H2020Индивидуална стипендия2021–2024

PiCOGAMBAS · Precision Cosmology with Galaxy and Microwave Background surveys

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

Период
2021-02-01 → 2024-01-31
Финансиране от ЕС
271 733 €
Участници
2
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Разпределението на материята във вселената се анализира чрез наблюдения на галактики и реликтното лъчение от Големия взрив. Това помага за разбирането на тъмната енергия, инфлацията и масата на неутриното.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Precision Cosmology with Galaxy and Microwave Background surveys

Understanding the universe we live in is one of the challenges that pushed mankind to look at the sky since the dawn of civilization. In modern times, accurate astrophysical observations have allowed us to turn questions like "how did the universe begin?" or "what the universe if made of?" into scientific problems. The standard cosmological model predicts that the universe started in a hot and dense phase commonly known as Big Bang and then underwent an accelerated expansion called inflation where the seeds of the matter density perturbation that later evolved in galaxies and stars were generated. After inflation the universe expanded slowly since the beginning of a new accelerated phase a few billion years ago driven by an unknown energy component called dark energy. Understanding the nature of inflation and dark energy are two of the main questions that cosmologists hope to answer in the next decade using observations of the large scale structures (LSS) of the universe (galaxies, galaxy clusters etc.) and of the Cosmic Microwave Background (CMB), the relic light of the Big Bang. These observations will also help solving one of the key open question on the standard model of particle physics: the nature of the neutrino mass. During its journey towards us, the CMB interacts with the LSS as they form. These leave several distinct imprints in the CMB photons: their gravitational force deflects the CMB photon's trajectories (CMB lensing) and CMB photons exchange energy with the energetic particles trapped in the LSS (SZ effect). Combining observations of the CMB and data of galaxy surveys mapping the LSS, we can thus study the properties of the matter distribution of the universe and its evolution with two different and complementary techniques. In particular, comparing the mass maps acquired with CMB and galaxy surveys (cross-correlation) will sharpen our understanding of the universe beyond what can be normally achieved and will allow us to go beyond the limiting factor affecting the analyses of both kinds of data sets when performed independently of each other. With the new generation of CMB experiments (e.g. Simons Observatory -- SO) and galaxy surveys (e.g., the ESA mission Euclid) that have started observing the sky at the same time in 2023, this field has the potential to deliver multiple "firsts" in cosmology in the coming years. To fully exploit this potential, we need to better understand the statistical methods involved in the cross-correlation of CMB and galaxy surveys, test their robustness, design new techniques and observables capable of extracting the maximum amount of information from the data. All these questions are at the core of the PiCOGAMBAS project which delivered robust data analysis methods, new data sets and cosmological constraints, and identified innovative approaches that will produce exciting results in cosmology in the coming years.

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

Цел на проекта

Over the last 15 years, observations of the Cosmic Microwave Background, together with galaxy surveys, have established with great precision the pillars of the current concordance ΛCDM model of cosmology. This model requires a very early epoch of accelerated expansion referred to as inflation, during which quantum mechanical density fluctuations generated the seeds for the evolution of the large scale structures (LSS) we observe today. These grew under gravitational instability induced by the presence of dark matter, an hypothetical type of matter which has mass but interacts only gravitationally with standard matter. This process converted the primordial inflationary perturbations into clumpy million light-year sized clusters and galaxies. A few billion years ago, however, we entered a new era of accelerated expansion driven by yet another component permeating the universe: the dark energy. The dark matter, dark energy and inflation concepts parametrize, and they do so remarkably well, our lack of knowledge about the universe, without affecting our capability of making observable prediction on cosmological scales. Nevertheless, from the point of view of fundamental physics, they represent one of the biggest unknowns to pin down. The Standard Model (SM) of particle physics cannot easily accommodate the existence of the dark components or explain the inflationary mechanism, which occurred at energy scales well above the ones that can ever be tested in a laboratory. The goal of this project is to provide new insight into our understanding of the universe using observations of the reconstructed matter distribution in the universe in different wavelengths and analyze these data jointly to tackle few of the fundamental open questions in cosmology: the determination of the physics of the inflationary mechanism, the measurement of neutrino masses, the nature of dark matter, the nature and properties of dark energy, and the nature of the gravitational force.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз