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Dive into the research topics where Jonathan D. Hood is active.

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Featured researches published by Jonathan D. Hood.


Applied Physics Letters | 2014

Nanowire photonic crystal waveguides for single-atom trapping and strong light-matter interactions

Su-Peng Yu; Jonathan D. Hood; Juan Muniz; Michael J. Martin; Richard Norte; Chen-Lung Hung; Seán M. Meenehan; Justin D. Cohen; Oskar Painter; H. J. Kimble

We present a comprehensive study of dispersion-engineered nanowire photonic crystal waveguides suitable for experiments in quantum optics and atomic physics with optically trapped atoms. Detailed design methodology and specifications are provided, as are the processing steps used to create silicon nitride waveguides of low optical loss in the near-IR. Measurements of the waveguide optical properties and power-handling capability are also presented.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Atom-atom interactions around the band edge of a photonic crystal waveguide.

Jonathan D. Hood; Akihisa Goban; Ana Asenjo-Garcia; Mingwu Lu; Su-Peng Yu; Darrick E. Chang; H. J. Kimble

Significance In recent years, there has been considerable effort to bring ultracold atoms into the realm of nanophotonics. Nanoscopic dielectric devices offer unprecedented opportunities to engineer novel capabilities for the control of atom–photon interactions. In particular, photonic crystals are periodic dielectric structures that display a photonic bandgap where light cannot propagate and provide a new setting for coherent photon-mediated interactions between atoms with tunable range. Here, we report the initial observation of cooperative atom–atom interactions around the band edge of a photonic crystal waveguide. Our experiment opens the door to fascinating scenarios, such as exploring many-body physics with large spin exchange energies and low dissipation. Tailoring the interactions between quantum emitters and single photons constitutes one of the cornerstones of quantum optics. Coupling a quantum emitter to the band edge of a photonic crystal waveguide (PCW) provides a unique platform for tuning these interactions. In particular, the cross-over from propagating fields E(x)∝e±ikxx outside the bandgap to localized fields E(x)∝e−κx|x| within the bandgap should be accompanied by a transition from largely dissipative atom–atom interactions to a regime where dispersive atom–atom interactions are dominant. Here, we experimentally observe this transition by shifting the band edge frequency of the PCW relative to the D1 line of atomic cesium for N¯=3.0±0.5 atoms trapped along the PCW. Our results are the initial demonstration of this paradigm for coherent atom–atom interactions with low dissipation into the guided mode.


Physical Review Letters | 2012

Enhancement of mechanical Q factors by optical trapping.

Kang-Kuen Ni; Richard Norte; Dalziel J. Wilson; Jonathan D. Hood; Darrick E. Chang; Oskar Painter; H. J. Kimble

The quality factor of a mechanical resonator is an important figure of merit for various sensing applications and for observing quantum behavior. Here, we demonstrate a technique to push the quality factor of a micromechanical resonator beyond conventional material and fabrication limits by using an optical field to stiffen or trap a particular motional mode. Optical forces increase the oscillation frequency by storing most of the mechanical energy in a nearly lossless optical potential, thereby strongly diluting the effect of material dissipation. By placing a 130 nm thick SiO2 pendulum in an optical standing wave, we achieve an increase in the pendulum center-of-mass frequency from 6.2 to 145 kHz. The corresponding quality factor increases 50-fold from its intrinsic value to a final value of Q=5.8(1.1)×10(5), representing more than an order of magnitude improvement over the conventional limits of SiO2 for this geometry. Our technique may enable new opportunities for mechanical sensing and facilitate observations of quantum behavior in this class of mechanical systems.


Nature Communications | 2014

Atom–light interactions in photonic crystals

Akihisa Goban; Chen-Lung Hung; Su-Peng Yu; Jonathan D. Hood; Juan Muniz; J. H. Lee; Michael J. Martin; A. C. McClung; K. S. Choi; Darrick E. Chang; Oskar Painter; H. J. Kimble


Physical Review Letters | 2015

Superradiance for Atoms Trapped along a Photonic Crystal Waveguide.

Akihisa Goban; Chen-Lung Hung; Jonathan D. Hood; Su-Peng Yu; Juan Muniz; Oskar Painter; H. J. Kimble


Bulletin of the American Physical Society | 2017

Atom-atom interactions in an 'Alligator' photonic crystal waveguide

Ana Asenjo-Garcia; Jonathan D. Hood; Akihisa Goban; Mingwu Lu; Su-Peng Yu; Darrick E. Chang; H. Jeff Kimble


Archive | 2016

Atom-photon Interactions In 1D Photonic Crystals: From cQED to band-gap physics

Jonathan D. Hood


Frontiers in Optics | 2015

Designing Light-Matter Interactions with Trapped Atoms in Two Dimensional Photonic Crystals Slabs

Juan Muniz; Su-Peng Yu; Andrew C. McClung; Michael J. Martin; Lucas Peng; Jonathan D. Hood; Akhisa Goban; Mingwu Lu; Chen-Lung Hung; H. Jeff Kimble


Bulletin of the American Physical Society | 2014

Engineered atom-light interactions in 1D photonic crystals

Michael J. Martin; Chen-Lung Hung; Su-Peng Yu; Akihisa Goban; Juan Muniz; Jonathan D. Hood; Richard Norte; Andrew C. McClung; Seán M. Meenehan; Justin D. Cohen; Jae Hoon Lee; Lucas Peng; Oskar Painter; H. Jeff Kimble


conference on lasers and electro optics | 2013

Trapped atoms in one-dimensional photonic crystals

Seán M. Meenehan; Chen-Lung Hung; Justin D. Cohen; Richard Norte; Akihisa Goban; Su-Peng Yu; Jonathan D. Hood; Darrick E. Chang; Oskar Painter; H. Jeff Kimble

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Su-Peng Yu

California Institute of Technology

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Oskar Painter

California Institute of Technology

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Akihisa Goban

California Institute of Technology

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H. J. Kimble

California Institute of Technology

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H. Jeff Kimble

California Institute of Technology

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Juan Muniz

California Institute of Technology

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Richard Norte

California Institute of Technology

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Michael J. Martin

National Institute of Standards and Technology

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