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Featured researches published by Robert Loew.


Proceedings of SPIE | 2016

A Rydberg impurity in a dense background gas(Conference Presentation)

Tara Cubel Liebisch; Michael Schlagmüller; Felix Engel; Karl M. Westphal; Kathrin S. Kleinbach; Fabian Böttcher; Robert Loew; Sebastian Hofferberth; Tilman Pfau; Jesús Pérez-Ríos; Chris H. Greene

A single Rydberg atom impurity excited in a BEC is a system that can be utilized to measure the quantum mechanical properties of electron - neutral scattering andthe electron probability density of a Rydberg atom. The Rydberg electron – neutral atom scattering process, is a fundamental scattering process, which can be described via Fermi’s pseudopotential as V{vec{r},vec{R} )=2pi textit{a}[k(R)]delta^{(3)}(vec{r}-vec{R}). The scattering length is dependent on the momentum of the Rydberg electron, and therefore is dependent on the separation of the Rydberg electron from the ion core. At the classical outermost turning point of the electron, it has the slowest momentum leading to s-wave dominated scattering potentials 10’s of MHz in depth for n<40 (Greene et al. PRL 85 2458 (2000), Bendkowsky et al. PRL 105 163201 (2010)). In alkali atoms there is a shape resonance for p-wave scattering, which becomes relevant at ion-neutral separations of ~75nm (I.I. Fabrikant J.Phys B 19, 1527 (1985)). This shape resonance potential is several GHz deep, spanning the energy level spacing between n and n-1 principal quantum numbers. At high BEC densities of 5x10^14cm-3 the nearest neighbor spacing is less than 70nm. A Rydberg atom excited within a BEC, is an excitation of the Rydberg atom and all N neutral atoms located within the Rydberg orbit, described as nS+N x 5S. The nS+N x 5S state is density shifted from the Rydberg resonance. Not only does the distribution of atoms within the Rydberg orbit lead to a density shift, but, at these high densities, atoms excited in the nS+N x 5S state near the shape resonance potential cause large perturbations to the density shift, leading to a line broadening. Therefore the spectroscopic line shape of a Rydberg atom in a BEC allows us to probe the theoretically calculated p-wave shape resonance potential. Furthermore, we can observe and measure the dynamics of neutrals excited in the nS+N x 5S state. In the ultracold regime of a BEC, the background neutral atoms within the Rydberg orbit have kinetic energies of a few kHz, and experience large forces due to the GHz-deep shape resonance potentials. An atom dragged into this deep potential leads to an exothermic state-changing collision. We measure the timescale of this state-changing collision and compare to semi-classical calculations of the neutral atoms evolving in the potential of the two-particle nS+ 5S system. We also measure the change in energy from the original nS state to the product state, (n-4)L (L<3). On time scales shorter than the state-changing collisions, which for n<100 is on the order of 10 microseconds, the neutral atoms will evolve and collect in the shallower electron-neutral potentials, which mimic the electron probability density of the Rydberg atom.With n<100, the Rydberg atom has a diameter greater than 2 micrometers. With an imaging system with <1 micrometer resolution, we expect to observe a macroscopic change in the density profile of the BEC indicating an nS versus nD Rydberg state. The BEC would serve as a contrast agent for observing textbook atomic wavefunctions (Karpiuk et al. New Journal of Physics 17, 053046 (2015)).


High Intensity Lasers and High Field Phenomena | 2014

Nonlinear Optics with Rydberg Atoms at Room Temperature

Robert Loew; Bernhard Huber; Andreas Koelle; Tilman Pfau

Rydberg atoms have exaggerated properties, which is especially manifest in the optical excitation blockade. Recent experiments show that this interaction is also effective at room temperatures, opening a pathway to room temperature single photon sources.


arXiv: Quantum Physics | 2007

Apparatus for excitation and detection of Rydberg atoms in quantum gases

Robert Loew; Ulrich Raitzsch; Rolf Heidemann; Vera Bendkowsky; Bjoern Butscher; A. Grabowski; Tilman Pfau


arXiv: Quantum Physics | 2008

Novel binding mechanism for ultra-long range molecules

Vera Bendkowsky; Björn Butscher; J. Nipper; James P. Shaffer; Robert Loew; Tilman Pfau


Bulletin of the American Physical Society | 2018

Enhancing optical densities in thermal micro-cells on demand

Fabian Ripka; Maxim Leyzner; Harald Kuebler; Robert Loew; Tilman Pfau


Bulletin of the American Physical Society | 2018

An optogalvanic flux sensor for trace gases

Johannes Schmidt; Markus Fiedler; Denis Djekic; Patrick Schalberger; Holger Baur; Robert Loew; Tilman Pfau; Jens Anders; Norbert Fruehauf; Edward R. Grant; Harald Kuebler


Bulletin of the American Physical Society | 2018

Characterization of charge-induced optical bistability in thermal Rydberg vapor

Daniel Weller; Nico Sieber; Alban Urvoy; Tilman Pfau; Robert Loew; Harald Kuebler


Bulletin of the American Physical Society | 2017

Atomic vapor spectroscopy in integrated photonic structures

Tilman Pfau; Ralf Ritter; Nico Gruhler; Wolfram H. P. Pernice; Harald Kuebler; Robert Loew


Bulletin of the American Physical Society | 2015

Ultracold chemistry of a single Rydberg atom in a BEC

Tara Cubel Liebisch; Michael Schlagmueller; Karl M. Westphal; Kathrin S. Kleinbach; Udo Hermann; Huan Nguyen; Fabian Boettcher; Robert Loew; Sebastian Hofferberth; Tilman Pfau; Jesús Pérez-Ríos; Chris H. Greene


Bulletin of the American Physical Society | 2013

Rydberg gases at room temperature - coherent dynamics and interaction

Robert Loew; Bernhard Huber; Andreas K "olle; Thomas Baluktsian; Tilman Pfau

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Tilman Pfau

University of Stuttgart

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J. Nipper

University of Stuttgart

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Huan Nguyen

University of Stuttgart

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