Completed Physics & Astronomy Climate, Earth & Environment

Fundamental Physics and Observational Cosmology

In plain English

AI plain-English summary

The universe’s earliest moments left imprints that satellite experiments like Planck and Clover are now trying to read, and this project builds the theoretical tools to decode them. Cosmologists have good evidence that the universe expanded explosively in a split-second after the Big Bang—a process called inflation—but dozens of competing models explain how that happened. This research aims to winnow those models by calculating precise, testable signatures that experiments can actually measure. It also tackles deeper questions: whether our universe is just one slice of a higher-dimensional reality, what dark energy is, whether fundamental constants like the speed of light have changed over time, and how black holes might reveal extra dimensions. This is fundamental science with no immediate practical application. The payoff is understanding whether our current picture of the cosmos is correct or whether we need entirely new physics. Historically, such work—like the theoretical predictions that led to the discovery of the cosmic microwave background—has reshaped not just astronomy but also technologies like satellite communications and atomic clocks, which rely on the same fundamental constants this project will probe.

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We aim to advance the confrontation between observational cosmology and fundamental physics by developing testable signatures of early universe theories which are of direct relevance to STFC-supported satellite and other experiments, such as Planck and Clover. This work entails making detailed quantitative observational predictions which can be used to distinguish between different inflation models, as well as those involving cosmic superstrings and textures. In particular, we wish to study cosmologies emerging from higher dimensional models in fundamental theory, and discover ways in which to differentiate these from conventional four-dimensional models. We will also use data from the late universe to develop probes of the cosmological constant, dark energy and the variation of the fundamental constants of nature. In addition, we will embark on a new project in gravitational physics, studying the existence, formation and consequences of black holes. We will consider the distinctive signatures of extra dimensions which the experimental study of black holes may be able to uncover.

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Researchers

Anthony Challinor (Co-Investigator)Edward Shellard (Co-Investigator)Gary Gibbons (Co-Investigator)Harvey Reall (Co-Investigator)John David Barrow (Co-Investigator)John Stewart (Co-Investigator)Neil Turok (Co-Investigator)Stephen Hawking (Principal Investigator)

Related Research

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