Neutral Atom Imaging Using a Pulsed Electromagnetic Lens
Softcover reprint of the original 1st ed. 2018
Book Details
Format
Paperback / Softback
Book Series
Springer Theses
ISBN-10
3319886037
ISBN-13
9783319886039
Edition
Softcover reprint of the original 1st ed. 2018
Publisher
Springer International Publishing AG
Imprint
Springer International Publishing AG
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Aug 25th, 2018
Print length
112 Pages
Product Classification:
Science: general issuesCondensed matter physics (liquid state & solid state physics)Condensed matter physics (liquid state and solid state physics)Laser physicsAtomic & molecular physicsAtomic and molecular physicsSpectrum analysis, spectrochemistry, mass spectrometryNanotechnology
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This book describes the design, construction, and characterization of a new type of aberration-corrected, neutral-atom lens. Atom beam control plays a crucial role in many different fields, ranging from fundamental physics research and materials science to applied nanotechnology. Despite this, atom-optical elements like lenses and mirrors remain relatively underdeveloped compared to their counterparts in other optics fields. Although aberration correction is addressed quite comprehensively in photon and electron lenses, no credible research efforts have yet produced the same technology for neutral atoms. It reports on progress towards a neutral atom imaging device that will be useful in a range of applications, including nanofabrication and surface microscopy. It presents a novel technique for improving refractive power and correcting chromatic aberration in atom lenses based on a fundamental paradigm shift from continuous, two-dimensional focusing to a pulsed, three-dimensional approach. Simulations of this system suggest that it will pave the way towards the long-sought goal of true atom imaging on the nanoscale. The book further describes the construction of a prototype lens, and shows that all of the technological requirements for the proposed system are easily satisfied. Using metastable neon from a supersonic source, the prototype was characterized for three different focal lengths and a diverse range of apertures. Despite some manufacturing imperfections, lower distortion and higher resolution than has been shown in any previous hexapole lens was observed. Comparison with simulations corroborates the underlying theory and encourages further refinement of the process.
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