Development of the strip LGAD detector with double-end readout for future colliders
Weiyi Sun, Mengzhao Li, Tianyuan Zhang, Mei Zhao, Yunyun Fan, Shuqi, Li, Yuan Feng, Xinhui Huang, Xuan Yang, Wei Wang, Zhijun Liang, Yuekun Heng

TL;DR
This paper presents the development and testing of strip LGAD detectors with various widths for future collider applications, focusing on electrical characteristics, timing, and position resolution improvements.
Contribution
It introduces a novel strip LGAD design with larger areas to reduce readout electronics density and provides detailed electrical and performance testing results.
Findings
Timing resolution of about 37.5 ps achieved
Position resolution better than 1 mm parallel to strips
Strip LGADs show promising electrical characteristics
Abstract
The Low-Gain Avalanche Diode (LGAD) is a new silicon detector and holds wide application prospects in particle physics experiments due to its excellent timing resolution. The LGAD with a pixel size of 1.3 mm 1.3 mm was used to construct a High Granularity Timing Detector (HGTD) in ATLAS experiments to solve the pile-up problem. Meanwhile, the Circular Electron Positron Collider (CEPC) also proposes detectors using the LGAD. However, pixel LGAD exhibits higher readout electronics density and cost, which somewhat limits the application of LGADs. To decrease the readout electronics density, the Institute of High Energy Physics (IHEP) of the Chinese Academy of Sciences has designed strip LGADs with larger areas. These strip LGADs are all 19 mm in length but with different widths of 1.0 mm, 0.5 mm, and 0.3 mm. This article provides a detailed introduction to the design…
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Taxonomy
TopicsParticle Detector Development and Performance · Radiation Detection and Scintillator Technologies · Advanced Semiconductor Detectors and Materials
