Allan Adams: The discovery that could rewrite physics
Allan Adams: Die Entdeckung, die die Physik revolutionieren könnte
Allan Adams is a theoretical physicist working at the intersection of fluid dynamics, quantum field theory and string theory. Full bio
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sieht man noch mehr Sterne,
further, more galaxies.
und tiefer, noch mehr Galaxien.
tiefer und tiefer blickt,
faint, fading afterglow,
verblassendes Nachleuchten,
im frühen Universum,
verdichtet war,
meine ich andere Leute als mich.
in die andere Richtung,
to everyone in this room,
in diesem Saal äußerst wichtig,
die man im Universum sieht.
Fluktuationen gebildet,
des gesamten Kosmos ausgedehnt haben.
was sie am Montag entdeckten;
mit einem Hammer.
wird das Läuten schwächer
würde es klingen,
als das Universum
in die Struktur des Lichtes,
in den Nachthimmel blickt...
drei Jahre am Südpol damit,
three years on the South Pole
und sauberste Luft, die es gibt,
die schwachen Krümmungen zu suchen,
das Signal der Gravitationswellen,
obwohl das beeindruckend ist.
warum ich auf der Bühne stehe,
deep about the early universe.
über das frühe Universum verrät.
hinter der Inflation --
die von etwas anderem umgeben ist.
für Inflation,
und dies erklärt,
ist nicht gerade neu,
sie tatsächlich zu sehen.
und das ist er.
Topf von Universumsmaterie ist.
und 3 Jahre damit verbrachten,
and spending three years
des Nachthimmels zu beobachten,
that looks kind of like that.
in einem Universum sind, das so aussieht.
ABOUT THE SPEAKER
Allan Adams - Theoretical physicistAllan Adams is a theoretical physicist working at the intersection of fluid dynamics, quantum field theory and string theory.
Why you should listen
Allan Adams is a theoretical physicist working at the intersection of fluid dynamics, quantum field theory and string theory. His research in theoretical physics focuses on string theory both as a model of quantum gravity and as a strong-coupling description of non-gravitational systems.
Like water, string theory enjoys many distinct phases in which the low-energy phenomena take qualitatively different forms. In its most familiar phases, string theory reduces to a perturbative theory of quantum gravity. These phases are useful for studying, for example, the resolution of singularities in classical gravity, or the set of possibilities for the geometry and fields of spacetime. Along these lines, Adams is particularly interested in microscopic quantization of flux vacua, and in the search for constraints on low-energy physics derived from consistency of the stringy UV completion.
In other phases, when the gravitational interactions become strong and a smooth spacetime geometry ceases to be a good approximation, a more convenient description of string theory may be given in terms of a weakly-coupled non-gravitational quantum field theory. Remarkably, these two descriptions—with and without gravity—appear to be completely equivalent, with one remaining weakly-coupled when its dual is strongly interacting. This equivalence, known as gauge-gravity duality, allows us to study strongly-coupled string and quantum field theories by studying perturbative features of their weakly-coupled duals. Gauge-gravity duals have already led to interesting predictions for the quark-gluon plasma studied at RHIC. A major focus of Adams's present research is to use such dualities to find weakly-coupled descriptions of strongly-interacting condensed matter systems which can be realized in the lab.Allan Adams | Speaker | TED.com