Plastic microchannel plates with nano-engineered films

被引:14
|
作者
Beaulieu, D. R. [1 ]
Gorelikov, D. [1 ]
Klotzsch, H. [1 ]
de Rouffignac, P. [1 ]
Saadatmand, K. [1 ]
Stenton, K. [1 ]
Sullivan, N. [1 ]
Tremsin, A. S. [1 ]
机构
[1] Arradiance Inc, Sudbury, MA 01776 USA
关键词
Microchannel plate; Event counting; High resolution; Fast neutron detection;
D O I
10.1016/j.nima.2010.06.121
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Since their invention decades ago, microchannel plate (MCP) performance has been defined by the properties of the substrate material, which defines both mechanical structure and electron amplification within the device. Specific glass compositions have been developed to provide the conduction and electron emission layer at the surface of the pores. Alternative technologies using quartz and alumina substrates have not matured enough to become a viable substitute to lead-glass-based MCPs. In this paper we report on the development of new MCP devices from plastic substrates. The plastic substrate serves only as a mechanical structure: the electron amplification properties are provided by nano-engineered conduction and emission layers. The film deposition procedures were optimized for low temperatures compatible with the polymethyl methacrylate (PMMA) plastic chosen for this work. The gain of the PMMA MCP with aspect ratio of similar to 27:1 and pore diameter similar to 50 mu m spaced on 70 mu m hexagonal grid exceeded 200 at 470 V accelerating bias. Development of hydrogen-rich plastic MCPs should enable direct detection of fast neutrons through proton recoil reaction. Recoil protons with escape ranges comparable to the wall thickness will initiate an electron avalanche upon collision with the pore walls. The electron signal is then amplified within the MCP pore allowing high spatial and temporal resolution for each detected fast neutron. We expect to achieve similar to 1% detection efficiency for 1-15 MeV neutrons with temporal resolution <10 ns, spatial resolution of <200 mu m and very low background noise. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:S59 / S61
页数:3
相关论文
共 50 条
  • [41] Nano-engineered glass absorbs organic contaminants. . .
    Ondrey, Gerald
    [J]. CHEMICAL ENGINEERING, 2012, 119 (02) : 10 - 10
  • [42] Stress and compensation of stress in nano-engineered optical coatings
    Hodgkinson, IJ
    Wu, QH
    Thorn, KE
    [J]. COMPLEX MEDIUMS, 2000, 4097 : 330 - 337
  • [43] Nano-engineered microcapsules boost the treatment of persistent pain
    Kopach, Olga
    Zheng, Kayiu
    Dong, Luo
    Sapelkin, Andrei
    Voitenko, Nana
    Sukhorukov, Gleb B.
    Rusakov, Dmitri A.
    [J]. DRUG DELIVERY, 2018, 25 (01) : 435 - 447
  • [44] NANO-ENGINEERED BIOMATERIALS IMPROVES STEM CELL BEHAVIOR
    不详
    [J]. STEM CELLS TRANSLATIONAL MEDICINE, 2014, 3 (07) : XVI - XVI
  • [45] Inductive characterization of superconducting nano-engineered artificial cuprates
    Medaglia, PG
    Orgiani, P
    Aruta, C
    Balestrino, G
    Tebano, A
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2003, 17 (4-6): : 393 - 399
  • [46] Nano-Engineered Alumina Surfaces for Prevention of Bacteria Adhesions
    Hizal, Ferdi
    Rungraeng, Natthakan
    Jun, Soojin
    Choi, Chang-Hwan
    [J]. 2014 9TH IEEE INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS (NEMS), 2014, : 17 - 22
  • [47] Nano-engineered Composites: Interlayer Carbon Nanotubes Effect
    Carley, Glaucio
    Geraldo, Viviany
    de Oliveira, Sergio
    Avila, Antonio Ferreira
    [J]. MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2013, 16 (03): : 628 - 634
  • [48] Nano-Engineered Materials for Fischer-Tropsch Catalysis
    Gyawali, Suraj
    Soto, Fernando
    Godara, Sumegha
    Mainardi, Daniela S.
    [J]. 2015 IEEE 15TH INTERNATIONAL CONFERENCE ON NANOTECHNOLOGY (IEEE-NANO), 2015, : 702 - 705
  • [49] Fuel cell technology: nano-engineered multimetallic catalysts
    Zhong, Chuan-Jian
    Luo, Jin
    Njoki, Peter N.
    Mott, Derrick
    Wanjala, Bridgid
    Loukrakpam, Rameshwori
    Lim, Stephanie
    Wang, Lingyan
    Fang, Bin
    Xu, Zhichuan
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2008, 1 (04) : 454 - 466
  • [50] Structured Electron Beams from Nano-Engineered Cathodes
    Lueangaramwong, A.
    Mihalcea, D.
    Andonian, G.
    Piot, P.
    [J]. ADVANCED ACCELERATOR CONCEPTS, 2017, 1812