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Chaotic Scattering in Rydberg Atoms, Trapping in MoleculesPaskauskas, Rytis 20 November 2007 (has links)
We investigate chaotic ionization of highly excited hydrogen atom in crossed electric and magnetic fields (Rydberg atom) and intra-molecular relaxation in planar carbonyl sulfide (OCS) molecule. The underlying theoretical framework of our studies is dynamical systems theory and periodic orbit theory. These theories offer formulae to compute expectation values of observables in chaotic systems with best accuracy available in given circumstances, however they require to have a good control and reliable numerical tools to compute unstable periodic orbits. We have developed such methods of computation and partitioning of the phase space of hydrogen atom in crossed at right angles electric and magnetic fields, represented by a two degree of freedom (dof) Hamiltonian system. We discuss extensions to a 3-dof setting by developing the methodology to compute unstable invariant tori, and applying it to the planar OCS, represented by a 3-dof Hamiltonian. We find such tori important in explaining anomalous relaxation rates in chemical reactions. Their potential application in Transition State Theory is discussed.
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Détection non destructive d'un atome unique par interaction dispersive avec un champ mésoscopique dans une cavitéMaioli, Paolo 09 July 2004 (has links) (PDF)
La détection des états d'un qubit est un élément essentiel dans la réalisation d'expériences d'information quantique. Dans le système étudié, le bit quantique est codé dans les états d'énergie interne d'un atome de Rydberg circulaire à deux niveaux. Dans ce mémoire nous présentons une nouvelle technique de détection des atomes de Rydberg circulaires basée sur l'interaction dispersive d'un atome avec un champ micro-onde mésoscopique à l'intérieur d'une cavité supraconductrice de très grand facteur de qualité. L'indice de réfraction de l'atome, dépendant de son niveau d'énergie interne, déphase le champ micro-onde, et une procédure de détection homodyne transforme l'information codée dans la phase du champ en une information d'intensité. L'intensité finale du champ est lue par un échantillon mésoscopique d'atomes. Il s'agit d'une technique de détection non destructive, puisque le processus de détection n'ionise pas l'atome, mais le projette simplement dans l'état mesuré. De plus, le processus de détection intrique l'état interne d'un atome au niveau d'excitation d'un ensemble de plusieurs atomes, permettant de créer des superpositions cohérentes d'états atomiques mésoscopiques et ouvrant de nouvelles perspectives pour des tests de décohérence Nous présentons le principe de la technique et de nombreux résultats expérimentaux, ainsi que de possibles schémas d'application.
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Détection sans destruction d'un seul photon. Une expérience d'électrodynamique quantique en cavité.Nogues, Gilles 15 December 1999 (has links) (PDF)
Les mesures habituelles en optique détruisent les photons<br />incidents pour convertir leur énergie en un signal détectable.<br />Cette destruction n'est cependant pas imposée par les lois<br />quantiques fondamentales et des stratégies de mesure quantique<br />non-destructive ont été proposées qui permettent la mesure répétée<br />de champs électromagnétiques. Nous présentons la détection sans<br />absorption d'un seul photon stocké dans une cavité micro-onde<br />supraconductrice. Nous utilisons à cette fin des atomes de Rydberg<br />circulaires, très fortement couplés au champ. Durant son<br />interaction avec le mode de la cavité, un atome est capable<br />d'absorber un photon puis de le réémettre. Il s'agit des<br />oscillations de Rabi quantiques. À la fin de ce cycle<br />absorption--émission, le photon est encore présent dans la cavité<br />mais le système atome--champ a gardé une trace de son évolution<br />dans la phase de sa fonction d'onde qui a tourné de 180°. Nous<br />détectons ce déphasage grâce à un dispositif d'interférométrie<br />atomique. Un ensemble d'expériences permet de prouver les<br />corrélations entre l'atome et l'état du champ et le caractère<br />non-destructif de la mesure. Une analyse précise des performances<br />du dispositif et de ses applications possibles pour l'optique<br />quantique est menée.
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Strong interactions in alkaline-earth Rydberg ensemblesMukherjee, Rick 17 December 2014 (has links) (PDF)
Ultra-cold atoms in optical lattices provide a versatile and robust platform to study fundamental condensed-matter physics problems and have applications in quantum optics as well as quantum information processing. For many of these applications, Rydberg atoms (atoms excited to large principal quantum numbers) are ideal due to its long coherence times and strong interactions.
However, one of the pre-requisite for such applications is identical confinement of ground state atoms with Rydberg atoms. This is challenging for conventionally used alkali atoms. In this thesis, I discuss the potential of using alkaline-earth Rydberg atoms for many-body physics by implementing simultaneous trapping for the relevant internal states. In particular, I consider a scheme for generating multi-particle entanglement and explore charge transport in a one dimensional atomic lattice.
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Inelastic H-Atom scattering from ultra-thin filmsDorenkamp, Yvonne Jeannette 15 August 2018 (has links)
No description available.
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Strong interactions in alkaline-earth Rydberg ensemblesMukherjee, Rick 20 October 2014 (has links)
Ultra-cold atoms in optical lattices provide a versatile and robust platform to study fundamental condensed-matter physics problems and have applications in quantum optics as well as quantum information processing. For many of these applications, Rydberg atoms (atoms excited to large principal quantum numbers) are ideal due to its long coherence times and strong interactions.
However, one of the pre-requisite for such applications is identical confinement of ground state atoms with Rydberg atoms. This is challenging for conventionally used alkali atoms. In this thesis, I discuss the potential of using alkaline-earth Rydberg atoms for many-body physics by implementing simultaneous trapping for the relevant internal states. In particular, I consider a scheme for generating multi-particle entanglement and explore charge transport in a one dimensional atomic lattice.
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Den ensamma sjöjungfrun : Om Carina Rydbergs jagberättande ur ett genreperspektiv / The Lonely Mermaid : On Identity Narration and Genre in the Autobiographical Works of Carina RydbergAndersson, Tamara January 2015 (has links)
The focus of this study is the two autobiographical novels Den högsta kasten (1997) and Djävulsformeln (2000) by Swedish author Carina Rydberg. Both novels generated lively public debate regarding how they ought to be read and understood, what genre they belonged to, and the ontological status of the narrating “I”. The aim is to investigate why the protagonist, Carina, is perceived as unintelligible by many readers and explore how she can be understood in relation to what constitutes an intelligible identity from a literary and cultural perspective. The novels, as well as their protagonist, are approached from the perspective of genre theory, the argument being that Carina’s unintelligibility is directly dependent on what genre she is read in relation to. In the first part of the thesis the ambiguities of autobiographical texts are discussed, and the narrative and protagonist are analyzed in relation to the autobiographical genre. In the second part of the thesis the consequences of reading the texts as examples of the Gothic with emphasis on monstrosity, the uncanny and sexual transgression are examined. The two readings demonstrate how interpretations of text and character are highly influenced by the reader's expectations connected to genre. Rydberg’s transgression of the norms of genre, gender, and identity leaves the reader with a contradictory set of genre-specific expectations, which in turn makes it difficult to understand and accept the protagonist. The main theme of both novels is Carina’s unsuccessful attempts to reconcile what she sees as two separate, essentially incompatible identities: woman and author. The final chapter includes a comparative study in which Rydberg’s novels are linked to works by other Swedish female writers, both past and contemporary, to demonstrate that the conflict of woman versus author is a common problem for female writers. The thesis closes with a discussion about the possibility of placing Rydberg in a specifically female literary tradition and demonstrate how a feminist analysis can make the unintelligible intelligible.
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Interplay of excitation transport and atomic motion in flexible Rydberg aggregatesLeonhardt, Karsten 18 October 2016 (has links)
Strong resonant dipole-dipole interactions in flexible Rydberg aggregates enable the formation of excitons, many-body states which collectively share excitation between atoms. Exciting the most energetic exciton of a linear Rydberg chain whose outer two atoms on one end are closely spaced causes the initiation of an exciton pulse for which electronic excitation and diatomic proximity propagate directed through the chain. The emerging transport of excitation is largely adiabatic and is enabled by the interplay between atomic motion and dynamical variation of the exciton.
Here, we demonstrate the coherent splitting of such pulses into two modes, which induce strongly different atomic motion, leading to clear signatures of nonadiabatic effects in atomic density profiles. The mechanism exploits local nonadiabatic effects at a conical intersection, turning them from a decoherence source into an asset. The conical intersection is a consequence of the exciton pulses moving along a linear Rydberg chain and approaching an additional linear, perpendicularly aligned Rydberg chain. The intersection provides a sensitive knob controlling the propagation direction and coherence properties of exciton pulses.
We demonstrate that this scenario can be exploited as an exciton switch, controlling direction and coherence properties of the joint pulse on the second of the chains.
Initially, we demonstrate the pulse splitting on planar aggregates with atomic motion one-dimensionally constrained and employing isotropic interactions. Subsequently, we confirm the splitting mechanism for a fully realistic scenario in which all spatial restrictions are removed and the full anisotropy of the dipole-dipole interactions is taken into account. Our results enable the experimental observation of non-adiabatic electronic dynamics and entanglement transport with Rydberg atoms. The conical intersection crossings are clearly evident, both in atomic mean position information and excited state spectra of the Rydberg system. This suggests flexible Rydberg aggregates as a test-bench for quantum chemical effects in experiments on much inflated length scales. The fundamental ideas discussed here have general implications for excitons on a dynamic network.
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Interfacing mechanical resonators with excited atomsSanz Mora, Adrián 28 September 2018 (has links)
We investigate two different coupling schemes between a nano-scale mechanical resonator and one-electron atoms. In these schemes, classical electromagnetic radiation mediates a mutual communication between the mechanical resonator and the atoms. In the process it generates atomic coherences, quantum superpositions of excited electronic levels of the atoms. An atomic coherence is highly responsive to subtle variations in the relative frequencies of the levels participating in such superposition state. By exposing the atoms to electromagnetic radiation modulated by the motion of the mechanical resonator, we show how the response of an atomic coherence can, under appropriate conditions, be used to affect on demand the dynamical state of the mechanical resonator.
The first scheme realizes a long range interface between a mechanical resonator and an ensemble of three-level atoms. Here, mechanically modulated electromagnetic radiation comes from a laser beam reflected off an oscillating mirror, the mechanical resonator. This light beam drives the transition between an excited level and a hyperfine sublevel of the atoms with a certain detuning. A weaker light beam resonantly couples to the transition between the excited level and another hyperfine sublevel. On full resonance, the atoms evolve into a stationary coherence of the above (non-absorbing) hyperfine sublevels only. The atoms then become transparent to the weaker light beam, in a phenomenon called electromagnetically induced transparency. Off resonance, we find that this transparency is modulated at the mirror frequency with some phase shift, which allows the weaker beam to cause resonant backaction onto the moving mirror. The strength of this backaction is enhanced near atomic resonances and its character can be switched between amplification or damping of mirror vibrations by adjusting the detuning.
In contrast, the second scheme accomplishes a closer range interface between a torsion pendulum and guided two level Rydberg atoms. Attaching a point electric dipole to the torsion pendulum allows electromagnetic coupling to two Rydberg levels of a passing atom. This coupling modifies the eigenfrequencies of the Rydberg levels such that they become dependent on the phonon number of the torsion pendulum. Via Ramsey interferometry, we may readout this effect and thus measure the phonon number. We show that, by subjecting several atoms, one by one, to a Ramsey measurement, a quantum non-demolition detection of the phonon number is feasible. Likewise, we show coherent oscillator displacements possible, by driving the atoms with external fields while they interact with the torsion pendulum. We propose a protocol to reconstruct the quantum state of motion of the torsion pendulum, combining these two techniques, Ramsey measurements and oscillator displacements.
Our interfaces between a mechanical resonator and atoms provide alternative routes for the control of the state of motion, ultimately quantum mechanical, of a mechanical resonator, in which the latter is not restricted to be part of a cavity. We will thus ease quantum dynamical manipulations of mechanical resonators of sub micron scales, for which an efficient design of cavity opto- and electro-mechanical systems is hard.
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A graph theoretic approach to matrix functions and quantum dynamicsGiscard, Pierre-Louis January 2014 (has links)
Many problems in applied mathematics and physics are formulated most naturally in terms of matrices, and can be solved by computing functions of these matrices. For example, in quantum mechanics, the coherent dynamics of physical systems is described by the matrix exponential of their Hamiltonian. In state of the art experiments, one can now observe such unitary evolution of many-body systems, which is of fundamental interest in the study of many-body quantum phenomena. On the other hand the theoretical simulation of such non-equilibrium many-body dynamics is very challenging. In this thesis, we develop a symbolic approach to matrix functions and quantum dynamics based on a novel algebraic structure we identify for sets of walks on graphs. We begin by establishing the graph theoretic equivalent to the fundamental theorem of arithmetic: all the walks on any finite digraph uniquely factorise into products of prime elements. These are the simple paths and simple cycles, walks forbidden from visiting any vertex more than once. We give an algorithm that efficiently factorises individual walks and obtain a recursive formula to factorise sets of walks. This yields a universal continued fraction representation for the formal series of all walks on digraphs. It only involves simple paths and simple cycles and is thus called a path-sum. In the second part, we recast matrix functions into path-sums. We present explicit results for a matrix raised to a complex power, the matrix exponential, matrix inverse, and matrix logarithm. We introduce generalised matrix powers which extend desirable properties of the Drazin inverse to all powers of a matrix. In the third part, we derive an intermediary form of path-sum, called walk-sum, relying solely on physical considerations. Walk-sum describes the dynamics of a quantum system as resulting from the coherent superposition of its histories, a discrete analogue to the Feynman path-integrals. Using walk-sum we simulate the dynamics of quantum random walks and of Rydberg-excited Mott insulators. Using path-sum, we demonstrate many-body Anderson localisation in an interacting disordered spin system. We give two observable signatures of this phenomenon: localisation of the system magnetisation and of the linear magnetic response function. Lastly we return to the study of sets of walks. We show that one can construct as many representations of series of walks as there are ways to define a walk product such that the factorisation of a walk always exist and is unique. Illustrating this result we briefly present three further methods to evaluate functions of matrices. Regardless of the method used, we show that graphs are uniquely characterised, up to an isomorphism, by the prime walks they sustain.
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