplanetary disc
…where they are locked into comets and asteroids
…which deliver them, already made, to a young planet
Figure: V. M. Rivilla
…but the first link is not the same in every cloud
Ice is everywhere in the CMZ — but its composition is not the same from cloud to cloud.
Different CO/H2O, different OCN: a different mix of simple precursors goes into the disc.
If the CMZ is our local stand-in for cosmic-noon conditions, then the inventory delivered to planets there is not the Solar-neighbourhood one.
Gramze+ (subm 2026)
Figure: V. M. Rivilla
Why Roman: proper motions give us the third dimension
We see the CMZ in projection.

Orbital models disagree about what is in front of what — and the gas kinematics alone cannot settle it.
Roman GO 19008 (Ginsburg+) — CMZ FUZ
Extinction rises with distance — except where clouds intervene
  • AV to each star is a running total along the line of sight
  • A cloud imprints a step in AV at its distance
  • Map enough stars and you can invert AVd
Roman GO 19008 (Ginsburg+) — CMZ FUZ
Feasible in the first two seasons, with archival first epochs
  • Roman – HST (Paα): ~0.1 mas/yr, Δt ~ 19 yr
  • Roman – GALACTICNUCLEUS: ~0.3 mas/yr, Δt ~ 5–12 yr
  • Roman – VVV: ~0.5 mas/yr, Δt ~ 17 yr
  • Roman – JWST (GO 10678): ~0.5–1 mas/yr, Δt ~ 2–5 yr
  • Archival epochs give coarse (~50 pc) tomography immediately; Roman-internal PMs reach the ~10 pc goal by season two
Roman GO 19008 (Ginsburg+) — CMZ FUZ
The method exists, and it works on mock data
The nuclear stellar disc rotates: near side toward positive longitude, far side toward negative — a ~5 mas/yr difference against ~1 mas/yr scatter. A proper motion therefore places a star on the near or the far side, and its extinction measures the dust in front of it.
Proper motions + extinctions → a non-parametric 3D dust map, with no orbital model assumed.
~100 stars per 10×10 pc beam → 20 pc resolution; ≳1000 → 4–8 pc. GALACTICNUCLEUS+HST already gives ~25 stars pc−2, VIRAC2 ~50, JWST GO 10678 ~150 after one epoch and ~1500 after two.
A hundred stars, a hundred orbits — how proper motions locate a cloud
Interactive version: assets/cmz/cmz_orbit_stars.html — model after Nieuwmunster+ 2024; method after Vasini+ 2026