用钨酸铅制造的电磁量热计原型

IF 0.5 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
H. Mkrtchyan, H. Marukyan, A. Mkrtchyan, A. Shahinyan, V. Tadevosyan, H. Voskanyan, A. Movsisyan, A. Hoghmrtsyan
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引用次数: 0

摘要

摘要 本文介绍了对钨酸铅晶体(PbWO4)特性的研究结果。对宇宙μ介子通过时的透光率和光输出进行了测量。在波长 λ = 360、420 和 620 纳米时,晶体在横向的平均透光率分别为 62.82%、68.38% 和 75.68%,光输出为 ~16 pe/MeV。用 4 × 4 矩阵排列的晶体设计和制造了一个电磁量热计原型,并用宇宙μ介子对其进行了测试。获得的结果证实了电子-离子对撞机合作项目中其他小组的结论,即 CRYTUR 生产的晶体质量符合电磁量热计的要求,可以作为制造电磁量热计的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Prototype of Electromagnetic Calorimeter Constructed of Lead Tungstate

A Prototype of Electromagnetic Calorimeter Constructed of Lead Tungstate

A Prototype of Electromagnetic Calorimeter Constructed of Lead Tungstate

The article presents the results of studies of the characteristics of lead tungstate crystals (PbWO4). Measurements of light transmission and light output from the passage of cosmic muons were carried out. The average light transmittance of crystals in the transverse direction is 62.82, 68.38, and 75.68% at wavelengths λ = 360, 420, and 620 nm, and the light output is ~16 pe/MeV. A prototype of an electromagnetic calorimeter was designed and built from crystals arranged in a 4 × 4 matrix which has been tested by cosmic muons. The results obtained confirm the conclusions of other groups in the Electron-Ion Collider collaboration that the quality of the crystals produced by CRYTUR meets the requirements for an electromagnetic calorimeter, and that they can be the basis for its creation.

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来源期刊
CiteScore
1.00
自引率
66.70%
发文量
43
审稿时长
6-12 weeks
期刊介绍: Journal of Contemporary Physics (Armenian Academy of Sciences) is a journal that covers all fields of modern physics. It publishes significant contributions in such areas of theoretical and applied science as interaction of elementary particles at superhigh energies, elementary particle physics, charged particle interactions with matter, physics of semiconductors and semiconductor devices, physics of condensed matter, radiophysics and radioelectronics, optics and quantum electronics, quantum size effects, nanophysics, sensorics, and superconductivity.
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