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Poster Session

Poster Session I (4pm-6pm CDT)

4:00 pm – 6:00 pm, Tuesday June 4 Session D00
Topics:

Enhancing atom-photon interaction with integrated nanophotonic resonators

Poster 50
Presenter: Xiaoyu Cheng (Unversity of Stuttgart, 5th Institute of Physics)
Authors: Benyamin Shnirman (Unversity of Stuttgart, 5th Institute of Physics), Hadiseh Alaeian (Purdue University), Hong Tang (Yale University), Tilman Pfau (University of Stuttgart), Robert Loew (University of Stuttgart)
Collaboration: 5. Physikalisches Institut and Center for Integrated Quantum Science and Technology (IQST), Universit&auml; t Stuttgart, Germany; <br /><br>School of Electrical and Computer Engineering, Purdue University, Indiana, USA; <br /><br>Department of Electrical Engineering, Yale University, Connecticut, USA; <br /><br>Institut f&uuml; r Mikroelektronik Stuttgart (IMS-Chips), Stuttgart, Germany<br /><br>&nbsp

We study hybrid devices consisting of thermal atomic vapor and nanophotonic structures for manipulating the interaction between atoms and photons. 

We exploit cooperative effects to develop a compact, on-demand and highly efficient single-photon-source using the Rydberg blockade effect. In order to excite Rb atoms to the Rydberg states efficiently, the corresponding light field is locally enhanced by ultralow-loss micro-ring resonators. Due to the large spatial extent of Rydberg atoms, we carefully design the ring resonators to realize sufficient interactions between Rydberg atoms and the evanescent field from the resonator. In order to create individual photons deterministically, we use the Four-Wave-Mixing (FWM) process in the Rydberg blockade regime inside a thermal vapor cell to develop a single-photon-source at room temperature.

To realize this goal, it is necessary to study Rydberg excitation in photonic integrated vapor cells. We excite and detect Rydberg excited Rb atoms with tapered, freestanding waveguides. Tapered narrow waveguides push out evanescent field that enables the excitation of Rydberg atoms. A specially designed, electric circuit patterned vapour cell and a trans-impedance amplifier enables electric read out of single Rydberg excitation.

POSTERS (157)