Tremsin Anton S, Siegmund Oswald H W, Vallerga John V, Raffanti Rick, Weiss Shimon, Michalet Xavier
Space Sciences Laboratory, UC Berkeley, Berkeley, CA 94720 USA,
IEEE Trans Nucl Sci. 2009 Jun 16;56(3):1148-1152. doi: 10.1109/TNS.2009.2015302.
A number of modern experiments require simultaneous measurement of charges on multiple channels at > MHz event rates with an accuracy of 100-1000 e(-) rms. One widely used data processing scheme relies on application of specific integrated circuits enabling multichannel analog peak detection asserted by an external trigger followed by a serial/sparsified readout. Although this configuration minimizes the back end electronics, its counting rate capability is limited by the speed of the serial readout. Recent advances in analog to digital converters and FPGA devices enable fully parallel high speed multichannel data processing with digital peak detection enhanced by finite impulse response filtering. Not only can accurate charge values be obtained at high event rates, but the timing of the event on each channel can also be determined with high accuracy.We present the concept and first experimental tests of fully parallel 128-channel charge sensitive data processing electronics capable of measuring charges with accuracy of 1000 e- rms. Our system does not require an external trigger and, in addition to charge values, it provides the event timing with an accuracy of ~1 ns FWHM. One of the possible applications of this system is high resolution position sensitive event counting detectors with microchannel plates combined with cross strip readout. Implementation of fast data acquisition electronics increases the counting rates of those detectors to multi-MHz level, preserving their unique capability of virtually noiseless detection of both position (with accuracy of ~10 μm FWHM) and timing (1 ns FWHM) of individual particles, including photons, electrons, ions, neutrals, and neutrons.
许多现代实验要求以大于兆赫兹的事件速率同时测量多个通道上的电荷,均方根误差精度为100 - 1000个电子。一种广泛使用的数据处理方案依赖于特定集成电路的应用,该集成电路能够进行多通道模拟峰值检测,由外部触发信号触发,随后进行串行/稀疏读出。尽管这种配置使后端电子设备最小化,但其计数率能力受到串行读出速度的限制。模数转换器和现场可编程门阵列(FPGA)设备的最新进展使得能够进行完全并行的高速多通道数据处理,并通过有限脉冲响应滤波增强数字峰值检测。不仅可以在高事件速率下获得准确的电荷值, 而且每个通道上事件的时间也可以高精度确定。我们提出了能够以约1000个电子均方根误差精度测量电荷的完全并行128通道电荷灵敏数据处理电子设备的概念和首次实验测试。我们的系统不需要外部触发,除了电荷值外,它还能以约1纳秒半高宽的精度提供事件时间。该系统的一个可能应用是具有微通道板和交叉条读出相结合的高分辨率位置敏感事件计数探测器。快速数据采集电子设备的实现将这些探测器的计数率提高到多兆赫兹水平,同时保留了它们对包括光子、电子、离子、中性粒子和中子在内的单个粒子的位置(半高宽精度约为10微米)和时间(半高宽约为1纳秒)进行几乎无噪声检测的独特能力。