Achieving a Record Scintillation Performance by Micro‐Doping a Heterovalent Magnetic Ion in Cs3Cu2I5 Single‐Crystal

Author:

Yao Qian1,Li Jiaming23,Li Xuesong1,Ma Yusheng1,Song Haohang1,Li Zhiyuan2,Wang Zungang2,Tao Xutang1ORCID

Affiliation:

1. State Key Laboratory of Crystal Materials and Institute of Crystal Materials Shandong University Jinan 250100 China

2. State Key Laboratory of NBC Protection for Civilians Academy of Military Science Beijing 102205 China

3. Department of Nuclear Science and Technology School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 China

Abstract

AbstractAn ultrabright, ultrafast, and low‐cost ideal scintillator has been critically absent and is sorely desired in scintillation detection, but has hitherto not been found. Here, a high‐quality bulk Cs3Cu2I5:Mn single‐crystal scintillator with ultrahigh light yield (≈95 772 photons per MeV, 137Cs γ‐rays), excellent energy resolution (3.79%, 662 keV), and ultrafast scintillation decay time (3 ns, 81.5%) is reported. In mechanism, it is found that micro‐doping of a heterovalent magnetic ion (at the ppm level) can effectively modulate the luminescence kinetics of self‐trapped excitons in the scintillator. Compared with previous reports, the introduction of trace amounts of magnetic Mn2+ (≈18.6 ppm) in Cs3Cu2I5 single‐crystal shortens the scintillation decay time by several hundred times, transforming the slow decay into an ultrafast decay. Simultaneously, the light yield is also increased about three times to the highest value so far. From the comprehensive performance of the micro‐doped Cs3Cu2I5:Mn single‐crystal, these excellent scintillation properties, physical characteristics suitable for practical applications, and low‐cost advantages render this single‐crystal an ideal scintillator with great potential for commercialization.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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