0000000000256196

AUTHOR

Felix Stopp

0000-0003-1215-2960

showing 4 related works from this author

Stern-Gerlach splitting of low-energy ion beams

2019

We present a feasibility study with several magnetic field configurations for creating spin-dependent forces that can split a low-energy ion beam by the Stern-Gerlach effect. To the best of our knowledge, coherent spin-splittings of charged particles have yet to be realised. Our proposal is based on ion source parameters taken from a recent experiment that demonstrated single-ion implantation from a high-brightness ion source combined with a radio-frequency Paul trap. The inhomogeneous magnetic fields can be created by permanently magnetised microstructures or from current-carrying wires with sizes in the micron range, such as those recently used in a successful implementation of the Stern-…

PhysicsQuantum PhysicsStern–Gerlach experimentIon beamAtomic Physics (physics.atom-ph)Institut für Physik und AstronomieGeneral Physics and AstronomyFOS: Physical sciences01 natural sciencesIon sourceCharged particlePhysics - Atomic Physics010305 fluids & plasmasMagnetic fieldIonsymbols.namesake0103 physical sciencessymbolsddc:530Ion trapAtomic physics010306 general physicsQuantum Physics (quant-ph)Lorentz force
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Trapping and sympathetic cooling of single thorium ions for spectroscopy

2018

Precision optical spectroscopy of exotic ions reveals accurate information about nuclear properties such as charge radii and magnetic and quadrupole moments. Thorium ions exhibit unique nuclear properties with high relevance for testing symmetries of nature. We report loading and trapping of single $^{232}$Th$^+$ ions in a linear Paul trap, embedded into and sympathetically cooled by small crystals of trapped $^{40}$Ca$^+$ ions. Trapped Th ions are identified in a non-destructive manner from the voids in the laser-induced Ca fluorescence pattern emitted by the crystal, and alternatively, by means of a time-of-flight signal when extracting ions from the Paul trap and steering them into an ex…

PhysicsQuantum PhysicsSympathetic coolingAtomic Physics (physics.atom-ph)Thoriumchemistry.chemical_elementFOS: Physical sciences01 natural sciencesPhysics - Atomic Physics010305 fluids & plasmasIonCrystalchemistry0103 physical sciencesQuadrupoleQuantum efficiencyIon trapPhysics::Atomic PhysicsAtomic physics010306 general physicsSpectroscopyQuantum Physics (quant-ph)
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Single Ion Thermal Wave Packet Analyzed Via Time-Of-Flight Detection

2021

Abstract A single 40Ca ion is confined in the harmonic potential of a Paul trap and cooled to a temperature of a few mK, with a wave packet of sub-μm spatial and sub-m s−1 velocity uncertainty. Deterministically extracted from the Paul trap, the single ion is propagating over a distance of 0.27 m and detected. By engineering the ion extraction process on the initial wave packet, theoretically modeling the ion trajectories, and studying experimentally the time-of-flight distribution, we directly infer the state of the previously trapped ion. This analysis allows for accurate remote sensing of the previous motional excitation in the trap potential, both coherently or incoherently. Our method …

PhysicsNetwork packetAtomic Physics (physics.atom-ph)Wave packetGeneral Physics and AstronomyFOS: Physical sciencesPhysics - Applied PhysicsApplied Physics (physics.app-ph)01 natural sciences010305 fluids & plasmasIonPhysics - Atomic PhysicsTrap (computing)Time of flight0103 physical sciencesIon trapPhysics::Atomic PhysicsAtomic physics010306 general physicsQuantumExcitation
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Deterministic Single-Ion Implantation of Rare-Earth Ions for Nanometer-Resolution Color-Center Generation

2019

Single dopant atoms or dopant-related defect centers in a solid state matrix provide an attractive platform for quantum simulation of topological states, for quantum computing and communication, due to their potential to realize a scalable architecture compatible with electronic and photonic integrated circuits. The production of such quantum devices calls for deterministic single atom doping techniques because conventional stochastic doping techniques are cannot deliver appropriate architectures. Here, we present the fabrication of arrays of praseodymium color centers in YAG substrates, using a deterministic source of single laser-cooled Pr$^+$ ions. The beam of single Pr$^+$ ions is extra…

MicroscopeFabricationMaterials sciencePraseodymiumGeneral Physics and Astronomychemistry.chemical_elementFOS: Physical sciences01 natural scienceslaw.inventionIonlaw0103 physical sciencesMesoscale and Nanoscale Physics (cond-mat.mes-hall)010306 general physicsQuantum computerQuantum PhysicsDopantCondensed Matter - Mesoscale and Nanoscale Physicsbusiness.industryPhotonic integrated circuitCondensed Matter - Other Condensed MatterchemistryOptoelectronicsIon trapbusinessQuantum Physics (quant-ph)Other Condensed Matter (cond-mat.other)Physical Review Letters
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