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Assessing the Performance of Digital Micromirror Devices(TM) for use in Space-Based Multi-Object Spectrometers.

机译:评估用于天基多物体光谱仪的Digital Micromirror Devices(TM)的性能。

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摘要

A current need in space-based instrumentation is a reconfigurable slit mask. Several techniques for slit masks have been employed for ground-based astronomical spectrographs. These ground-based instruments have used large discrete components, which are impractical for remote operation in space-based deployment. The Texas Instruments' Digital Micromirror Device (DMD) was originally conceived purely for display purposes, but is a viable candidate to be use as a slit mask in a space-based multi-object spectrograph (MOS). The Integrated Circuit (IC) manufacturing industry has enabled the robust integration of both silicon transistors and Micro-Electrical Mechanical Systems (MEMS) optical components into a very reliable monolithic chip (the DMD). The focus of this work was in three areas that addressed the suitability of proposing DMDs for future space missions. The DMDs were optically characterized to assess their utility in a spectrograph. The DMDs were also cooled in a liquid nitrogen dewar to determine their minimum operating temperature. The low temperature tests indicated that the DMD can operate to temperatures as low as 130 K. In addition, several DMDs were irradiated with high-energy protons at the LBNL 88" Cyclotron to determine how robust the devices are to ionizing radiation (protons). The radiation testing results indicate that DMDs would survive medium to long duration space missions with full operability. Based on preliminary tests in these three areas, the DMD should be considered as an excellent candidate for deployment in future space missions.
机译:天基仪器的当前需求是可重构狭缝掩模。几种用于狭缝掩膜的技术已用于地面天文光谱仪。这些地面仪器使用了较大的分立组件,这对于天基部署中的远程操作是不切实际的。德州仪器(TI)的数字微镜设备(DMD)最初纯粹是出于显示目的而设计的,但它是在天基多对象光谱仪(MOS)中用作狭缝掩模的可行选择。集成电路(IC)制造业已将硅晶体管和微机电系统(MEMS)光学组件牢固地集成到了非常可靠的单片芯片(DMD)中。这项工作的重点是在三个领域,这些领域解决了提出DMD适于未来太空飞行的问题。对DMD进行光学表征,以评估其在光谱仪中的效用。 DMD也要在液氮杜瓦瓶中冷却以确定其最低工作温度。低温测试表明DMD可以在低至130 K的温度下工作。此外,在LBNL 88“回旋加速器上用高能质子辐照了几只DMD,以确定设备对电离辐射(质子)的坚固性。辐射测试结果表明,DMD能够在中长期太空任务中保持完整的可操作性,根据这三个领域的初步测试,DMD应该被认为是未来太空任务部署的理想选择。

著录项

  • 作者

    Fourspring, Kenneth D.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.;Physics General.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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