Effect of Very High-Fluence Proton Radiation on 6H-SiC Photoconductive Proton Detectors
Qing Liu, Hai Lu, Dong Zhou, Xiaolong Cai, Ming Qi, Weizong Xu, Dunjun Chen, Fangfang Ren, Rong Zhang, Youdou Zheng
Abstract
Qing Liu, Hai Lu, Dong Zhou, Xiaolong Cai, Ming Qi, Weizong Xu, Dunjun Chen, Fangfang Ren, Rong Zhang, Youdou Zheng
Abstract
In this work, the effect of very high-fluence 100 MeV proton radiation on the performance of 6H-SiC photoconductive proton detectors is studied. The irradiation fluence is up to 1.6 × 1017cm-2and the degradation process of the SiC detector is continuously monitored for the first time. Before proton irradiation, the detector shows a low dark current of ~ 0.8 nA/cm2at 1000 V bias. As the irradiation fluence increases, the dark current continuously drops, which should be caused by irradiation damage induced carrier compensation defects. Meanwhile, the output current of the SiC detector shows an exponential decay behavior and tends to saturate at irradiation fluence up to 5 × 1016cm-2. At the end of the very high fluence irradiation test, the detector still exhibits ~20% of its original output current value, suggesting the excellent radiation hardness of SiC for proton detection.
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In this work, the effect of very high-fluence 100 MeV proton radiation on the performance of 6H-SiC photoconductive proton detectors is studied. The irradiation fluence is up to 1.6 × 1017cm-2and the degradation process of the SiC detector is continuously monitored for the first time. Before proton irradiation, the detector shows a low dark current of ~ 0.8 nA/cm2at 1000 V bias. As the irradiation fluence increases, the dark current continuously drops, which should be caused by irradiation damage induced carrier compensation defects. Meanwhile, the output current of the SiC detector shows an exponential decay behavior and tends to saturate at irradiation fluence up to 5 × 1016cm-2. At the end of the very high fluence irradiation test, the detector still exhibits ~20% of its original output current value, suggesting the excellent radiation hardness of SiC for proton detection.
Key concepts: Fluence, Proton, Irradiation, Detector, Physics, Dark current, Analytical Chemistry (journal), Materials science