Intrinsic Spatial Position Resolution of P-type Point-Contact Germanium Detector
R. M. J. Li, S. K. Liu, S. T. Lin, Q. Y. Li, L. T. Yang, Q. Yue, Q. Wang, H. Y. Li, X. Y. Peng, H. Y. Xing, J. J. Zhu
Abstract
The p-type point-contact germanium detectors have emerged as the ideal detection technology for rare-event experiments such as direct dark matter searches and neutrinoless double beta decay, and have been verified to be capable of single-site spatial position resolution. Accurately characterizing the position-dependent pulse shape responses of the detector is a crucial prerequisite for deepening background understanding and achieving background reduction. Relying on an optimized cross-scanning localization method and a full-chain physical framework, this study extracted the pulse shape responses in critical regions of the CDEX detector, quantitatively evaluated its intrinsic spatial position resolution for the first time, and ultimately achieved the position tracing of real environmental backgrounds using the constructed pulse shape database. This study completely establishes a physical analysis closed-loop for spatial position resolution, providing critical theoretical and technical support for background analysis in future ton-scale arrays.
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