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Dive into the research topics where Bas Hensen is active.

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Featured researches published by Bas Hensen.


Nature | 2015

Loophole-free Bell inequality violation using electron spins separated by 1.3 kilometres

Bas Hensen; Hannes Bernien; A. E. Dréau; Andreas Reiserer; Norbert Kalb; Machiel Blok; J. Ruitenberg; R. F. L. Vermeulen; R. N. Schouten; Carlos Abellan; Waldimar Amaya; Valerio Pruneri; Morgan W. Mitchell; Matthew Markham; Daniel Twitchen; David Elkouss; Stephanie Wehner; T. H. Taminiau; R. Hanson

More than 50 years ago, John Bell proved that no theory of nature that obeys locality and realism can reproduce all the predictions of quantum theory: in any local-realist theory, the correlations between outcomes of measurements on distant particles satisfy an inequality that can be violated if the particles are entangled. Numerous Bell inequality tests have been reported; however, all experiments reported so far required additional assumptions to obtain a contradiction with local realism, resulting in ‘loopholes’. Here we report a Bell experiment that is free of any such additional assumption and thus directly tests the principles underlying Bell’s inequality. We use an event-ready scheme that enables the generation of robust entanglement between distant electron spins (estimated state fidelity of 0.92 ± 0.03). Efficient spin read-out avoids the fair-sampling assumption (detection loophole), while the use of fast random-basis selection and spin read-out combined with a spatial separation of 1.3 kilometres ensure the required locality conditions. We performed 245 trials that tested the CHSH–Bell inequality S ≤ 2 and found S = 2.42 ± 0.20 (where S quantifies the correlation between measurement outcomes). A null-hypothesis test yields a probability of at most P = 0.039 that a local-realist model for space-like separated sites could produce data with a violation at least as large as we observe, even when allowing for memory in the devices. Our data hence imply statistically significant rejection of the local-realist null hypothesis. This conclusion may be further consolidated in future experiments; for instance, reaching a value of P = 0.001 would require approximately 700 trials for an observed S = 2.4. With improvements, our experiment could be used for testing less-conventional theories, and for implementing device-independent quantum-secure communication and randomness certification.


Nature | 2013

Heralded entanglement between solid-state qubits separated by three metres

Hannes Bernien; Bas Hensen; W. Pfaff; G. Koolstra; Machiel Blok; Lucio Robledo; T. H. Taminiau; Matthew Markham; Daniel Twitchen; Lilian Childress; R. Hanson

Quantum entanglement between spatially separated objects is one of the most intriguing phenomena in physics. The outcomes of independent measurements on entangled objects show correlations that cannot be explained by classical physics. As well as being of fundamental interest, entanglement is a unique resource for quantum information processing and communication. Entangled quantum bits (qubits) can be used to share private information or implement quantum logical gates. Such capabilities are particularly useful when the entangled qubits are spatially separated, providing the opportunity to create highly connected quantum networks or extend quantum cryptography to long distances. Here we report entanglement of two electron spin qubits in diamond with a spatial separation of three metres. We establish this entanglement using a robust protocol based on creation of spin–photon entanglement at each location and a subsequent joint measurement of the photons. Detection of the photons heralds the projection of the spin qubits onto an entangled state. We verify the resulting non-local quantum correlations by performing single-shot readout on the qubits in different bases. The long-distance entanglement reported here can be combined with recently achieved initialization, readout and entanglement operations on local long-lived nuclear spin registers, paving the way for deterministic long-distance teleportation, quantum repeaters and extended quantum networks.


Nature | 2011

High-fidelity projective read-out of a solid-state spin quantum register

Lucio Robledo; Lilian Childress; Hannes Bernien; Bas Hensen; Paul F. A. Alkemade; R. Hanson

Initialization and read-out of coupled quantum systems are essential ingredients for the implementation of quantum algorithms. Single-shot read-out of the state of a multi-quantum-bit (multi-qubit) register would allow direct investigation of quantum correlations (entanglement), and would give access to further key resources such as quantum error correction and deterministic quantum teleportation. Although spins in solids are attractive candidates for scalable quantum information processing, their single-shot detection has been achieved only for isolated qubits. Here we demonstrate the preparation and measurement of a multi-spin quantum register in a low-temperature solid-state system by implementing resonant optical excitation techniques originally developed in atomic physics. We achieve high-fidelity read-out of the electronic spin associated with a single nitrogen–vacancy centre in diamond, and use this read-out to project up to three nearby nuclear spin qubits onto a well-defined state. Conversely, we can distinguish the state of the nuclear spins in a single shot by mapping it onto, and subsequently measuring, the electronic spin. Finally, we show compatibility with qubit control: we demonstrate initialization, coherent manipulation and single-shot read-out in a single experiment on a two-qubit register, using techniques suitable for extension to larger registers. These results pave the way for a test of Bell’s inequalities on solid-state spins and the implementation of measurement-based quantum information protocols.


Nature Communications | 2016

Repeated quantum error correction on a continuously encoded qubit by real-time feedback

Julia Cramer; Norbert Kalb; M. A. Rol; Bas Hensen; Machiel Blok; Matthew Markham; Daniel Twitchen; R. Hanson; T. H. Taminiau

Reliable quantum information processing in the face of errors is a major fundamental and technological challenge. Quantum error correction protects quantum states by encoding a logical quantum bit (qubit) in multiple physical qubits. To be compatible with universal fault-tolerant computations, it is essential that states remain encoded at all times and that errors are actively corrected. Here we demonstrate such active error correction on a continuously protected logical qubit using a diamond quantum processor. We encode the logical qubit in three long-lived nuclear spins, repeatedly detect phase errors by non-destructive measurements, and apply corrections by real-time feedback. The actively error-corrected qubit is robust against errors and encoded quantum superposition states are preserved beyond the natural dephasing time of the best physical qubit in the encoding. These results establish a powerful platform to investigate error correction under different types of noise and mark an important step towards fault-tolerant quantum information processing.


Scientific Reports | 2016

Loophole-free Bell test using electron spins in diamond: second experiment and additional analysis

Bas Hensen; Norbert Kalb; Machiel Blok; A. E. Dréau; Andreas Reiserer; R. F. L. Vermeulen; R. N. Schouten; Matthew Markham; Daniel Twitchen; Kenneth Goodenough; David Elkouss; Stephanie Wehner; T. H. Taminiau; R. Hanson

The recently reported violation of a Bell inequality using entangled electronic spins in diamonds (Hensen et al., Nature 526, 682–686) provided the first loophole-free evidence against local-realist theories of nature. Here we report on data from a second Bell experiment using the same experimental setup with minor modifications. We find a violation of the CHSH-Bell inequality of 2.35 ± 0.18, in agreement with the first run, yielding an overall value of S = 2.38 ± 0.14. We calculate the resulting P-values of the second experiment and of the combined Bell tests. We provide an additional analysis of the distribution of settings choices recorded during the two tests, finding that the observed distributions are consistent with uniform settings for both tests. Finally, we analytically study the effect of particular models of random number generator (RNG) imperfection on our hypothesis test. We find that the winning probability per trial in the CHSH game can be bounded knowing only the mean of the RNG bias. This implies that our experimental result is robust for any model underlying the estimated average RNG bias, for random bits produced up to 690 ns too early by the random number generator.


Applied Physics Letters | 2017

Design and low-temperature characterization of a tunable microcavity for diamond-based quantum networks

Stefan Bogdanovic; Suzanne B. van Dam; Cristian Bonato; Lisanne C. Coenen; Anne-Marije Zwerver; Bas Hensen; Madelaine S. Z. Liddy; Thomas Fink; Andreas Reiserer; Marko Loncar; Ronald Hanson

We report on the fabrication and characterization of a Fabry-Perot microcavity enclosing a thin diamond membrane at cryogenic temperatures. The cavity is designed to enhance resonant emission of single nitrogen-vacancy centers by allowing spectral and spatial tuning while preserving the optical properties observed in bulk diamond. We demonstrate cavity finesse at cryogenic temperatures within the range of F ¼ 4000–12 000 and find a sub-nanometer cavity stability. Modeling shows that coupling nitrogen-vacancy centers to these cavities could lead to an increase in remote entanglement success rates by three orders of magnitude.


Bulletin of the American Physical Society | 2017

An efficient quantum spin-photon interface in diamond for a quantum network~

Suzanne van Dam; Stefan Bogdanovic; Cristian Bonato; Madelaine S. Z. Liddy; Bas Hensen; Lisanne C. Coenen; Anne-Marije Zwerver; Andreas Reiserer; Marko Loncar; Ronald K. Hanson


conference on lasers and electro optics | 2016

From the first loophole-free bell test to a quantum Internet

Bas Hensen; Hannes Bernien; A. E. Dréau; Andreas Reiserer; Norbert Kalb; Machiel Blok; J. Ruitenberg; R. F. L. Vermeulen; R. N. Schouten; Carlos Abellan; Waldimar Amaya; Valerio Pruneri; Morgan W. Mitchell; Matthew Markham; Daniel Twitchen; D. Elkouss; S. Wehner; T. H. Taminiau; R. Hanson


Archive | 2016

Quantum Nonlocality with Spins in Diamond

Bas Hensen


Bulletin of the American Physical Society | 2016

A loophole-free Bell test and the route to larger quantum networks

Andreas Reiserer; Bas Hensen; Hannes Bernien; A. Dréau; Norbert Kalb; Machiel Blok; T. H. Taminiau; Ronald K. Hanson

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Machiel Blok

Delft University of Technology

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Hannes Bernien

Delft University of Technology

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T. H. Taminiau

Delft University of Technology

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Matthew Markham

University of Southampton

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R. Hanson

Delft University of Technology

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Norbert Kalb

Delft University of Technology

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Lucio Robledo

Delft University of Technology

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