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Utilization of SAGS Type 1 delivery systems in novel doping applications

机译:SAGS 1型输送系统在新型掺杂应用中的利用

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The advent of new technologies is driving the emergence of alternative doping methods. For instance, plasma doping is potentially a critical enabler for three-dimensional (3D) devices in the integrated circuit (IC) market, requiring flow rates much higher than those of traditional planar structures. Unlike traditional beam-line ion implantation, dopants are typically not introduced from an on-board gas box within the tool; rather they are distributed from a remote gas delivery system. This is possible given that the gas delivery system is held at the same potential as the tool and there is no high voltage gap to overcome. Similarities exist in other markets such as solar, flat panel display, and power electronics, in terms of needing to deliver high gas flows from a remote delivery source. This requirement poses significant hurdles in terms of process safety, installation considerations, and the ability to enable high gas conductance through proper flow component selection. This paper details how each of these factors affects the performance of the system and the ability to achieve the required process flow rates. Theoretical flow modeling is used to estimate overall system conductance and gas utilization and these results are compared to empirical data to show that system attributes can be predicted. This capability coupled with a gas delivery cabinet that is designed to enable the performance and safety of SAGS Type1 delivery systems, provides a robust solution to material delivery needs for novel doping applications.
机译:新技术的出现推动了替代掺杂方法的出现。例如,等离子体掺杂对于集成电路(IC)市场中的三维(3D)器件可能是至关重要的促成因素,要求的流速比传统平面结构的流速高得多。与传统的束线离子注入不同,通常不会从工具内的车载气箱中引入掺杂剂。相反,它们是从远程气体输送系统分配的。假设气体输送系统保持与工具相同的电位,并且没有高电压间隙需要克服,则这是可能的。就需要从远程输送源输送大量气流而言,在其他市场(例如太阳能,平板显示器和电力电子设备)中存在相似之处。这种要求造成在过程安全,安装方面的考虑,并以使通过适当的流动分量选择高气体传导的能力方面显著障碍。本文详细介绍了这些因素中的每一个如何影响系统的性能以及实现所需过程流量的能力。理论流模型用于估计整个系统的电导率和气体利用率,并将这些结果与经验数据进行比较,以表明可以预测系统属性。这种功能与气体输送柜相结合,旨在实现SAGS Type1输送系统的性能和安全性,为满足新型掺杂应用中的物料输送需求提供了可靠的解决方案。

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