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Dive into the research topics where Christine Silberhorn is active.

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Featured researches published by Christine Silberhorn.


Physical Review Letters | 2008

Heralded generation of ultrafast single photons in pure quantum states

Peter J. Mosley; Jeff S. Lundeen; Brian J. Smith; Piotr Wasylczyk; Alfred B. U'Ren; Christine Silberhorn; Ian A. Walmsley

We present an experimental demonstration of heralded single photons prepared in pure quantum states from a parametric down-conversion source. It is shown that, through controlling the modal structure of the photon pair emission, one can generate pairs in factorable states and thence eliminate the need for spectral filters in multiple-source interference schemes. Indistinguishable heralded photons were generated in two independent spectrally engineered sources and Hong-Ou-Mandel interference observed between them without spectral filters. The measured visibility of 94.4% sets a minimum bound on the mean photon purity.


Physical Review Letters | 2001

Generation of continuous variable Einstein-Podolsky-Rosen entanglement via the Kerr nonlinearity in an optical fiber.

Christine Silberhorn; Ping Koy Lam; Oliver Weiss; F. Konig; F Korolkova; Gerd Leuchs

We report on the generation of a continuous variable Einstein-Podolsky-Rosen (EPR) entanglement using an optical fiber interferometer. The Kerr nonlinearity in the fiber is exploited for the generation of two independent squeezed beams. These interfere at a beam splitter and EPR entanglement is obtained between the output beams. The correlation of the amplitude (phase) quadratures is measured to be 4.0+/-0.2 (4.0+/-0.4) dB below the quantum noise limit. The sum criterion for these squeezing variances 0.80+/-0.03<2 verifies the nonseparability of the state. The product of the inferred uncertainties for one beam (0.64+/-0.08) is well below the EPR limit of unity.


Optics Letters | 2003

Fiber-assisted detection with photon number resolution

Daryl Achilles; Christine Silberhorn; Cezary Sliwa; Konrad Banaszek; Ian A. Walmsley

We report the development of a photon-number-resolving detector based on a fiber-optical setup and a pair of standard avalanche photodiodes. The detector is capable of resolving individual photon numbers and operates on the well-known principle by which a single-mode input state is split into a large number (eight) of output modes. We reconstruct the photon statistics of weak coherent input light from experimental data and show that there is a high probability of inferring the input photon number from a measurement of the number of detection events on a single run.


Physical Review Letters | 2011

Decoherence and disorder in quantum walks: From ballistic spread to localization

Andreas Schreiber; K. N. Cassemiro; Václav Potoček; A. Gábris; Igor Jex; Christine Silberhorn

We investigate the impact of decoherence and static disorder on the dynamics of quantum particles moving in a periodic lattice. Our experiment relies on the photonic implementation of a one-dimensional quantum walk. The pure quantum evolution is characterized by a ballistic spread of a photons wave packet along 28 steps. By applying controlled time-dependent operations we simulate three different environmental influences on the system, resulting in a fast ballistic spread, a diffusive classical walk, and the first Anderson localization in a discrete quantum walk architecture.


Physical Review A | 2002

Polarization squeezing and continuous-variable polarization entanglement

Natalia Korolkova; Gerd Leuchs; Rodney Loudon; Timothy C. Ralph; Christine Silberhorn

A concept of polarization entanglement for continuous variables is introduced. For this purpose the Stokes-parameter operators and the associated Poincare sphere, which describe the quantum-optical polarization properties of light, are defined and their basic properties are reviewed. The general features of the Stokes operators are illustrated by evaluation of their means and variances for a range of simple polarization states. Some of the examples show polarization squeezing, in which the variances of one or more Stokes parameters are smaller than the coherent-state value. The main object of the paper is the application of these concepts to bright squeezed light. It is shown that a light beam formed by interference of two orthogonally polarized quadrature-squeezed beams exhibits squeezing in some of the Stokes parameters. Passage of such a primary polarization-squeezed beam through suitable optical components generates a pair of polarization-entangled light beams with the nature of a two-mode squeezed state. Implementation of these schemes using the double-fiber Sagnac interferometer provides an efficient method for the generation of bright nonclassical polarization states. The important advantage of these nonclassical polarization states for quantum communication is the possibility of experimentally determining all of the relevant conjugate variables of both squeezed and entangled fields using only linear optical elements followed by direct detection.


Science | 2012

A 2D quantum walk simulation of two-particle dynamics

Andreas Schreiber; A. Gábris; Peter P. Rohde; Kaisa Laiho; M. Štefaňák; Václav Potoček; Craig S. Hamilton; Igor Jex; Christine Silberhorn

Here, There, Everywhere Random walks are a powerful mathematical method that can be used to simulate certain processes in biology, chemistry, or even the stock market. They present a statistical method for mapping the possible routes that processes can take. Quantum walks are expected to be able to probe multiple paths simultaneously. Quantum walks have been demonstrated for one-dimensional, or straight-line, walks. Now, Schreiber et al. (p. 55, published online 8 March) demonstrate an optical system that can simulate quantum walks over a two-dimensional system, thereby providing the capability of describing much more complex processes. An optical approach extends quantum walk methodology from one to two dimensions. Multidimensional quantum walks can exhibit highly nontrivial topological structure, providing a powerful tool for simulating quantum information and transport systems. We present a flexible implementation of a two-dimensional (2D) optical quantum walk on a lattice, demonstrating a scalable quantum walk on a nontrivial graph structure. We realized a coherent quantum walk over 12 steps and 169 positions by using an optical fiber network. With our broad spectrum of quantum coins, we were able to simulate the creation of entanglement in bipartite systems with conditioned interactions. Introducing dynamic control allowed for the investigation of effects such as strong nonlinearities or two-particle scattering. Our results illustrate the potential of quantum walks as a route for simulating and understanding complex quantum systems.


Physical Review Letters | 2004

Efficient Conditional Preparation of High-Fidelity Single Photon States for Fiber-Optic Quantum Networks

Alfred B. U'Ren; Christine Silberhorn; Konrad Banaszek; Ian A. Walmsley

A prerequisite for practical quantum information processing is an efficient source of high-fidelity single photons. We report single photon preparation with a conditional detection efficiency exceeding 51% and detection rate of up to 8.5 times 105 counts/[smiddotmW]


Physical Review Letters | 2011

Highly efficient single-pass source of pulsed single-mode twin beams of light.

Andreas Eckstein; Andreas Christ; Peter J. Mosley; Christine Silberhorn

Andreas Eckstein,1, ∗ Andreas Christ,1 Peter J. Mosley,2 and Christine Silberhorn3 Max Planck Institute for the Science of Light, Günther-Scharowsky-Str. 1, 91054 Erlangen, Germany University of Bath, BA2 7AY, Bath UK University of Paderborn, Warburgerstr. 100, 33098 Paderborn, Germany Max Planck Institute for the Science of Light, Günther-Scharowsky-Str. 1, 91054 Erlangen, Germany (Dated: October 18, 2010)


Nature Communications | 2013

A versatile source of single photons for quantum information processing

Michael Förtsch; Josef U. Fürst; Christoffer Wittmann; Dmitry Strekalov; Andrea Aiello; M. V. Chekhova; Christine Silberhorn; Gerd Leuchs; Christoph Marquardt

The generation of high-quality single-photon states with controllable narrow spectral bandwidths and central frequencies is key to facilitate efficient coupling of any atomic system to non-classical light fields. Such an interaction is essential in numerous experiments for fundamental science and applications in quantum communication and information processing, as well as in quantum metrology. Here we implement a fully tunable, narrow-band and efficient single-photon source based on a whispering gallery mode resonator. Our disk-shaped, monolithic and intrinsically stable resonator is made of lithium niobate and supports a cavity-assisted spontaneous parametric down-conversion process. The generated photon pairs are emitted into two highly tunable resonator modes. We verify wavelength tuning over 100 nm of both modes with controllable bandwidth between 7.2 and 13 MHz. Heralding of single photons yields anti-bunching with g(2)(0)<0.2.


Journal of Modern Optics | 2004

Photon-number-resolving detection using time-multiplexing

Daryl Achilles; Christine Silberhorn; Cezary Sliwa; Konrad Banaszek; Ian A. Walmsley; Michael J. Fitch; Bryan C. Jacobs; Todd B. Pittman; J. D. Franson

A time-multiplexed detector capable of photon number resolution was constructed. The detector is analyzed theoretically and used to verify the photon statistics of weak coherent light. Conditional state preparation using the detector is explored

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Georg Harder

University of Paderborn

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Vahid Ansari

University of Paderborn

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