Astronomers at the University of Hertfordshire are scanning the nearest stars for Earth-sized planets that could support life, using telescopes that span X-rays to radio waves. The research tackles a fundamental gap: we do not yet know whether Earth-mass planets commonly orbit the small, dim M dwarf stars that make up most of the stellar population in the Universe. The team expects to detect the first such planets in the habitable zones of the closest stars during this grant period. They are also tracking the coldest brown dwarfs—objects that blur the line between planet and star—to understand how different cosmic bodies form. This is primarily curiosity-driven fundamental science. It will not produce a new battery or a faster computer chip. But similar surveys of the night sky have, in the past, led to unexpected technologies: CCD detectors, now ubiquitous in medical imaging and phone cameras, were developed for astronomy. A clearer picture of how stars, planets, and galaxies evolve also sharpens our understanding of where Earth fits in the cosmic story—and whether we are alone.
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The Centre for Astrophysics Research carries out observational programmes spanning the wavelength range from X-ray up to the radio - supporting this by extensive computer modelling, theoretical studies and instrument development. Our research ranges from theoretical modelling of the highest energy process in the Universe through to inventing our own instruments to detect planets outside our Solar System. In between these extremes, we carry out the largest multi-wavelength surveys conducted to date to understand the properties of stars, galaxies and their evolution. Our research makes use of observations from all of the main European and international astronomical observatories, including ground-based observatories at optical, radio and submillimetre wavelengths, and space observatories at wavelengths ranging from the far infrared to gamma rays. We also use computer simulations to obtain a better understanding of the physical processes detected in our observations. Below is a brief description of our research in each of these areas. We perform searches of nearby stars to discover planets. We especially target low mass M stars since they are the dominant type of star in the Universe and have not yet been searched. We focus on detection through Doppler wobble and by looking for planets periodically eclipsing their parent star. During the period of the grant we expect to make the first detections of Earth-mass planets in the habitable zones of the closest stars. We also discover, follow-up and model the properties of the coolest brown dwarfs whose temperatures overlap with those of planets. These studies aim to clarify the population of brown dwarfs and to establish how their modes of formation fit in with those of their brethren of different masses, ie. heavier (stars) or lighter (planets). The Milky Way is our home galaxy. The material in the form of gas is the raw material for the formation of stars and planetary systems. At the end of stellar lives some of this material remains locked up in stellar remnants but much of it is returned in late superwind phases and supernova explosions. This cycle is responsible for the chemical enrichment of the gaseous medium and is important for its dynamics, because of the thermal and mechanical energy injected into the gas. By using large area mainly imaging surveys, our research looks at this gas in the Milky Way and its satellites. Our surveys of the Milky Way will span the optical to sub-mm domains tracing extinction, molecular clouds, their dust properties and associated star formation. We thus study the relationship between star formation, dust and molecular cloud properties. In the nearby Universe it is possible to appraise how stars form and evolve in different environments, from small dwarf galaxies to the very outer regions of galaxies like our own. Our research focuses on the gas content of galaxies, which provides the material for star formation, and links this to stellar populations and the locations of star formation in the full range of local galaxies. By understanding the processes that trigger star formation and its evolution in the nearby Universe, we can begin to apply this understanding to the very earliest galaxies and the formation of stars in the distant Universe. A new generation of surveys is mapping out the most distant galaxies, and allows us to investigate what links the processes of star formation and the growth of supermassive black holes. We also use detailed X-ray and radio observations to measure the energy injected by jets ejected from supermassive black holes into distant galaxies and clusters of galaxies, affecting star formation and gas properties, and having a long-term role in their evolutionary history. Understanding the particle composition, magnetic field properties, dynamics and energetics of these relativistic jets is essential in order to get a complete picture of star formation and of galaxy evolution.
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