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The design and performance of a prototype water Cherenkov optical time-projection chamber

机译:水切伦科夫光学时间投影腔室原型的设计和性能

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A first experimental test of tracking relativistic charged particles by 'drifting' Cherenkov photons in a water-based optical time-projection chamber (OTPC) has been performed at the Fermilab Test Beam Facility. The prototype OTPC detector consists of a 77 cm long, 28 cm diameter, 40 kg cylindrical water mass instrumented with a combination of commercial 5.1 × 5.1 cm~2 micro-channel plate photo-multipliers (MCP-PMT) and 6.7 × 6.7 cm~2 mirrors. Five MCP-PMTs are installed in two columns along the OTPC cylinder in a small-angle stereo configuration. A mirror is mounted opposite each MCP-PMT on the inner surface of the detector cylinder, effectively increasing the photo-detection efficiency and providing a time-resolved image of the Cherenkov light on the opposing wall. Each MCP-PMT is coupled to an anode readout consisting of thirty 50 Ω microstrips. A 180-channel data acquisition system digitizes the MCP-PMT signals on one end of the microstrips using the PSEC4 waveform sampling-and-digitizing chip operating at a sampling rate of 10.24 Gigasamples-per-second. The single-ended micro-strip readout determines the time and position of a photon arrival at the face of the MCP-PMT by recording both the direct signal and the pulse reflected from the unterminated far end of the strip. The detector was installed on the Fermilab MCenter secondary beam-line behind a steel absorber where the primary flux is multi-GeV muons. Approximately 80 Cherenkov photons are detected for a through-going muon track in a total event duration of ~2 ns. By measuring the time-of-arrival and the position of individual photons at the surface of the detector to ≤100ps and a few mm, respectively, we have measured a spatial resolution of ~ 15 mm for each MCP-PMT track segment, and, from linear fits over the entire track length of ~40 cm, an angular resolution on the track direction of ~60 mrad.
机译:在费米实验室测试光束设备上已进行了通过在水基光学时间投影室(OTPC)中“漂移”切伦科夫光子来跟踪相对论带电粒子的第一个实验测试。原型OTPC检测器由77厘米长,28厘米直径,40千克圆柱形水团组成,结合了商用5.1×5.1 cm〜2微通道板光电倍增器(MCP-PMT)和6.7×6.7 cm〜 2个镜子。五个MCP-PMT以小角度立体声配置沿OTPC圆柱体安装在两列中。在检测器圆柱体的内表面上与每个MCP-PMT相对地安装了一个反射镜,有效地提高了光检测效率,并在相对的墙上提供了契伦科夫光的时间分辨图像。每个MCP-PMT都耦合到由30个50Ω微带组成的阳极读数。一个180通道的数据采集系统使用PSEC4波形采样和数字化芯片以每秒10.24 Gigasamples的采样速率对微带一端的MCP-PMT信号进行数字化。单端微带读数通过记录直接信号和从条带的未端接远端反射的脉冲来确定光子到达MCP-PMT表面的时间和位置。探测器安装在Fermilab MCenter次级光束线上,位于钢吸收器后面,主要通量为多GeV介子。在约2 ns的总事件持续时间内,检测到约80个切伦科夫光子通过一条贯穿的μ子轨道。通过将探测器表面的到达时间和各个光子的位置分别测量为≤100ps和几毫米,我们为每个MCP-PMT轨道段测量了约15毫米的空间分辨率,并且,在整个〜40 cm的轨道长度上线性拟合,在〜60 mrad的轨道方向上具有角分辨率。

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