基于单晶金刚石肖特基二极管的微剂量计阵列的开发与制造

C. Verona, G. Verona Rinati, Giuseppe Schettino, G. Parisi
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摘要

微剂量测定技术的进步提高了探测器的性能和可靠性,因此人们对微剂量测定的兴趣与日俱增。本文提出了一种新型金刚石微剂量计的制造和表征方法。微剂量计由并联的约 1.5 μm 厚的单晶金刚石肖特基二极管阵列组成。探测器原型采用离子束诱导电荷技术,使用 6 MeV 碳离子微束进行鉴定。尽管总体响应良好,但首批原型受到了 "桥效应 "的影响:连接敏感体(SV)的金属桥下的电荷聚集改变了能量沉积谱。为了减轻电桥效应,研究人员探索了不同的技术解决方案:选择性生长本征金刚石层和使用绝缘材料(如光刻胶)。第二种原型显示出良好的 SV 空间定义,没有任何电荷从桥上聚集,不同原型的 SV 内具有良好的响应均匀性,全宽-半最大值介于 3% 和 5% 之间。SVs 类似细胞的厚度和横向尺寸使金刚石微剂量计阵列成为放射生物学应用的理想选择,而其阵列配置也使其具有高度的通用性,可在粒子治疗的不同通量率条件下使用。
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Development and Fabrication of Microdosimeter Arrays Based on Single‐Crystal Diamond Schottky Diodes
The interest in microdosimetry is growing thanks to the advancement in microdosimetric technologies, improving detector performance and reliability. Herein, the fabrication and characterization of a novel diamond‐based microdosimeter are proposed. The microdosimeter consists of an array of single‐crystal diamond Schottky diodes about 1.5 μm thick connected in parallel. The detector prototypes are characterized using the ion beam‐induced charge technique, employing a 6 MeV carbon ions microbeam. Despite a good overall response, the first prototypes are affected by the “bridge effect”: a charge collection beneath the metallic bridges connecting the sensitive volumes (SVs), which alters the energy deposition spectrum. To mitigate the bridge effect, different technological solutions are explored: the selective growth of intrinsic diamond layers and the use of an insulating material such as photoresist. These second prototypes reveal a good SV spatial definition without any charge collection from the bridges and a good response homogeneity within the SVs ranging between 3% and 5% full‐width‐half‐maximum among the different prototypes. While the cell‐like thickness and lateral dimensions of SVs make the diamond microdosimeter array ideal for radiobiological applications, its array configuration can make it highly versatile to perform under different fluence rate conditions in particle therapy.
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