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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Dual-sided microstructured semiconductor neutron detectors (DSMSNDs)
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Dual-sided microstructured semiconductor neutron detectors (DSMSNDs)

机译:双面微结构半导体中子探测器(DSMSND)

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Microstructured semiconductor neutron detectors (MSNDs) have in recent years received much interest as high-efficiency replacements for thin-film-coated thermal neutron detectors. The basic device structure of the MSND involves micro-sized trenches that are etched into a vertically-oriented pvn-junction diode that are backfilled with a neutron converting material. Neutrons absorbed within the converting material induce fission of the parent nucleus, producing a pair of energetic charged-particle reaction products that can be counted by the diode. The MSND deep-etched microstructures produce good neutron-absorption and reaction-product counting efficiencies, offering a 10 × improvement in intrinsic thermal neutron detection efficiency over thin-film-coated devices. Performance of present-day MSNDs are nearing theoretical limits; streaming paths between the conversion-material backfilled trenches, allow a considerable fraction of neutrons to pass undetected through the device. Dual-sided microstructured semiconductor neutron detectors (DSMSNDs) have been developed that utilize a complementary second set of trenches on the back-side of the device to count streaming neutrons. DSMSND devices are theoretically capable of greater than 80% intrinsic thermal neutron detection efficiency for a 1 -mm thick device. The first such prototype DSMSNDs, presented here, have achieved 29.48 ± 0.29% nearly 2 × better than MSNDs with similar microstructure dimensions.
机译:近年来,作为薄膜涂层热中子探测器的高效替代品,微结构半导体中子探测器(MSND)受到了广泛的关注。 MSND的基本设备结构包括微沟槽,该微沟槽被蚀刻到垂直取向的pvn结二极管中,并用中子转换材料回填。吸收在转换材料中的中子引起母核的裂变,产生一对可被二极管计数的高能带电粒子反应产物。 MSND深腐蚀微结构产生良好的中子吸收和反应产物计数效率,与薄膜涂层器件相比,固有热中子探测效率提高了10倍。当前MSND的性能已接近理论极限;转换材料回填沟槽之间的流动路径允许相当一部分中子未经检测通过该装置。已经开发出了双面微结构半导体中子探测器(DSMSND),该探测器利用设备背面的第二套互补沟槽来对流动中子进行计数。从理论上讲,DSMSND设备对于1毫米厚的设备具有80%以上的固有热中子探测效率。此处介绍的首个此类原型DSMSND与具有相似微观结构尺寸的MSND相比,已获得29.48±0.29%的近2倍的改善。

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