Shankari Rajagopal
University of California, Santa Barbara
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Publication
Featured researches published by Shankari Rajagopal.
Review of Scientific Instruments | 2015
Ruwan Senaratne; Shankari Rajagopal; Zachary Geiger; Kurt Fujiwara; Vyacheslav Lebedev; David Weld
We present a simple and inexpensive design for a multichannel effusive oven nozzle which provides improved atomic beam collimation and thus extended oven lifetimes. Using this design, we demonstrate an atomic lithium source suitable for trapped-atom experiments. At a nozzle temperature of 525 °C, the collimated atomic beam flux directly after the nozzle is 1.2 × 10(14) atoms/s with a peak beam intensity greater than 5.0 × 10(16) atoms/s/sr. This suggests an oven lifetime of several decades of continuous operation.
Annalen der Physik | 2017
Shankari Rajagopal; Kurt Fujiwara; Ruwan Senaratne; Kevin Singh; Zachary Geiger; David Weld
Ultracold atomic physics experiments offer a nearly ideal context for the investigation of quantum systems far from equilibrium. We describe three related emerging directions of research into extreme non-equilibrium phenomena in atom traps: quantum emulation of ultrafast atom-light interactions, coherent phasonic spectroscopy in tunable quasicrystals, and realization of Floquet matter in strongly-driven lattice systems. We show that all three should enable quantum emulation in parameter regimes inaccessible in solid-state experiments, facilitating a complementary approach to open problems in non-equilibrium condensed matter.
New Journal of Physics | 2018
Kurt Fujiwara; Zachary Geiger; Kevin Singh; Ruwan Senaratne; Shankari Rajagopal; Mikhail Lipatov; Toshihiko Shimasaki; David Weld
We report the experimental study of a harmonic oscillator in the relativistic regime. The oscillator is composed of Bose-condensed lithium atoms in the third band of an optical lattice, which have an energy-momentum relation nearly identical to that of a massive relativistic particle, with an effective mass reduced below the bare value and a greatly reduced effective speed of light. Imaging the shape of oscillator trajectories at velocities up to 98% of the effective speed of light reveals a crossover from sinusoidal to nearly photon-like propagation. The existence of a maximum velocity causes the measured period of oscillations to increase with energy; our measurements reveal beyond-leading-order contributions to this relativistic anharmonicity. We observe an intrinsic relativistic dephasing of oscillator ensembles, and a monopole oscillation with exactly the opposite phase of that predicted for non-relativistic harmonic motion. All observed dynamics are in quantitative agreement with longstanding but hitherto-untested relativistic predictions.
arXiv: Quantum Physics | 2018
Kevin Singh; Kurt Fujiwara; Zachary Geiger; Ethan Simmons; Mikhail Lipatov; Alec Cao; Peter Dotti; Shankari Rajagopal; Ruwan Senaratne; Toshihiko Shimasaki; Markus Heyl; André Eckardt; David Weld
arXiv: Quantum Gases | 2018
Kurt Fujiwara; Kevin Singh; Zachary Geiger; Ruwan Senaratne; Shankari Rajagopal; Mikhail Lipatov; David Weld
Physical Review Letters | 2018
Zachary Geiger; Kurt Fujiwara; Kevin Singh; Ruwan Senaratne; Shankari Rajagopal; Mikhail Lipatov; Toshihiko Shimasaki; Rodislav Driben; V. V. Konotop; T. Meier; David Weld
Nature Communications | 2018
Ruwan Senaratne; Shankari Rajagopal; Toshihiko Shimasaki; Peter Dotti; Kurt Fujiwara; Kevin Singh; Zachary Geiger; David Weld
Bulletin of the American Physical Society | 2018
Shankari Rajagopal; Ruwan Senaratne; Toshihiko Shimasaki; Peter Dotti; David Weld
Bulletin of the American Physical Society | 2018
Peter Dotti; Toshihiko Shimasaki; Ruwan Senaratne; Shankari Rajagopal; David Weld
Bulletin of the American Physical Society | 2018
Shankari Rajagopal; Ruwan Senaratne; Toshihiko Shimasaki; Peter Dotti; David Weld