Clemens Matthiesen

Trapping of electrons and $^{40}\textrm{Ca}^+$ ions in a dual-frequency Paul trap

Vladimir Mikhailovskii [1,2,3], Natalija Sheth [1,2,3], Guofeng Qu [4,5], Michal Hejduk [6], Niklas Vilhelm Lausti [6], K. T. Satyajith [7], Christian Smorra [3,8], Günther Werth, Neha Yadav [9], Qian Yu [9], Clemens Matthiesen [9], Hartmut Häffner, Ferdinand Schmidt-Kaler [3], Hendrik Bekker [1,2,3], Dmitry Budker [1,2,3,9]

Abstract

We demonstrate the operation of a dual-frequency Paul trap and characterize its performance by storing either electrons or calcium ions while applying two quadrupole fields simultaneously which oscillate at $Ω_\textrm{fast} = 2π\times 1.6$ GHz and $Ω_\textrm{slow} = 2π\times 2$ MHz. The particles are loaded and stored in the trap under various conditions followed by detection employing an electron multiplier tube. We find that tens of electrons or ions can be trapped for up to ten milliseconds and a small fraction remains trapped even after hundreds of milliseconds. During dual-frequency operation we find that while the number of trapped electrons rapidly decreases with increase of the $Ω_\textrm{slow}$ field amplitude, the number of trapped ions shows no dependence on the $Ω_\textrm{fast}$ field amplitude as supported by our extensive numerical simulations. We aim to use a similar trap for synthesising antihydrogen from antiprotons and positrons. Accordingly, we discuss open challenges such as the co-trapping of oppositely charged species and particle trap duration.

Coupling two laser-cooled ions via a room-temperature conductor

Da An [1], Alberto M. Alonso [1], Clemens Matthiesen [1], Hartmut Häffner

Abstract

We demonstrate coupling between the motions of two independently trapped ions with a separation distance of 620 $μ$m. The ion-ion interaction is enhanced via a room-temperature electrically floating metallic wire which connects two surface traps. Tuning the motion of both ions into resonance, we show flow of energy with a coupling rate of 11 Hz. Quantum-coherent coupling is hindered by strong surface electric-field noise in our device. Our ion wire-ion system demonstrates that room-temperature conductors can be used to mediate and tune interactions between independently trapped charges over distances beyond those achievable with free-space dipole-dipole coupling. This technology may be used to sympathetically cool or entangle remotely trapped charges and enable coupling between disparate physical systems.

Changes in electric-field noise due to thermal transformation of a surface ion trap

Maya Berlin-Udi [1,2], Clemens Matthiesen [1], P. N. Thomas Lloyd [1], Alberto M. Alonso [1,2], Crystal Noel [1], Benjamin Saarel [1,2], Christine A. Orme [3], Chang-Eun Kim [3], Art J. Nelson [3], Keith G. Ray [3], Vincenzo Lordi [3,1,2], Hartmut Häffner

Abstract

We aim to illuminate how the microscopic properties of a metal surface map to its electric-field noise characteristics. In our system, prolonged heat treatments of a metal film can induce a rise in the magnitude of the electric-field noise generated by the surface of that film. We refer to this heat-induced rise in noise magnitude as a thermal transformation. The underlying physics of this thermal transformation process is explored through a series of heating, milling, and electron treatments performed on a single surface ion trap. Between these treatments, $^{40}$Ca$^+$ ions trapped 70~$μ$m above the surface of the metal are used as detectors to monitor the electric-field noise at frequencies close to 1~MHz. An Auger spectrometer is used to track changes in the composition of the contaminated metal surface. With these tools we investigate contaminant deposition, chemical reactions, and atomic restructuring as possible drivers of thermal transformations.

Distance scaling and polarization of electric-field noise in a surface ion trap

Da An [1], Clemens Matthiesen [1], Erik Urban [1], Hartmut Häffner

Abstract

We probe electric-field noise in a surface ion trap for ion-surface distances $d$ between 50 and 300 $μ\mathrm{m}$ in the normal and planar directions. We find the noise distance dependence to scale as $d^{-2.6}$ in our trap and a frequency dependence which is consistent with $1/f$ noise. Simulations of the electric-field noise specific to our trap geometry provide evidence that we are not limited by technical noise sources. Our distance scaling data is consistent with a noise correlation length of about 100 $μ\mathrm{m}$ at the trap surface, and we discuss how patch potentials of this size would be modified by the electrode geometry.

Electric-field noise from thermally-activated fluctuators in a surface ion trap

Crystal Noel [1], Maya Berlin-Udi [1], Clemens Matthiesen [1], Jessica Yu [1], Yi Zhou [1], Vincenzo Lordi [2,1], Hartmut Häffner

Abstract

We probe electric-field noise near the metal surface of an ion trap chip in a previously unexplored high-temperature regime. We observe a non-trivial temperature dependence with the noise amplitude at 1-MHz frequency saturating around 500~K. Measurements of the noise spectrum reveal a $1/f^{α\approx1}$-dependence and a small decrease in $α$ between low and high temperatures. This behavior can be explained by considering noise from a distribution of thermally-activated two-level fluctuators with activation energies between 0.35~eV and 0.65~eV. Processes in this energy range may be relevant to understanding electric-field noise in ion traps; for example defect motion in the solid state and surface adsorbate binding energies. Studying these processes may aid in identifying the origin of excess electric-field noise in ion traps -- a major source of ion motional decoherence limiting the performance of surface traps as quantum devices.

Surface trap with dc-tunable ion-electrode distance

Da An [1], Clemens Matthiesen [1], Ahmed Abdelrahman [1], Maya Berlin-Udi [1], Dylan Gorman [1], Sönke Möller, Erik Urban, Hartmut Häffner

Abstract

We describe the design, fabrication, and operation of a novel surface-electrode Paul trap that produces a radio-frequency-null along the axis perpendicular to the trap surface. This arrangement enables control of the vertical trapping potential and consequentially the ion-electrode distance via dc-electrodes only. We demonstrate confinement of single $^{40}$Ca$^+$ ions at heights between $50~μ$m and $300~μ$m above planar copper-coated aluminium electrodes. We investigate micromotion in the vertical direction and show cooling of both the planar and vertical motional modes into the ground state. This trap architecture provides a platform for precision electric-field noise detection, trapping of vertical ion strings without excess micromotion, and may have applications for scalable quantum computers with surface ion traps.

Spin readout of trapped electron qubits

Pai Peng [1,2], Clemens Matthiesen [1], Hartmut Häffner

Abstract

We propose a scheme to read out the spin of a single electron quantum bit in a surface Paul trap using oscillating magnetic field gradients. The readout sequence is composed of cooling, driving, amplification and detection of the electron's motion. We study the scheme in the presence of noise and trap anharmonicities at liquid helium temperatures. An analysis of the the four procedures shows short measurement times ($25~μ$s) and high fidelities ($99.7\%$) are achievable with realistic experimental parameters. Our scheme performs the function of fluorescence detection in ion trapping schemes, highlighting the potential to built all-electric quantum computers based on trapped electron spin qubits.