Klemens Schüppert

Femtosecond laser written waveguides in sapphire for visible light delivery

Sarah Winkler [1,2], Joachim R. Krenn [2], Jakob Wahl [1,3], Alexander Zesar [1,2], Yves Colombe [1], Klemens Schüppert, Clemens Rössler, Christian Sommer [4], Philipp Hurdax [4], Philip Lichtenegger [4], Bernhard Lamprecht [4]

Abstract

A promising solution for scalable integrated optics of trapped-ion quantum processors are curved waveguides guiding visible light within sapphire bulk material. To the best of our knowledge, no curved waveguides were investigated in sapphire so far, and no measurements of waveguides with visible light in undoped planar sapphire substrates were reported. Here, we demonstrate femtosecond laser writing of depressed cladding waveguides in sapphire. Laser parameters, such as pulse energy, pulse duration, and repetition rate, as well as waveguide geometry parameters, were optimized to guide 728 nm light. This resulted in single-mode waveguides with a propagation loss of 1.9(3) dB/cm. The investigation of curved waveguides showed a sharp increase in total loss for curvature radii below 15 mm. Our results demonstrate the potential of femtosecond laser writing as a powerful technique for creating integrated optical waveguides in the volume of sapphire substrates. Such waveguides could be a building block for integrated optics in trapped-ion quantum processors.

Integrating a fiber cavity into a wheel trap for strong ion-cavity coupling

Markus Teller [1], Viktor Messerer [1], Klemens Schüppert, Yueyang Zou [1], Dario A. Fioretto [1], Maria Galli [1], Philip C. Holz [1,2], Jakob Reichel [3], Tracy E. Northup [1]

Abstract

We present an ion trap with an integrated fiber cavity, designed for strong coupling at the level of single ions and photons. The cavity is aligned to the axis of a miniature linear Paul trap, enabling simultaneous coupling of multiple ions to the cavity field. We simulate how charges on the fiber mirrors affect the trap potential, and we test these predictions with an ion trapped in the cavity. Furthermore, we measure micromotion and heating rates in the setup.

Heating of a trapped ion induced by dielectric materials

Markus Teller [1], Dario A. Fioretto [1], Philip C. Holz [1,2], Philipp Schindler [1], Viktor Messerer [1], Klemens Schüppert, Yueyang Zou [1], Rainer Blatt [1,3], John Chiaverini [4,5], Jeremy Sage [4,5], Tracy E. Northup [1]

Abstract

Electric-field noise due to surfaces disturbs the motion of nearby trapped ions, compromising the fidelity of gate operations that are the basis for quantum computing algorithms. We present a method that predicts the effect of dielectric materials on the ion's motion. Such dielectrics are integral components of ion traps. Quantitative agreement is found between a model with no free parameters and measurements of a trapped ion in proximity to dielectric mirrors. We expect that this approach can be used to optimize the design of ion-trap-based quantum computers and network nodes.

Probing surface charge densities on optical fibers with a trapped ion

Florian R. Ong [1], Klemens Schüppert, Pierre Jobez [1], Markus Teller [1], Ben Ames [1], Dario A. Fioretto [1], Konstantin Friebe [1], Moonjoo Lee [2], Yves Colombe [1], Rainer Blatt [1,3], Tracy E. Northup [1]

Abstract

We describe a novel method to measure the surface charge densities on optical fibers placed in the vicinity of a trapped ion, where the ion itself acts as the probe. Surface charges distort the trapping potential, and when the fibers are displaced, the ion's equilibrium position and secular motional frequencies are altered. We measure the latter quantities for different positions of the fibers and compare these measurements to simulations in which unknown charge densities on the fibers are adjustable parameters. Values ranging from $-10$ to $+50$ e/$μ$m$^2$ were determined. Our results will benefit the design and simulation of miniaturized experimental systems combining ion traps and integrated optics, for example, in the fields of quantum computation, communication and metrology. Furthermore, our method can be applied to any setup in which a dielectric element can be displaced relative to a trapped charge-sensitive particle.

Microelectromechanical-System-Based Design of a High-Finesse Fiber Cavity Integrated with an Ion Trap

Moonjoo Lee [1], Minjae Lee [2], Seokjun Hong [2,1], Klemens Schüppert, Yeong-Dae Kwon [3], Taehyun Kim [4], Yves Colombe [1], Tracy E. Northup [1,2], Dong-Il "Dan" Cho, Rainer Blatt [1,5]

Abstract

We present a numerical study of a MEMS-based design of a fiber cavity integrated with an ion trap system. Each fiber mirror is supported by a microactuator that controls the mirror's position in three dimensions. The mechanical stability is investigated by a feasibility analysis showing that the actuator offers a stable support of the fiber. The actuators move the fibers' positions continuously with a stroke of more than 10 $μ$m, with mechanical resonance frequencies on the order of kHz. A calculation of the trapping potential shows that a separation between ion and fiber consistent with strong ion-cavity coupling is feasible. Our miniaturized ion-photon interface constitutes a viable approach to integrated hardware for quantum information.

Ion-based nondestructive sensor for cavity photon numbers

Moonjoo Lee [1], Konstantin Friebe [1], Dario A. Fioretto [1], Klemens Schüppert, Florian R. Ong [1], David Plankensteiner [2], Valentin Torggler [2], Helmut Ritsch [2], Rainer Blatt [1,3], Tracy E. Northup [1]

Abstract

We dispersively couple a single trapped ion to an optical cavity to extract information about the cavity photon-number distribution in a nondestructive way. The photon-number-dependent AC-Stark shift experienced by the ion is measured via Ramsey spectroscopy. We use these measurements first to obtain the ion-cavity interaction strength. Next, we reconstruct the cavity photon-number distribution for coherent states and for a state with mixed thermal-coherent statistics, finding overlaps above 99% with the calibrated states.

Integrated Fiber-Mirror Ion Trap for Strong Ion-Cavity Coupling

Birgit Brandstätter, Andrew McClung, Klemens Schüppert, Bernardo Casabone, Konstantin Friebe, Andreas Stute, Piet O. Schmidt, Christian Deutsch, Jakob Reichel, Rainer Blatt, Tracy E. Northup

Abstract

We present and characterize fiber mirrors and a miniaturized ion-trap design developed to integrate a fiber-based Fabry-Perot cavity (FFPC) with a linear Paul trap for use in cavity-QED experiments with trapped ions. Our fiber-mirror fabrication process not only enables the construction of FFPCs with small mode volumes, but also allows us to minimize the influence of the dielectric fiber mirrors on the trapped-ion pseudopotential. We discuss the effect of clipping losses for long FFPCs and the effect of angular and lateral displacements on the coupling efficiencies between cavity and fiber. Optical profilometry allows us to determine the radii of curvature and ellipticities of the fiber mirrors. From finesse measurements we infer a single-atom cooperativity of up to $12$ for FFPCs longer than $200 μ$m in length; comparison to cavities constructed with reference substrate mirrors produced in the same coating run indicates that our FFPCs have similar scattering losses. We discuss experiments to anneal fiber mirrors and explore the influence of the atmosphere under which annealing occurs on coating losses, finding that annealing under vacuum increases the losses for our reference substrate mirrors. Our unique linear Paul trap design provides clearance for such a cavity and is miniaturized to shield trapped ions from the dielectric fiber mirrors. We numerically calculate the trap potential in the absence of fibers. In the experiment additional electrodes can be used to compensate distortions of the potential due to the fibers. Home-built fiber feedthroughs connect the FFPC to external optics, and an integrated nanopositioning system affords the possibility of retracting or realigning the cavity without breaking vacuum.