Neha Yadav

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.

Probing rotational decoherence with a trapped-ion planar rotor

Neil Glikin [1,2], Benjamin A. Stickler [3], Ryan Tollefsen [1,2], Sara Mouradian [4], Neha Yadav [1,2], Erik Urban [1], Klaus Hornberger [5,1,2], Hartmut Haeffner

Abstract

The quantum rotor is one of the simplest model systems in quantum mechanics, but only in recent years has theoretical work revealed general fundamental scaling laws for its decoherence. For example, a superposition of orientations decoheres at a rate proportional to the sine squared of the angle between them. Here we observe scaling laws for rotational decoherence dynamics for the first time, using a 4-micrometer diameter planar rotor composed of two Paul-trapped ions. We prepare the rotational motion of the ion crystal into superpositions of angular momentum with well-defined differences ranging from 1-3 $\hbar$, and measure the rate of decoherence. We also tune the system-environment interaction strength by introducing resonant electric field noise. The observed scaling relationships for decoherence are in excellent agreement with recent theoretical work, and are directly relevant to the growing development of rotor-based quantum applications.