Kroupa M, Campbell-Ricketts T, Bahadori A, Empl A
Leidos, Houston, Texas 77258-8487, USA.
University of Houston, Houston, Texas 77004, USA.
Rev Sci Instrum. 2017 Mar;88(3):033301. doi: 10.1063/1.4978281.
We demonstrate techniques to improve the accuracy of the energy calibration of Timepix pixel detectors, used for the measurement of energetic particles. The typical signal from such particles spreads among many pixels due to charge sharing effects. As a consequence, the deposited energy in each pixel cannot be reconstructed unless the detector is calibrated, limiting the usability of such signals for calibration. To avoid this shortcoming, we calibrate using low energy X-rays. However, charge sharing effects still occur, resulting in part of the energy being deposited in adjacent pixels and possibly lost. This systematic error in the calibration process results in an error of about 5% in the energy measurements of calibrated devices. We use FLUKA simulations to assess the magnitude of charge sharing effects, allowing a corrected energy calibration to be performed on several Timepix pixel detectors and resulting in substantial improvement in energy deposition measurements. Next, we address shortcomings in calibration associated with the huge range (from kiloelectron-volts to megaelectron-volts) of energy deposited per pixel which result in a nonlinear energy response over the full range. We introduce a new method to characterize the non-linear response of the Timepix detectors at high input energies. We demonstrate improvement using a broad range of particle types and energies, showing that the new method reduces the energy measurement errors, in some cases by more than 90%.
我们展示了提高用于测量高能粒子的Timepix像素探测器能量校准精度的技术。由于电荷共享效应,此类粒子产生的典型信号会分散在多个像素之间。因此,除非对探测器进行校准,否则无法重建每个像素中沉积的能量,这限制了此类信号在校准中的可用性。为避免这一缺点,我们使用低能X射线进行校准。然而,电荷共享效应仍然会发生,导致部分能量沉积在相邻像素中并可能丢失。校准过程中的这种系统误差在校准设备的能量测量中会导致约5%的误差。我们使用FLUKA模拟来评估电荷共享效应的大小,从而能够对多个Timepix像素探测器进行校正后的能量校准,并显著改善能量沉积测量结果。接下来,我们解决了校准中与每个像素沉积的能量范围巨大(从千电子伏特到兆电子伏特)相关的缺点,这会导致在整个范围内出现非线性能量响应。我们引入了一种新方法来表征Timepix探测器在高输入能量下的非线性响应。我们使用广泛的粒子类型和能量展示了改进效果,表明新方法减少了能量测量误差,在某些情况下减少了90%以上。