Understanding obscured star formation through cosmic time
Lead Research Organisation:
Durham University
Department Name: Physics
Abstract
Early observations of nearby galaxies led astronomers to a startling revelation - most local galaxies are easy to classify into one of two groups. Either they are spiral shaped with ongoing star-formation and contain many young, blue stars (like our own Milky Way), or they have spheroidal (elliptical) shapes and are mostly composed of old, red stars. This relatively simple observation leads to the important questions of how the different galaxies formed and evolved, and why they now mostly occupy two distinct classes. One way to untangle the different effects is to study galaxies that are further away, which, due to the finite speed of light, also means that we see them when the Universe was younger and the galaxies were earlier in their own evolution.
However, a key difficulty in examining young galaxies in the distant Universe is that they can contain significant quantities of dust - small particles that act like smoke and block out much of galaxies' optical light. This dust makes the galaxies faint and difficult (sometimes impossible) to observe with optical and near-infrared telescopes, so without knowing how much light is hidden by dust we cannot accurately measure distant galaxies. Even worse, the dustiest (and optically hardest to detect) galaxies are the most active - they form new stars about 1000 times quicker than our Milky Way - and they push the limits of our understanding of galaxy evolution. In fact, since the discovery 20 years ago of a large population of distant dusty galaxies, observations of them have repeatedly disagreed with models and triggered new revelations in understanding how galaxies form and evolve.
To trace dust in galaxies and accurately measure how many stars are being formed at different times in the history of the Universe I use far-infrared light. Far-infrared data have shown that very dusty and active galaxies are rare in the local Universe, but there are many of them in the young, distant Universe, so they are thought to be a key stage in the evolution of galaxies. However, even the latest models and simulations of galaxy formation and evolution struggle to accurately reproduce the number and properties these distant active galaxies. The problem is particularly prevalent at the earliest times (within about a billion years of the Big Bang) when simulations rarely generate enough of these very dusty "starburst" galaxies. Different simulations also disagree about how to generate the most active dusty galaxies - some require collisions of two massive galaxies, but others can create starbursts from just a single galaxy.
During this fellowship I will use data from a new, exceptionally powerful, infrared observatory in Chile - the Atacama Large Millimeter/Submillimetre Array (ALMA), as well as other international telescopes to study the dust in distant galaxies and determine through observations which (if any) of the different galaxy evolution models is correct. Firstly, I will use ALMA to determine whether galaxy mergers are needed to trigger massive distant starbursts. I will then examine samples of the earliest dusty galaxies to measure whether they are really as bright and massive as the first observations suggested (a big problem for simulations), or whether they may be "gravitationally lensed" i.e. magnified and made to appear brighter by the mass of another galaxy in the foreground acting as a lens. If many of them are gravitationally lensed then our previous measurements of their sizes and activity levels would have been wrong, and that will again affect the galaxy evolution models. Finally, I will perform crucial preparation for the next generation of wide-field surveys, using statistics to establish new methods to accurately pinpoint far-infrared bright galaxies, which is a crucial step in being to study many individual galaxies in detail.
However, a key difficulty in examining young galaxies in the distant Universe is that they can contain significant quantities of dust - small particles that act like smoke and block out much of galaxies' optical light. This dust makes the galaxies faint and difficult (sometimes impossible) to observe with optical and near-infrared telescopes, so without knowing how much light is hidden by dust we cannot accurately measure distant galaxies. Even worse, the dustiest (and optically hardest to detect) galaxies are the most active - they form new stars about 1000 times quicker than our Milky Way - and they push the limits of our understanding of galaxy evolution. In fact, since the discovery 20 years ago of a large population of distant dusty galaxies, observations of them have repeatedly disagreed with models and triggered new revelations in understanding how galaxies form and evolve.
To trace dust in galaxies and accurately measure how many stars are being formed at different times in the history of the Universe I use far-infrared light. Far-infrared data have shown that very dusty and active galaxies are rare in the local Universe, but there are many of them in the young, distant Universe, so they are thought to be a key stage in the evolution of galaxies. However, even the latest models and simulations of galaxy formation and evolution struggle to accurately reproduce the number and properties these distant active galaxies. The problem is particularly prevalent at the earliest times (within about a billion years of the Big Bang) when simulations rarely generate enough of these very dusty "starburst" galaxies. Different simulations also disagree about how to generate the most active dusty galaxies - some require collisions of two massive galaxies, but others can create starbursts from just a single galaxy.
During this fellowship I will use data from a new, exceptionally powerful, infrared observatory in Chile - the Atacama Large Millimeter/Submillimetre Array (ALMA), as well as other international telescopes to study the dust in distant galaxies and determine through observations which (if any) of the different galaxy evolution models is correct. Firstly, I will use ALMA to determine whether galaxy mergers are needed to trigger massive distant starbursts. I will then examine samples of the earliest dusty galaxies to measure whether they are really as bright and massive as the first observations suggested (a big problem for simulations), or whether they may be "gravitationally lensed" i.e. magnified and made to appear brighter by the mass of another galaxy in the foreground acting as a lens. If many of them are gravitationally lensed then our previous measurements of their sizes and activity levels would have been wrong, and that will again affect the galaxy evolution models. Finally, I will perform crucial preparation for the next generation of wide-field surveys, using statistics to establish new methods to accurately pinpoint far-infrared bright galaxies, which is a crucial step in being to study many individual galaxies in detail.
Organisations
People |
ORCID iD |
| Julie Wardlow (Principal Investigator / Fellow) |
Publications
Algera H
(2020)
An ALMA Survey of the SCUBA-2 Cosmology Legacy Survey UKIDSS/UDS Field: The Far-infrared/Radio Correlation for High-redshift Dusty Star-forming Galaxies
in The Astrophysical Journal
An F
(2018)
A Machine-learning Method for Identifying Multiwavelength Counterparts of Submillimeter Galaxies: Training and Testing Using AS2UDS and ALESS
in The Astrophysical Journal
Bakx T
(2018)
The Herschel Bright Sources (HerBS): sample definition and SCUBA-2 observations
in Monthly Notices of the Royal Astronomical Society
Birkin J
(2021)
An ALMA/NOEMA survey of the molecular gas properties of high-redshift star-forming galaxies
in Monthly Notices of the Royal Astronomical Society
Chen C
(2020)
Extended H a over compact far-infrared continuum in dusty submillimeter galaxies Insights into dust distributions and star-formation rates at z ~ 2
in Astronomy & Astrophysics
Cooke E
(2018)
An ALMA Survey of the SCUBA-2 Cosmology Legacy Survey UKIDSS/UDS Field: Identifying Candidate z ~ 4.5 [C II] Emitters
in The Astrophysical Journal
Dudzeviciute U
(2020)
An ALMA survey of the SCUBA-2 CLS UDS field: physical properties of 707 sub-millimetre galaxies
in Monthly Notices of the Royal Astronomical Society
Related Projects
| Project Reference | Relationship | Related To | Start | End | Award Value |
|---|---|---|---|---|---|
| ST/P004784/1 | 04/10/2017 | 01/09/2018 | £468,702 | ||
| ST/P004784/2 | Transfer | ST/P004784/1 | 02/09/2018 | 31/12/2023 | £387,882 |
| Description | This projected used far-infrared light to understand some of the most distance, dusty and star-forming galaxies in the history of the Universe. We established that these galaxies are likely in large structures that will eventually evolve into local galaxy clusters. However, most of them are not closely interacting pairs. We have traced the amount of gas that they contain (which is the fuel for new star-formation) and begun to look at the energetic and motion of that gas. Ongoing work is looking at the chemistry in the most distant of these galaxies and is using other methods to fully measure their environments. |
| Exploitation Route | The work is already leading to more studies of larger samples of dusty star-forming a galaxies, and studies of the chemical evolution and energetics in these systems. Our observations are also used to plan and model future observations and to constrain simulations and theories of galaxy evolution. |
| Sectors | Other |
| Title | ALMA survey of the SCUBA-2 CLS UDS field |
| Description | VizieR online Data Catalogue associated with article published in journal Monthly Notices of the Royal Astronomical Society with title ' An ALMA survey of the SCUBA-2 CLS UDS field: physical properties of 707 sub-millimetre galaxies.' (bibcode: 2020MNRAS.494.3828D) |
| Type Of Material | Database/Collection of data |
| Year Produced | 2023 |
| Provided To Others? | Yes |
| URL | https://cdsarc.cds.unistra.fr/viz-bin/cat/J/MNRAS/494/3828 |
| Title | ALMA survey of the SCUBA-2 UKIDSS/UDS field |
| Description | VizieR online Data Catalogue associated with article published in journal Monthly Notices of the Royal Astronomical Society with title ' An ALMA survey of the SCUBA-2 Cosmology Legacy Survey UKIDSS/UDS field: source catalogue and properties.' (bibcode: 2019MNRAS.487.4648S) |
| Type Of Material | Database/Collection of data |
| Year Produced | 2023 |
| Provided To Others? | Yes |
| URL | https://cdsarc.cds.unistra.fr/viz-bin/cat/J/MNRAS/487/4648 |
| Description | Inspirational Women's Day Harrogate |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Schools |
| Results and Impact | "Inspirational Women's Day" at Harrogate Ladies College. Talked to ~35 students aged 11-18 about astrophysics and life as a researcher. |
| Year(s) Of Engagement Activity | 2018 |
| Description | Pint of Science |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Public/other audiences |
| Results and Impact | Engagement event held for the local community in a local pub. Included 3 short talks on astrophysics and some demonstration activities, followed by discussion. |
| Year(s) Of Engagement Activity | 2018 |
| Description | Scouts at Durham |
| Form Of Engagement Activity | Participation in an open day or visit at my research institution |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Other audiences |
| Results and Impact | ~35 cub scouts (boys and girls) visited the department, including using our telescopes to observe the night sky, a planetarium show, and space-based activities. The even was part of attaining their astronomy badge, and sparked plenty of questions, discussion and theories about the Universe. |
| Year(s) Of Engagement Activity | 2017 |
| Description | St John's STEM day |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Schools |
| Results and Impact | For STEM day at St John's school I presented a short talk on astrophysics (reaching ~120 pupils), and engaged in small group discussion with additional pupils about career paths and life as an astrophysicist. There was particular interest from girls, many of whom hadn't previously considered science as a career path. |
| Year(s) Of Engagement Activity | 2018 |