Neereja Sundaresan
Princeton University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Neereja Sundaresan.
Physical Review X | 2017
Mattias Fitzpatrick; Neereja Sundaresan; Andy C. Y. Li; Jens Koch; Andrew Houck
Nonequilibrium phase transitions, where the physical properties of a system change suddenly, are of fundamental importance in condensed matter physics but are not well understood. Such phase transitions are now observed in a circuit quantum electrodynamics lattice, paving the way for greater insight into exotic materials.
Physical Review A | 2014
Srikanth Srinivasan; Neereja Sundaresan; Darius Sadri; Yanbing Liu; Jay Gambetta; Terri Yu; S. M. Girvin; Andrew Houck
We demonstrate the ability to control the spontaneous emission from a superconducting qubit coupled to a cavity. The time domain profile of the emitted photon is shaped into a symmetric truncated exponential. The experiment is enabled by a qubit coupled to a cavity, with a coupling strength that can be tuned in tens of nanoseconds while maintaining a constant dressed state emission frequency. Symmetrization of the photonic wave packet will enable use of photons as flying qubits for transfering the quantum state between atoms in distant cavities.
Bulletin of the American Physical Society | 2015
Neereja Sundaresan; Yanbing Liu; Darius Sadri; Laszlo J. Szocs; Devin Underwood; Moein Malekakhlagh; Hakan E. Türeci; Andrew Houck
The study of light-matter interaction has seen a resurgence in recent years, stimulated by highly controllable, precise, and modular experiments in cavity quantum electrodynamics (QED). The achievement of strong coupling, where the coupling between a single atom and fundamental cavity mode exceeds the decay rates, was a major milestone that opened the doors to a multitude of new investigations. Here we introduce multimode strong coupling (MMSC), where the coupling is comparable to the free spectral range (FSR) of the cavity, i.e. the rate at which a qubit can absorb a photon from the cavity is comparable to the round trip transit rate of a photon in the cavity. We realize, via the circuit QED architecture, the first experiment accessing the MMSC regime, and report remarkably widespread and structured resonance fluorescence, whose origin extends beyond cavity enhancement of sidebands. Our results capture complex multimode, multiphoton processes, and the emergence of ultranarrow linewidths. Beyond the novel phenomena presented here, MMSC opens a major new direction in the exploration of light-matter interactions.
Bulletin of the American Physical Society | 2018
Rex Lundgren; Neereja Sundaresan; Guanyu Zhu; Alexey V. Gorshkov; Andrew Houck
Bulletin of the American Physical Society | 2018
Neereja Sundaresan; Rex Lundgren; Guanyu Zhu; Alexey V. Gorshkov; Andrew Houck
Bulletin of the American Physical Society | 2017
Mattias Fitzpatrick; Neereja Sundaresan; Andy C. Y. Li; Jens Koch; Andrew Houck
Bulletin of the American Physical Society | 2017
Andy C. Y. Li; Mattias Fitzpatrick; Neereja Sundaresan; Andrew Houck; Jens Koch
Bulletin of the American Physical Society | 2017
Neereja Sundaresan
Bulletin of the American Physical Society | 2016
Neereja Sundaresan; Yanbing Liu; Darius Sadri; Laszlo Szocs; Devin Underwood; Moein Malekakhlagh; Hakan E. Türeci; Andrew Houck
Bulletin of the American Physical Society | 2016
Andy C. Y. Li; Mattias Fitzpatrick; Neereja Sundaresan; Andrew Houck; Jens Koch