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Dive into the research topics where Eilon Poem is active.

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Featured researches published by Eilon Poem.


european quantum electronics conference | 2017

Ultrafast all-optical coherent control of silicon vacancy colour centres in diamond

Jonas Nils Becker; Johannes Görlitz; Carsten Arend; Christian Weinzetl; Eilon Poem; Joshua Nunn; Ian A. Walmsley; Christoph Becher

Complete control of the state of a quantum bit (qubit) is a fundamental requirement for any quantum information processing (QIP) system. In this context, all-optical control techniques offer the advantage of a well-localized and potentially ultrafast manipulation of individual qubits in multi-qubit systems. Recently, the negatively charged silicon vacancy centre (SiV−) in diamond has emerged as a novel promising system for QIP due to its superior spectral properties and advantageous electronic structure, offering an optically accessible Λ-type level system with large orbital splittings. Here, we report on all-optical resonant as well as Raman-based coherent control of a single SiV− using ultrafast pulses as short as 1 ps, significantly faster than the centres phonon-limited ground state coherence time of about 40 ns. These measurements prove the accessibility of a complete set of single-qubit operations relying solely on optical fields and pave the way for high-speed QIP applications using SiV− centres.


conference on lasers and electro optics | 2016

A cavity-enhanced room-temperature broadband Raman memory

Patrick M. Ledingham; J. H. D. Munns; S. E. Thomas; Tessa Champion; Cheng Qiu; Krzysztof T. Kaczmarek; Amir Feizpour; Eilon Poem; Ian A. Walmsley; Josh Nunn; Dylan J. Saunders

Quantum memories enable the synchronisation of photonic operations. Raman memories are a promising platform, but are susceptible to four-wave mixing noise. We present a demonstration of a cavity-enhanced Raman memory, showing suppression of four-wave mixing.


Physical Review B | 2015

Broadband noise-free optical quantum memory with neutral nitrogen-vacancy centers in diamond

Eilon Poem; C. Weinzetl; J. Klatzow; Krzysztof T. Kaczmarek; J. H. D. Munns; Tessa Champion; Dylan J. Saunders; Joshua Nunn; Ian A. Walmsley

It is proposed that the ground-state manifold of the neutral nitrogen-vacancy center in diamond could be used as a quantum two-level system in a solid-state-based implementation of a broadband noise-free quantum optical memory. The proposal is based on the same-spin Λ-type three-level system created between the two E orbital ground states and the A1 orbital excited state of the center, and the cross-linear polarization selection rules obtained with the application of a transverse electric field or uniaxial stress. Possible decay and decoherence mechanisms of this system are discussed, and it is shown that high-efficiency, noise-free storage of photons as short as a few tens of picoseconds for at least a few nanoseconds could be possible at low temperature.


international conference on transparent optical networks | 2018

Fast, Noise-Free Memory for Photon Synchronization at Room Temperature

Eilon Poem; Ran Finkelstein; Ohad Michel; Ohr Lahad; Ofer Firstenberg

We implement a new, noise-free, broadband light storage scheme, opening the way to faithful multiphoton synchronization. Future quantum photonic networks require coherent optical memories for synchronizing quantum sources and gates of probabilistic nature. We demonstrate a fast ladder memory (FLAME) mapping the optical field onto the superposition between electronic orbitals of rubidium vapor. Using a ladder-level system of orbital transitions with nearly degenerate frequencies simultaneously enables high bandwidth, low noise, and long memory lifetime. We store and retrieve 1.7-ns-long pulses, containing 0.5 photons on average, and observe short-time external efficiency of 25%, memory lifetime (1/e) of 86 ns, and below 10−4 added noise photons. Consequently, coupling this memory to a probabilistic source would enhance the on-demand photon generation probability by a factor of 12, the highest number yet reported for a noise-free, room temperature memory. This paves the way toward the controlled production of large quantum states of light from probabilistic photon sources.


Physical Review A | 2017

Theory of noise suppression in Λ -type quantum memories by means of a cavity

Joshua Nunn; J. H. D. Munns; S. E. Thomas; Krzysztof T. Kaczmarek; ChangHua Qiu; Amir Feizpour; Eilon Poem; Benjamin Brecht; Dylan J. Saunders; Patrick M. Ledingham; Dileep V. Reddy; M. G. Raymer; I. A. Walmsley

Quantum memories, capable of storing single photons or other quantum states of light, to be retrieved on demand, offer a route to large-scale quantum information processing with light. A promising class of memories is based on far-off-resonant Raman absorption in ensembles of Λ-type atoms. However, at room temperature these systems exhibit unwanted four-wave mixing, which is prohibitive for applications at the single-photon level. Here, we show how this noise can be suppressed by placing the storage medium inside a moderate-finesse optical cavity, thereby removing the main roadblock hindering this approach to quantum memory.


Physical Review Letters | 2012

Two-photon path-entangled states in multimode waveguides.

Eilon Poem; Yehonatan Gilead; Yaron Silberberg

We experimentally show that two-photon path-entangled states can be coherently manipulated by multimode interference in multimode waveguides. By measuring the output two-photon spatial correlation function versus the phase of the input state, we show that multimode waveguides perform as nearly ideal multiport beam splitters at the quantum level, creating a large variety of entangled and separable multipath two-photon states.


Physical Review A | 2012

Fourier processing of quantum light

Eilon Poem; Yehonatan Gilead; Yoav Lahini; Yaron Silberberg

It is shown that a classical optical Fourier processor can be used for the shaping of quantum correlations between two or more photons, and the class of Fourier masks applicable in the multiphoton Fourier space is identified. This concept is experimentally demonstrated using two types of periodic phase masks illuminated with path-entangled photon pairs, a highly non-classical state of light. Applied first were sinusoidal phase masks, emulating two-particle quantum walk on a periodic lattice, yielding intricate correlation patterns with various spatial bunching and anti-bunching effects depending on the initial state. Then, a periodic Zernike-like filter was applied on top of the sinusoidal phase masks. Using this filter, phase information lost in the original correlation measurements was retrieved.


arXiv: Quantum Physics | 2016

Quantum Enhanced Phase Retrieval

Liat Liberman; Yonatan Israel; Eilon Poem; Yaron Silberberg

The retrieval of phases from intensity measurements is a key process in many fields in science, from optical microscopy to x-ray crystallography. Here we study phase retrieval of a one-dimensional multi-phase object that is illuminated by quantum states of light. We generalize the iterative Gerchberg-Saxton algorithm to photon correlation measurements on the output plane, rather than the standard intensity measurements. We report a numerical comparison of classical and quantum phase retrieval of a small one-dimensional object of discrete phases from its far-field diffraction. While the classical algorithm was ambiguous and often converged to wrong solutions, quantum light produced a unique reconstruction with smaller errors and faster convergence. We attribute these improvements to a larger Hilbert space that constrains the algorithm.


Optics Letters | 2016

Free-space spectro-temporal and spatio-temporal conversion for pulsed light

Eilon Poem; Thomas Hiemstra; Andreas Eckstein; Xian-Min Jin; Ian A. Walmsley

We present a new apparatus for converting between spectral and temporal representation of optical information, designed for operating with pulsed light sources. Every input pulse is converted into a pulse train in which the pulse intensities represent the spatial or temporal frequency spectrum of the original pulse. This method enables spectral measurements to be performed by following the temporal response of a single detector and, thus, is useful for real-time spectroscopy and imaging, and for spectral correlation measurements. The apparatus is based on multiple round-trips inside a 2f-cavity-like mirror arrangement in which the spectrum is spread on the back focal plane, and a small section of it is allowed to escape after each round-trip. Unlike existing methods, it relies neither on fibers nor on interference effects. It offers easy wavelength range tunability, and a prototype built achieves over 10% average efficiency in the near infrared (NIR). We demonstrate the application of the prototype for an efficient measurement of the joint spectrum of a non-degenerate bi-photon source in which one of the photons is in the NIR.


european quantum electronics conference | 2017

Localized orbital electronic states of colour centres in diamond for strong and fast light-matter interactions

C. Weinzetl; Jonas Nils Becker; Johannes Görlitz; Eilon Poem; J. Klatzow; Patrick M. Ledingham; Dylan J. Saunders; Ian A. Walmsley; Christoph Becher; Joshua Nunn

For memory applications and optical control of qubits ultrafast manipulation and high coupling efficiencies are desirable. Ultrafast coherent control can be achieved by the off-resonant Raman scheme [1]. There exist several colour centres with an optically accessible lambda-type energy structure which offer a level splitting large enough for broadband laser pulses.

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Yaron Silberberg

Weizmann Institute of Science

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