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arXiv · 2609.06105

Simulation Study of the Design and Spatial Resolution of a Novel AC-coupled Cross Strip LGAD

Abstract

AC-coupled Low Gain Avalanche Diode (AC-LGAD), evolved from the standard LGAD technology, are silicon detectors characterized by exceptional temporal and spatial resolutions. This work proposes a novel sensor named AC-coupled Cross Strip LGAD (CS-LGAD) structure with dual-layered overlapping strip electrodes. It can achieve two-dimensional particle position measurement with low readout density while also inheriting the high temporal resolution of the LGAD. The sensor structure, doping and current-voltage (I-V) characteristics of the sensor were investigated through TCAD simulations. Additionally, Monte Carlo simulations were employed to simulate the signal response of CS-LGAD to minimum ionizing particles (MIPs). The response of MIPs hitting different positions was simulated, and the reconstruction of particle coordinates (x and y) was achieved based on the sharing of charges on the dual-layer electrodes. The spatial resolution might reach 3.6% and 5.5% of the pitch size in the x and y directions, respectively, according to the simulation. The proposed CS-LGAD is a promising 4D detector with low mass and low readout density.

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Jingkang Xu, Mengzhao Li, Zhiliang Hu, Tianya Wu, Mei Zhao, Zhijun Liang, Lihua Mo, Tianjiao Liang. 2026-09-05. Simulation Study of the Design and Spatial Resolution of a Novel AC-coupled Cross Strip LGAD. https://arxiv.org/abs/2609.06105

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