Coherent properties of a tunable low-energy electron-matter-wave source

A. Pooch, M. Seidling, N. Kerker, R. Röpke, A. Rembold, W. T. Chang, I. S. Hwang, and A. Stibor
Phys. Rev. A 97, 013611 – Published 12 January 2018

Abstract

A general challenge in various quantum experiments and applications is to develop suitable sources for coherent particles. In particular, recent progress in microscopy, interferometry, metrology, decoherence measurements, and chip-based applications rely on intensive, tunable, coherent sources for free low-energy electron-matter waves. In most cases, the electrons get field emitted from a metal nanotip, where its radius and geometry toward a counter electrode determines the field distribution and the emission voltage. A higher emission is often connected to faster electrons with smaller de Broglie wavelengths, requiring larger pattern magnification after matter-wave diffraction or interferometry. This can be prevented with a well-known setup consisting of two counter electrodes that allow independent setting of the beam intensity and velocity. However, it needs to be tested if the coherent properties of such a source are preserved after the acceleration and deceleration of the electrons. Here, we study the coherence of the beam in a biprism interferometer with a single atom tip electron field emitter if the particle velocity and wavelength varies after emission. With a Wien filter measurement and a contrast correlation analysis we demonstrate that the intensity of the source at a certain particle wavelength can be enhanced up to a factor of 6.4 without changing the transverse and longitudinal coherence of the electron beam. In addition, the energy width of the single atom tip emitter was measured to be 377 meV, corresponding to a longitudinal coherence length of 82 nm. The design has potential applications in interferometry, microscopy, and sensor technology.

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  • Received 23 November 2017

DOI:https://doi.org/10.1103/PhysRevA.97.013611

©2018 American Physical Society

Physics Subject Headings (PhySH)

  1. Physical Systems
Accelerators & Beams

Authors & Affiliations

A. Pooch1, M. Seidling1, N. Kerker1, R. Röpke1, A. Rembold1, W. T. Chang2, I. S. Hwang2, and A. Stibor1,*

  • 1Institute of Physics and Center for Collective Quantum Phenomena in LISA+, University of Tübingen, Auf der Morgenstelle 15, 72076 Tübingen, Germany
  • 2Institute of Physics, Academia Sinica, Nankang, Taipei 11529, Taiwan, Republic of China

  • *alexander.stibor@uni-tuebingen.de

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Vol. 97, Iss. 1 — January 2018

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