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Dive into the research topics where Timothy M. Sweeney is active.

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Featured researches published by Timothy M. Sweeney.


Nature Photonics | 2013

Quantum control of a spin qubit coupled to a photonic crystal cavity

Samuel Carter; Timothy M. Sweeney; Mijin Kim; Chul Soo Kim; Dmitry Solenov; Sophia E. Economou; Thomas L. Reinecke; Lily Yang; Allan S. Bracker; D. Gammon

Using a long-lived quantum-dot spin qubit coupled to a GaAs-based photonic crystal cavity, researchers demonstrate complete quantum control of an electron spin qubit. By cleverly controlling the charge state of the InAs quantum dot using laser pulses, optical initialization, control and readout of an electron spin are achieved.


Nano Letters | 2013

Leveraging Crystal Anisotropy for Deterministic Growth of InAs Quantum Dots with Narrow Optical Linewidths

Michael K. Yakes; Lily Yang; Allan S. Bracker; Timothy M. Sweeney; P. Brereton; Mijin Kim; Chul Soo Kim; Patrick M. Vora; D. Park; Samuel Carter; D. Gammon

Crystal growth anisotropy in molecular beam epitaxy usually prevents deterministic nucleation of individual quantum dots when a thick GaAs buffer is grown over a nanopatterned substrate. Here, we demonstrate how this anisotropy can actually be used to mold nucleation sites for single dots on a much thicker buffer than has been achieved by conventional techniques. This approach greatly suppresses the problem of defect-induced line broadening for single quantum dots in a charge-tunable device, giving state-of-the-art optical linewidths for a system widely studied as a spin qubit for quantum information.


Nature Communications | 2015

Spin–cavity interactions between a quantum dot molecule and a photonic crystal cavity

Patrick M. Vora; Allan S. Bracker; Samuel Carter; Timothy M. Sweeney; Mijin Kim; Chul Soo Kim; Lily Yang; P. Brereton; Sophia E. Economou; D. Gammon

The integration of InAs/GaAs quantum dots into nanophotonic cavities has led to impressive demonstrations of cavity quantum electrodynamics. However, these demonstrations are primarily based on two-level excitonic systems. Efforts to couple long-lived quantum dot electron spin states with a cavity are only now succeeding. Here we report a two-spin–cavity system, achieved by embedding an InAs quantum dot molecule within a photonic crystal cavity. With this system we obtain a spin singlet–triplet Λ-system where the ground-state spin splitting exceeds the cavity linewidth by an order of magnitude. This allows us to observe cavity-stimulated Raman emission that is highly spin-selective. Moreover, we demonstrate the first cases of cavity-enhanced optical nonlinearities in a solid-state Λ-system. This provides an all-optical, local method to control the spin exchange splitting. Incorporation of a highly engineerable quantum dot molecule into the photonic crystal architecture advances prospects for a quantum network.


Physical Review B | 2014

Strong hyperfine-induced modulation of an optically driven hole spin in an InAs quantum dot

Samuel Carter; Sophia E. Economou; A. Greilich; Edwin Barnes; Timothy M. Sweeney; Allan S. Bracker; D. Gammon

Compared to electrons, holes in InAs quantum dots have a significantly weaker hyperfine interaction that leads to less dephasing from nuclear spins. Thus many recent studies have suggested that nuclear spins are unimportant for hole spin dynamics compared to electric field fluctuations. We show that the hole hyperfine interaction can have a strong effect on hole spin coherence measurements through a nuclear feedback effect. The nuclear polarization is generated through a unique process that is dependent on the anisotropy of the hole hyperfine interaction and the coherent precession of nuclear spins, giving rise to strong modulation at the nuclear precession frequency.


Frontiers in Optics | 2014

Coupling Spins in Quantum Dots to Photonic Crystal Cavities

Sam Carter; Timothy M. Sweeney; Patrick M. Vora; Mijin Kim; Chul Soo Kim; Lily Yang; Peter Brereton; Dmitry Solenov; Sophia E. Economou; Thomas L. Reinecke; Allan S. Bracker; D. Gammon

We have incorporated charge-controlled quantum dots and pairs of coupled dots into photonic crystal cavities and made use of the spin degree of freedom. Optical measurements demonstrate potential as a spin-photon interface and photon source.


Nature Physics | 2016

Raman coherence in a circuit quantum electrodynamics lambda system

S. Novikov; Timothy M. Sweeney; J.E. Robinson; S.P. Premaratne; Baladitya Suri; F. C. Wellstood; B.S. Palmer


Bulletin of the American Physical Society | 2015

Electromagnetically Induced Superluminal Light in a 3D Transmon Device

Timothy M. Sweeney; S. Novikov; B. Suri; Shavindra Premarante; Jen-Hao Yeh; F. C. Wellstood; B.S. Palmer


Bulletin of the American Physical Society | 2015

Electromagnetically induced transparency and coherent population trapping with a superconducting artificial atom

S. Novikov; Timothy M. Sweeney; J.E. Robinson; B. Suri; F. C. Wellstood; B.S. Palmer


Bulletin of the American Physical Society | 2014

Cavity QED in a Quantum Dot Molecule Coupled to a Photonic Crystal Cavity

Patrick M. Vora; Samuel Carter; Chul Soo Kim; Mijin Kim; Timothy M. Sweeney; Lily Yang; P. Brereton; Allan S. Bracker; D. Gammon


Bulletin of the American Physical Society | 2014

Cavity-stimulated Raman emission from a single quantum dot spin

Timothy M. Sweeney

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Allan S. Bracker

United States Naval Research Laboratory

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D. Gammon

United States Naval Research Laboratory

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Lily Yang

United States Naval Research Laboratory

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Mijin Kim

United States Naval Research Laboratory

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Samuel Carter

United States Naval Research Laboratory

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Chul Soo Kim

United States Naval Research Laboratory

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Sophia E. Economou

United States Naval Research Laboratory

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Patrick M. Vora

University of Pennsylvania

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P. Brereton

University of Cambridge

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