The ability to prepare arbitrary quantum states within a certain Hilbert space is the holy grail of quantum information technology. It is particularly important for light, as this is the only physical system that can communicate quantum information over long distances. We propose and experimentally verify a scheme to produce arbitrary single-mode states of a travelling light field up to the two-photon level. The desired state is remotely prepared in the signal channel of spontaneous parametric down-conversion by means of conditional measurements on the idler channel. The measurement consists of bringing the idler field into interference with two ancilla coherent states, followed by two single-photon detectors, which, in coincidence, herald ...
Parametric down-conversion is a second-order nonlinear optical process annihilating a pump photon an...
We present an experimental demonstration of heralded single photons prepared in pure quantum states ...
We put forward an experimentally feasible technique to generate engineered entangled states in d-dim...
Over a century after the modern prediction of the existence of individual particles of light by Albe...
Application of quantum sources in communication and information processing are believed to bring a n...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
Quantum optics experiments frequently involve interfering single photons and coherent states. In the...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
We have built a quantum light source capable of producing different types of quantum states. The qua...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
We implement experimentally a deterministic method to prepare and measure so called single-photon tw...
We study distinguishing information in the context of photonic quantum interference tailored for pra...
By using a partial polarizer to apply a generalized polarization measurement to one photon of a pola...
Remote state preparation (RSP) provides an indirect way of transferring quantum information based on...
State preparation via conditional output measurement on a beam splitter is studied, assuming the sig...
Parametric down-conversion is a second-order nonlinear optical process annihilating a pump photon an...
We present an experimental demonstration of heralded single photons prepared in pure quantum states ...
We put forward an experimentally feasible technique to generate engineered entangled states in d-dim...
Over a century after the modern prediction of the existence of individual particles of light by Albe...
Application of quantum sources in communication and information processing are believed to bring a n...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
Quantum optics experiments frequently involve interfering single photons and coherent states. In the...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
We have built a quantum light source capable of producing different types of quantum states. The qua...
Single photons - discrete wavepackets of light - are one of the most fundamental entities in physics...
We implement experimentally a deterministic method to prepare and measure so called single-photon tw...
We study distinguishing information in the context of photonic quantum interference tailored for pra...
By using a partial polarizer to apply a generalized polarization measurement to one photon of a pola...
Remote state preparation (RSP) provides an indirect way of transferring quantum information based on...
State preparation via conditional output measurement on a beam splitter is studied, assuming the sig...
Parametric down-conversion is a second-order nonlinear optical process annihilating a pump photon an...
We present an experimental demonstration of heralded single photons prepared in pure quantum states ...
We put forward an experimentally feasible technique to generate engineered entangled states in d-dim...