We show how to convert between partially coherent superpositions of a single photon with the vacuum by using linear optics and postselection based on homodyne measurements. We introduce a generalized quantum efficiency for such states and show that any conversion that decreases this quantity is possible. We also prove that our scheme is optimal by showing that no linear optical scheme with generalized conditional measurements, and with one single-rail qubit input, can improve the generalized efficiency.3 page(s
We discuss techniques for producing, manipulating, and measuring qubits encoded optically as vacuum-...
Over a century after the modern prediction of the existence of individual particles of light by Albe...
We propose an optical scheme to generate a superposition of coherent states with enhanced size adopt...
We show how to convert between partially coherent superpositions of a single photon with the vacuum ...
We analyze the problem of increasing the efficiency of single-photon sources or single-rail photonic...
Photon counting induces an effective nonlinear optical phase shift on certain states derived by line...
We review recent theoretical progress in finding ways to do quantum processing with linear optics, n...
Two qubit gates for photons are generally thought to require exotic materials with huge optical nonl...
We show that optically encoded two-qubit Bell states can be unambiguously discriminated with a succe...
We answer the question whether linear-optical processing of the states produced by one or multiple i...
Recently it was realized that linear optics and photodetectors with feedback can be used for theoret...
Single photons provide excellent quantum information carriers, but current schemes for preparing, pr...
Photon-photon interactions are an essential requirement of quantum photonic information processing. ...
This DPhil thesis presents two key works towards practical applications of quantum optics. Both work...
Quantum computers promise to increase greatly the efficiency of solving problems such as factoring l...
We discuss techniques for producing, manipulating, and measuring qubits encoded optically as vacuum-...
Over a century after the modern prediction of the existence of individual particles of light by Albe...
We propose an optical scheme to generate a superposition of coherent states with enhanced size adopt...
We show how to convert between partially coherent superpositions of a single photon with the vacuum ...
We analyze the problem of increasing the efficiency of single-photon sources or single-rail photonic...
Photon counting induces an effective nonlinear optical phase shift on certain states derived by line...
We review recent theoretical progress in finding ways to do quantum processing with linear optics, n...
Two qubit gates for photons are generally thought to require exotic materials with huge optical nonl...
We show that optically encoded two-qubit Bell states can be unambiguously discriminated with a succe...
We answer the question whether linear-optical processing of the states produced by one or multiple i...
Recently it was realized that linear optics and photodetectors with feedback can be used for theoret...
Single photons provide excellent quantum information carriers, but current schemes for preparing, pr...
Photon-photon interactions are an essential requirement of quantum photonic information processing. ...
This DPhil thesis presents two key works towards practical applications of quantum optics. Both work...
Quantum computers promise to increase greatly the efficiency of solving problems such as factoring l...
We discuss techniques for producing, manipulating, and measuring qubits encoded optically as vacuum-...
Over a century after the modern prediction of the existence of individual particles of light by Albe...
We propose an optical scheme to generate a superposition of coherent states with enhanced size adopt...