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使用微克级靶材料的μ子原子光谱学。

Muonic atom spectroscopy with microgram target material.

作者信息

Adamczak A, Antognini A, Berger N, Cocolios T E, Deokar N, Düllmann Ch E, Eggenberger A, Eichler R, Heines M, Hess H, Indelicato P, Kirch K, Knecht A, Krauth J J, Nuber J, Ouf A, Papa A, Pohl R, Rapisarda E, Reiter P, Ritjoho N, Roccia S, Seidlitz M, Severijns N, von Schoeler K, Skawran A, Vogiatzi S M, Warr N, Wauters F

机构信息

Institute of Nuclear Physics, Polish Academy of Sciences, Krakow, Poland.

Paul Scherrer Institut, Villigen, Switzerland.

出版信息

Eur Phys J A Hadron Nucl. 2023;59(2):15. doi: 10.1140/epja/s10050-023-00930-y. Epub 2023 Feb 3.

Abstract

Muonic atom spectroscopy-the measurement of the x rays emitted during the formation process of a muonic atom-has a long standing history in probing the shape and size of nuclei. In fact, almost all stable elements have been subject to muonic atom spectroscopy measurements and the absolute charge radii extracted from these measurements typically offer the highest accuracy available. However, so far only targets of at least a few hundred milligram could be used as it required to stop a muon beam directly in the target to form the muonic atom. We have developed a new method relying on repeated transfer reactions taking place inside a 100 bar hydrogen gas cell with an admixture of 0.25% deuterium that allows us to drastically reduce the amount of target material needed while still offering an adequate efficiency. Detailed simulations of the transfer reactions match the measured data, suggesting good understanding of the processes taking place inside the gas mixture. As a proof of principle we demonstrate the method with a measurement of the 2-1 muonic x rays from a 5  gold target.

摘要

μ子原子光谱学——对μ子原子形成过程中发射的X射线的测量——在探测原子核的形状和大小时有着悠久的历史。事实上,几乎所有稳定元素都已接受过μ子原子光谱学测量,从这些测量中提取的绝对电荷半径通常具有目前可用的最高精度。然而,到目前为止,由于需要在靶中直接阻止μ子束以形成μ子原子,所以只能使用至少几百毫克的靶。我们开发了一种新方法,该方法依赖于在含有0.25%氘的100巴氢气室中发生的重复转移反应,这使我们能够大幅减少所需靶材料的量,同时仍能提供足够的效率。对转移反应的详细模拟与测量数据相符,这表明对气体混合物中发生的过程有很好的理解。作为原理验证,我们用对5毫克金靶的2-1 μ子X射线测量展示了该方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/007e/9898421/bcf645a65ea1/10050_2023_930_Fig1_HTML.jpg

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