Secondary Emission Calorimetry
Yazarlar (8)
Burak Bilki T.C. Beykent Üniversitesi, Türkiye
Prof. Dr. Kamuran Dilsiz Bingöl Üniversitesi, Türkiye
Prof. Dr. Hasan OĞUL Sinop Üniversitesi, Türkiye
Yasar Onel
University Of Iowa, Amerika Birleşik Devletleri
David Southwick University Of Iowa, Amerika Birleşik Devletleri
Doç. Dr. Emrah Tiras Erciyes Üniversitesi, Türkiye
James Wetzel University Of Iowa, Amerika Birleşik Devletleri
David Roberts Winn Fairfield University, Amerika Birleşik Devletleri
Makale Türü Açık Erişim Özgün Makale (SCOPUS dergilerinde yayınlanan tam makale)
Dergi Adı Instruments
Dergi ISSN 2410-390X Dergi Bilgileri (2022)
Dergi Tarandığı Indeksler EBSCO, CNKI, DOAJ
Makale Dili İngilizce Basım Tarihi 09-2022
Kabul Tarihi Yayınlanma Tarihi 21-09-2022
Cilt / Sayı / Sayfa 6 / 4 / 48–54 DOI 10.3390/instruments6040048
Makale Linki http://dx.doi.org/10.3390/instruments6040048
UAK Araştırma Alanları
Hızlandırıcı Dedektör Fiziği Nükleer Fizik Yüksek Enerji ve Parçacık Fiziği
Özet
Electromagnetic calorimetry in high-radiation environments, e.g., forward regions of lepton and hadron collider detectors, is quite challenging. Although total absorption crystal calorimeters have superior performance as electromagnetic calorimeters, the availability and the cost of the radiation-hard crystals are the limiting factors as radiation-tolerant implementations. Sampling calorimeters utilizing silicon sensors as the active media are also favorable in terms of performance but are challenged by high-radiation environments. In order to provide a solution for such implementations, we developed a radiation-hard, fast and cost-effective technique, secondary emission calorimetry, and tested prototype secondary emission sensors in test beams. In a secondary emission detector module, secondary emission electrons are generated from a cathode when charged hadron or electromagnetic shower particles penetrate the secondary emission sampling module placed between absorber materials. The generated secondary emission electrons are then multiplied in a similar way as the photoelectrons in photomultiplier tubes. Here, we report on the principles of secondary emission calorimetry and the results from the beam tests performed at Fermilab Test Beam Facility as well as the Monte Carlo simulations of projected, large-scale secondary emission electromagnetic calorimeters.
Anahtar Kelimeler
electromagnetic calorimetry | forward calorimetry | radiation hardness | secondary electron emission
BM Sürdürülebilir Kalkınma Amaçları
Atıf Sayıları
Scopus 3
Google Scholar 4
Secondary Emission Calorimetry

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