OZARK INTEGRATED CIRCUITS INC — National Aeronautics and Space Administration SBIR Phase I: Z7

OZARK INTEGRATED CIRCUITS INC — SBIR Phase I award from National Aeronautics and Space Administration.

Amount
$124,998
Agency
National Aeronautics and Space Administration
Program / Phase
SBIR · Phase I
Topic
Z7
Solicitation
SBIR_18_P1
NAICS
Place of performance
AR
Period
2018-07-27 → 2019-02-15

Description

<p style="margin-left:0in; margin-right:0in">NASA manned and robotic missions to the surface of planetary or airless bodies require Entry, Descent, and Landing (EDL). For many of these missions, EDL represents one of the riskiest phases of the mission. Despite the criticality of the EDL phase, NASA has historically gathered limited engineering data from such missions, and use of the data for real-time Guidance, Navigation and Control (GN&amp;C) during EDL for precise landing (aside from Earth) has also been limited.</p><p style="margin-left:0in; margin-right:0in">NASA scientists have identified a compact vacuum ultraviolet spectrometer as a key enhancement to EDL sensing.</p><p style="margin-left:0in; margin-right:0in">Ozark IC has developed a far-ultraviolet focal plane array (FPA) in SiC BiCMOS technology. The 159x64 pixel FPA has a spectral response from 100[JH1] nm to 350 nm. BiCMOS test circuits in this technology have demonstrated operation for 100 hours at 500&ordm;C suggesting this FPA will not require any active cooling to operate. The key feasibility question to be answered is: <em>Can the high-temperature packaging and optics be designed with a maximum dimension of 10 centimeters?</em></p><p style="margin-left:0in; margin-right:0in">The primary objective is to answer the feasibility question through a series of measurement and design tasks.&nbsp; Ozark IC will develop&nbsp;supporting FPA firmware and software for environmental testing of the FPA.&nbsp; &nbsp;LumenFlow will then design the spectrometer optics for the smallest possible form factor. Ozark IC will apply it&rsquo;s high-temperature ceramic packing solutions to design a high-temperature substrate and connector system for the SiC FPA and investigate enclosure materials.</p><p style="margin-left:0in; margin-right:0in">Objectives of Phase I</p><ol><li>Determine coldest possible operating temperature of the SiC FPA (cryogenic testing)</li><li>Operate the SiC FPA as a spectrometer using representative spectral lines&nbsp;</li><li>Investigate design trade-offs of thermally matched ceramic substrates for SiC FPA ASIC</li><li>Design compact spectrometer components and verify with optical simulation</li><li>Design VUV experiments to validate the optical system and identify design apparatus needed to complete the experiment</li> </ol>