Thomas Mittiga
Stony Brook University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Thomas Mittiga.
Scientific Reports | 2015
Connor Kupchak; Thomas Mittiga; Bertus Jordaan; Mehdi Namazi; Christian Nölleke; Eden Figueroa
An optical quantum memory is a stationary device that is capable of storing and recreating photonic qubits with a higher fidelity than any classical device. Thus far, these two requirements have been fulfilled for polarization qubits in systems based on cold atoms and cryogenically cooled crystals. Here, we report a room-temperature memory capable of storing arbitrary polarization qubits with a signal-to-background ratio higher than 1 and an average fidelity surpassing the classical benchmark for weak laser pulses containing 1.6 photons on average, without taking into account non-unitary operation. Our results demonstrate that a common vapor cell can reach the low background noise levels necessary for polarization qubit storage using single-photon level light, and propels atomic-vapor systems towards a level of functionality akin to other quantum information processing architectures.
Bulletin of the American Physical Society | 2015
Mehdi Namazi; Thomas Mittiga; Connor Kupchak; Sam Rind; Eden Figueroa
The ability to interface multiple optical quantum devices is a key milestone towards the development of future quantum networks that are capable of sharing and processing quantum information encoded in light. One of the requirements for any node of these quantum networks will be cascadability, i.e. the ability to drive the input of a node using the output of another node. Here, we report the cascading of quantum light-matter interfaces by storing few-photon level pulses of light in warm vapor followed by the subsequent storage of the retrieved field onto a second ensemble. We demonstrate that even after the sequential storage, the final signal-to-background ratio can remain greater than 1 for weak pulses containing 8 input photons on average.
arXiv: Quantum Physics | 2014
Connor Kupchak; Thomas Mittiga; Bertus Jordaan; Mehdi Namazi; Christian Nölleke; Eden Figueroa
arXiv: Quantum Physics | 2018
Thomas Mittiga; Satcher Hsieh; Chong Zu; Bryce Kobrin; Francisco Machado; Prabudhya Bhattacharyya; Nicholas Rui; A. Jarmola; Soonwon Choi; Dmitry Budker; Norman Yao
Bulletin of the American Physical Society | 2018
Prabudhya Bhattacharyya; Satcher Hsieh; Thomas Mittiga; Bryce Korbin; Francisco Machado; Chong Zu; Thomas P. Smart; Soonwon Choi; Viktor V. Struzhkin; Raymond Jeanloz; Norman Yao
Bulletin of the American Physical Society | 2018
Chong Zu; Francisco Machado; Bryce Kobrin; Thomas Mittiga; Satcher Hsieh; Prabudhya Bhattacharyya; Soonwon Choi; Norman Yao
Bulletin of the American Physical Society | 2017
Thomas Mittiga; Satcher Hsieh; Chong Zu; Chenhao Jin; Jonghwan Kim; Bryce Kobrin; Feng Wang; Norman Yao
Bulletin of the American Physical Society | 2017
Satcher Hsieh; Thomas Mittiga; Chong Zu; Thomas Smart; Bryce Kobrin; Viktor V. Struzhkin; Raymond Jeanloz; Norman Yao
Frontiers in Optics | 2014
Bertus Jordaan; Connor Kupchak; Thomas Mittiga; Mehdi Namazi; Christian Noelleke; Eden Figueroa
Bulletin of the American Physical Society | 2014
Connor Kupchak; Thomas Mittiga; Bertus Jordan; Mehdi Nazami; Christian Nölleke; Eden Figueroa