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Dive into the research topics where Benjamin Pingault is active.

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Featured researches published by Benjamin Pingault.


Nature Communications | 2014

Optical signatures of silicon-vacancy spins in diamond

Tina Muller; Christian Hepp; Benjamin Pingault; Elke Neu; Stefan Gsell; M. Schreck; Hadwig Sternschulte; Doris Steinmüller-Nethl; Christoph Becher; Mete Atatüre

Colour centres in diamond have emerged as versatile tools for solid-state quantum technologies ranging from quantum information to metrology, where the nitrogen-vacancy centre is the most studied to date. Recently, this toolbox has expanded to include novel colour centres to realize more efficient spin-photon quantum interfaces. Of these, the silicon-vacancy centre stands out with highly desirable photonic properties. The challenge for utilizing this centre is to realize the hitherto elusive optical access to its electronic spin. Here we report spin-tagged resonance fluorescence from the negatively charged silicon-vacancy centre. Our measurements reveal a spin-state purity approaching unity in the excited state, highlighting the potential of the centre as an efficient spin-photon quantum interface.


Physical Review Letters | 2014

All-optical formation of coherent dark states of silicon-vacancy spins in diamond

Benjamin Pingault; Jonas Nils Becker; Carsten H. H. Schulte; Carsten Arend; Christian Hepp; T. Godde; A. I. Tartakovskii; Matthew Markham; Christoph Becher; Mete Atatüre

Spin impurities in diamond can be versatile tools for a wide range of solid-state-based quantum technologies, but finding spin impurities that offer sufficient quality in both photonic and spin properties remains a challenge for this pursuit. The silicon-vacancy center has recently attracted much interest because of its spin-accessible optical transitions and the quality of its optical spectrum. Complementing these properties, spin coherence is essential for the suitability of this center as a spin-photon quantum interface. Here, we report all-optical generation of coherent superpositions of spin states in the ground state of a negatively charged silicon-vacancy center using coherent population trapping. Our measurements reveal a characteristic spin coherence time, T2*, exceeding 45 nanoseconds at 4 K. We further investigate the role of phonon-mediated coupling between orbital states as a source of irreversible decoherence. Our results indicate the feasibility of all-optical coherent control of silicon-vacancy spins using ultrafast laser pulses.


Nature Communications | 2018

Controlling the coherence of a diamond spin qubit through its strain environment

Young-Ik Sohn; Srujan Meesala; Benjamin Pingault; Haig A. Atikian; Jeffrey Holzgrafe; Mustafa Gundogan; Camille Stavrakas; Megan J. Stanley; Alp Sipahigil; Joonhee Choi; Mian Zhang; Jose Pacheco; John Bishoy Sam Abraham; Edward S. Bielejec; Mikhail D. Lukin; Mete Atatüre; Marko Loncar

The uncontrolled interaction of a quantum system with its environment is detrimental for quantum coherence. For quantum bits in the solid state, decoherence from thermal vibrations of the surrounding lattice can typically only be suppressed by lowering the temperature of operation. Here, we use a nano-electro-mechanical system to mitigate the effect of thermal phonons on a spin qubit – the silicon-vacancy colour centre in diamond – without changing the system temperature. By controlling the strain environment of the colour centre, we tune its electronic levels to probe, control, and eventually suppress the interaction of its spin with the thermal bath. Strain control provides both large tunability of the optical transitions and significantly improved spin coherence. Finally, our findings indicate the possibility to achieve strong coupling between the silicon-vacancy spin and single phonons, which can lead to the realisation of phonon-mediated quantum gates and nonlinear quantum phononics.Silicon-vacancy centres in diamond are promising candidates as emitters in photonic quantum networks, but their coherence is degraded by large electron-phonon interactions. Sohn et al. demonstrate the use of strain to tune a silicon vacancy’s electronic structure and suppress phonon-mediated decoherence.


Nature Communications | 2018

Charge-tuneable biexciton complexes in monolayer WSe2

Matteo Barbone; Alejandro R.-P. Montblanch; Dhiren M. Kara; Carmen Palacios-Berraquero; Alisson Ronieri Cadore; Domenico De Fazio; Benjamin Pingault; Elaheh Mostaani; Han Li; Bin Chen; Kenji Watanabe; Takashi Taniguchi; Sefaattin Tongay; Gang Wang; A. C. Ferrari; Mete Atatüre

Monolayer transition metal dichalcogenides have strong Coulomb-mediated many-body interactions. Theoretical studies have predicted the existence of numerous multi-particle excitonic states. Two-particle excitons and three-particle trions have been identified by their optical signatures. However, more complex states such as biexcitons have been elusive due to limited spectral quality of the optical emission. Here, we report direct evidence of two biexciton complexes in monolayer tungsten diselenide: the four-particle neutral biexciton and the five-particle negatively charged biexciton. We distinguish these states by power-dependent photoluminescence and demonstrate full electrical switching between them. We determine the band states of the elementary particles comprising the biexcitons through magneto-optical spectroscopy. We also resolve a splitting of 2.5 meV for the neutral biexciton, which we attribute to the fine structure, providing reference for subsequent studies. Our results unveil the nature of multi-exciton complexes in transitionmetal dichalcogenides and offer direct routes towards deterministic control in many-body quantum phenomena.Multi-exciton states may emerge in atomically thin transition metal dichalcogenides as a result of strong many-body interactions. Here, the authors report experimental evidence of four- and five-particle biexciton complexes in monolayer WSe2 and their electrical control.


conference on lasers and electro optics | 2014

Optical signatures of spin in silicon-vacancy centre in diamond

Benjamin Pingault; Tina Muller; Christian Hepp; Elke Neu; Christoph Becher; Mete Atatüre

The spin state of the silicon-vacancy centre in diamond and its optical accessibility have so far remained elusive. We here evidence spin-tagged fluorescence through resonant optical access to the electronic spin ½ of the centre.


Nature Communications | 2017

Coherent control of the silicon-vacancy spin in diamond

Benjamin Pingault; David-Dominik Jarausch; Christian Hepp; Lina Klintberg; Jonas Nils Becker; Matthew Markham; Christoph Becher; Mete Atatüre


Physical Review Letters | 2018

All-Optical Control of the Silicon-Vacancy Spin in Diamond at Millikelvin Temperatures

Jonas Nils Becker; Benjamin Pingault; David Groß; Mustafa Gündoğan; Nadezhda Kukharchyk; Matthew Markham; Andrew M. Edmonds; Mete Atatüre; Pavel Bushev; Christoph Becher


Physical Review B | 2018

Strain engineering of the silicon-vacancy center in diamond

Srujan Meesala; Young-Ik Sohn; Benjamin Pingault; Linbo Shao; Haig A. Atikian; Jeffrey Holzgrafe; Mustafa Gundogan; Camille Stavrakas; Alp Sipahigil; Cleaven Chia; Ruffin E. Evans; Michael J. Burek; Mian Zhang; Lue Wu; Jose Pacheco; John Abraham; Edward S. Bielejec; Mikhail D. Lukin; Mete Atatüre; Marko Loncar


arXiv: Quantum Physics | 2017

Controlling the coherence of a diamond spin qubit through strain engineering

Young-Ik Sohn; Srujan Meesala; Benjamin Pingault; Haig A. Atikian; Jeffrey Holzgrafe; Mustafa Gundogan; Camille Stavrakas; Megan J. Stanley; Alp Sipahigil; Joonhee Choi; Mian Zhang; Jose Pacheco; John Bishoy Sam Abraham; Edward S. Bielejec; Mikhail D. Lukin; Mete Atatüre; Marko Loncar


conference on lasers and electro optics | 2017

Protecting the spin coherence of silicon vacancy color centers from thermal noise using diamond MEMS

Young-Ik Sohn; Srujan Meesala; Benjamin Pingault; Haig A. Atikian; Jeffrey Holzgrafe; Mustafa Gundogan; Camille Stavrakas; Alp Sipahigil; Michael J. Burek; Mian Zhang; Jose Pacheco; John Bishoy Sam Abraham; Edward S. Bielejec; Mikhail D. Lukin; Mete Atatüre; Marko Loncar

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Edward S. Bielejec

Sandia National Laboratories

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Jose Pacheco

Sandia National Laboratories

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