厚型气体电子倍增器(Thick Gaseous Electron Multiplier,THGEM/TGEM)在高能物理实验中有广泛应用,如X射线、带电粒子及中子的探测和成像等领域。THGEM的制作通过印制电路的钻孔、蚀刻和外形等工艺来实现,并要求具有高耐压、强电...厚型气体电子倍增器(Thick Gaseous Electron Multiplier,THGEM/TGEM)在高能物理实验中有广泛应用,如X射线、带电粒子及中子的探测和成像等领域。THGEM的制作通过印制电路的钻孔、蚀刻和外形等工艺来实现,并要求具有高耐压、强电场、小孔间距和高孔位精度等特点。本文将根据THGEM的以上特点,分析其对PCB在材料选择、设计和工艺制程等方面的特殊要求,并通过对比各条件的产品性能数据给出应用于高性能THGEM制作的PCB解决方莱。展开更多
气体电子倍增器(GEM)以其独特的性能在辐射探测器领域得到了广泛的应用,对50μm厚聚酰亚胺(kapton)薄膜利用真空热蒸发和激光掩膜打孔法制作GEM膜,孔径100μm,孔距223μm,并封装流气式探测器,有效探测面积3mm×3mm。5.9keV55F e X...气体电子倍增器(GEM)以其独特的性能在辐射探测器领域得到了广泛的应用,对50μm厚聚酰亚胺(kapton)薄膜利用真空热蒸发和激光掩膜打孔法制作GEM膜,孔径100μm,孔距223μm,并封装流气式探测器,有效探测面积3mm×3mm。5.9keV55F e X射线测量了GEM在不同高压和混合气体比例时的脉冲幅度分布情况。讨论了高压和气体比例对探测器计数率和能量分辨率的影响。结果表明GEM具有较高的信噪比,能量分辨率可达18.2%。展开更多
研制了一种适用于高能物理GEM探测器读出系统的数字芯片。芯片采用PAD读出方式,对GEM探测器的输出直接采样,对采样到的信号放大并成形,判断该输入是否超过由外部DAC设定的阈值,给出判断结果,并按照一个串行协议读出。芯片采用0.35μm/3....研制了一种适用于高能物理GEM探测器读出系统的数字芯片。芯片采用PAD读出方式,对GEM探测器的输出直接采样,对采样到的信号放大并成形,判断该输入是否超过由外部DAC设定的阈值,给出判断结果,并按照一个串行协议读出。芯片采用0.35μm/3.3 V CMOS工艺设计,后仿真结果显示芯片达到预期研制目标。展开更多
Among the various micro-pattern gas detectors (MPGD) that are available, the gas electron multiplier (GEM) detector is an attractive gas detector that has been used in particle physics experiments. However, the GEM de...Among the various micro-pattern gas detectors (MPGD) that are available, the gas electron multiplier (GEM) detector is an attractive gas detector that has been used in particle physics experiments. However, the GEM detector usually needs thousands of preamplifier units for its large number of micro-pattern readout strips or pads, which leads to considerable difficulties and complexities for front end electronics (FEE). Nowadays, by making use of complementary metal-oxide semiconductor (CMOS)-based application specific integrated circuit (ASIC), it is fea- sible to integrate hundreds of preamplifier units and other signal process circuits in a small-sized chip, which can be bound to the readout strips or pads of a micro-pattern particle detector (MPPD). Therefore, CMOS ASIC may provide an ideal solution to the readout problem of MPPD. In this article, a triple GEM detector is constructed and one of its readout strips is connected to a CMOS charge-sensitive preamplifier chip. The chip was exposed to an 55Fe source of 5.9 keV X-ray, and the amplitude spectrum of the chip was tested, and it was found that the energy resolution was approximately 27%, which indicates that the chip can be used in triple GEM detectors.展开更多
文摘厚型气体电子倍增器(Thick Gaseous Electron Multiplier,THGEM/TGEM)在高能物理实验中有广泛应用,如X射线、带电粒子及中子的探测和成像等领域。THGEM的制作通过印制电路的钻孔、蚀刻和外形等工艺来实现,并要求具有高耐压、强电场、小孔间距和高孔位精度等特点。本文将根据THGEM的以上特点,分析其对PCB在材料选择、设计和工艺制程等方面的特殊要求,并通过对比各条件的产品性能数据给出应用于高性能THGEM制作的PCB解决方莱。
文摘气体电子倍增器(GEM)以其独特的性能在辐射探测器领域得到了广泛的应用,对50μm厚聚酰亚胺(kapton)薄膜利用真空热蒸发和激光掩膜打孔法制作GEM膜,孔径100μm,孔距223μm,并封装流气式探测器,有效探测面积3mm×3mm。5.9keV55F e X射线测量了GEM在不同高压和混合气体比例时的脉冲幅度分布情况。讨论了高压和气体比例对探测器计数率和能量分辨率的影响。结果表明GEM具有较高的信噪比,能量分辨率可达18.2%。
文摘研制了一种适用于高能物理GEM探测器读出系统的数字芯片。芯片采用PAD读出方式,对GEM探测器的输出直接采样,对采样到的信号放大并成形,判断该输入是否超过由外部DAC设定的阈值,给出判断结果,并按照一个串行协议读出。芯片采用0.35μm/3.3 V CMOS工艺设计,后仿真结果显示芯片达到预期研制目标。
文摘Among the various micro-pattern gas detectors (MPGD) that are available, the gas electron multiplier (GEM) detector is an attractive gas detector that has been used in particle physics experiments. However, the GEM detector usually needs thousands of preamplifier units for its large number of micro-pattern readout strips or pads, which leads to considerable difficulties and complexities for front end electronics (FEE). Nowadays, by making use of complementary metal-oxide semiconductor (CMOS)-based application specific integrated circuit (ASIC), it is fea- sible to integrate hundreds of preamplifier units and other signal process circuits in a small-sized chip, which can be bound to the readout strips or pads of a micro-pattern particle detector (MPPD). Therefore, CMOS ASIC may provide an ideal solution to the readout problem of MPPD. In this article, a triple GEM detector is constructed and one of its readout strips is connected to a CMOS charge-sensitive preamplifier chip. The chip was exposed to an 55Fe source of 5.9 keV X-ray, and the amplitude spectrum of the chip was tested, and it was found that the energy resolution was approximately 27%, which indicates that the chip can be used in triple GEM detectors.