论文标题

高压气态TPC中中性s的topbetal CMOS直接电荷传感平面

Topmetal CMOS direct charge sensing plane for neutrinoless double-beta decay search in high-pressure gaseous TPC

论文作者

Mei, Yuan, Sun, Xiangming, Xu, Nu

论文摘要

我们提出了一个新颖的电荷感应概念,用于高压时间投影室(TPC),以搜索具有吨位的同位素质量及以后的中微子双β衰减(NLDBD)。米大小的平面,带有一系列CMOS集成的传感器,称为Topmetal,直接收集无气雪崩增益的电荷,将部署到高压气体TPC中,其中包含合适的NLDBD候选同位素(例如XE-136和SE-82)。 Topmetal传感器的电子噪声<30 E-每个像素<30 e-e- XE-136和82SEF6气体,可通过单独测量电离电荷来达到NLDBD Q值的<1%FWHM能量分辨率。消除电荷雪崩增益可以直接传感缓慢的离子,这使得不存在自由电子的高度电盖气体SEF6。它支持无需修改硬件的工作气体的交换,这是验证在放射性背景下验证信号的独特方法。由于传感器制造和平面组装可以利用未更改的工业批量生产过程,稳定性,均匀性,可伸缩性和成本效益都可以达到吨级实验所需的一切。保留了TPC的优势,例如3D电离跟踪和衰减女儿标记。这种发展可能会导致竞争性的NLDBD实验和更高的量表。讨论了概念上的考虑因素,模拟和初始原型。

We propose a novel charge sensing concept for high-pressure Time Projection Chamber (TPC) to search for Neutrinoless Double-Beta Decay (NLDBD) with ton-scale isotope mass and beyond. A meter-sized plane, tiled with an array of CMOS integrated sensors called Topmetal that directly collect charge without gas avalanche gain, is to be deployed into a high-pressure gaseous TPC with working gases containing suitable NLDBD candidate isotopes such as Xe-136 and Se-82. The Topmetal sensor has an electronic noise <30 e- per pixel, which allows the detector to reach <1% FWHM energy resolution at the NLDBD Q-value for both Xe-136 and 82SeF6 gases by measuring ionization charges alone. The elimination of charge avalanche gain allows the direct sensing of slow-drifting ions, which enables the use of highly electronegative gas SeF6 in which free electrons do not exist. It supports the swapping of working gases without hardware modification, which is a unique way to validate signals against radioactive backgrounds. Since the sensor manufacturing and plane assembling could leverage unaltered industrial mass-production processes, stability, uniformity, scalability, and cost-effectiveness that are required for ton-scale experiments could all be reached. The strengths of TPC such as 3D ionization tracking and decay daughter tagging are retained. This development could lead to a competitive NLDBD experiment at and above ton-scale. The conceptual considerations, simulations, and initial prototyping are discussed.

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