H2020Индивидуална стипендия2020–2022

HIZRAD · How the monsters were made: the formation of the most massive black holes in the Universe

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2020-09-01 → 2022-08-31
Финансиране от ЕС
212 934 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Свръхмасивните черни дупки, някои от които са тежки колкото 10 милиарда слънца, се изучават чрез радиотелскопа LOFAR. Разбирането на техните произход и развитие помага да се разбере как са се формирали галактиките, включително Млечният път.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

How the monsters were made: the formation of the most massive black holes in the Universe

It is currently believed that at the centre of every massive galaxy in the Universe, there lies a super-massive black hole (SMBH). Some of these SMBH have now been measured to have as much mass as 10 billion Suns, all squeezed into a volume similar to that of our own solar-system. When these monster SMBH grow by eating in matter that has fallen into their surroundings, they can release huge amounts of energy in the process. This makes them the most extreme and energetic objects in our Universe. While extraordinary and fascinating objects in their own right, these SMBH are also believed to play an important role in the evolution of their host galaxies, including those like our own Milky Way. So if we want to completely understand the origins of our galaxy, understanding how these monsters came to form and evolve is crucial. The goal of the HIZRAD project was to help build a complete picture of the early stages of SMBH formation - answering the questions of how, when and where the most extreme objects in our Universe were formed. The project made use extensive new radio sky survey from the pan-European radio telescope, the Low Frequency Array (LOFAR), to study actively growing black holes, or Active Galactic Nuclei (AGN), throughout cosmic history. The unique power of these new radio observations is that they can peer through the gas and dust that obscure other signs of activity, meaning that LOFAR is able to reveal AGN activity that has previously been hidden from us. However, while LOFAR offers an enormous leap in our ability to discover these new AGN deep into the earliest stages of cosmic history, it cannot provide a complete picture alone. There is crucial information about these AGN that cannot be learned from their radio emission and so we must combine these data with other measurements across the electromagnetic spectrum in order to unlock their full potential. The overall objective of the HIZRAD project was to answer the question; what was the accretion history of super-massive black holes in the early Universe? Specifically, we sought to discover news samples of the most extreme SMBH right at the very earliest stages of cosmic history and to measure how this population evolved over the early history of the Universe. We aimed to combine the LOFAR surveys with the best available complementary data from optical and infrared telescopes, including a a state-of-the-art optical survey of radio detected galaxies due to start early in the project.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Every massive galaxy in the Universe has at its heart a super-massive black hole (SMBH), with some extreme galaxies able to build SMBH with masses in excess of 100 million solar masses within only the first few Gyr of cosmic history. How did these individual extreme SMBH form so quickly, and what was the accretion history of the wider SMBH population in the early Universe? As a probe of black-hole accretion that is not subject to dust obscuration, sensitive new radio continuum surveys offer a unique opportunity to study the first few Gyr of SMBH formation in unprecedented detail and answer these fundamental questions. This project will combine two surveys the participant has a leading role in, the Low Frequency Array (LOFAR) Surveys Project and the WEAVE-LOFAR spectroscopic survey, to build a sample of radio selected active galactic nuclei in the early Universe that reaches new and extremely important areas of parameter space and is >100x larger than existing samples. The unprecedented scale and sensitivity of these datasets will result in the first robust measurements of the accretion and mass history of SMBH in the early Universe. This project will also discover the first sample of luminous radio galaxies within the Epoch of Reionization; an important breakthrough that opens an entirely new window onto the process of cosmic reionization - one of the outstanding current cosmological challenges. The University of Edinburgh is a leading centre for the study of galaxy and black-hole formation in the early Universe, both through radio continuum and optical spectroscopy surveys. The researcher is an expert in the optical astronomy techniques required to perform the proposed robust population studies and is uniquely placed to exploit the exquisite WEAVE-LOFAR data. Together, these transformational datasets and the complementary expertise of the host and researcher will result in world-leading research that has extensive impact within the wider astronomical community.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз