KWJ ENGINEERING INC — Department of Energy SBIR Phase I: This proposal responds DOEs effort to develop technology which will become the foundation
KWJ ENGINEERING INC — SBIR Phase I award from Department of Energy.
- Amount
- $224,970
- Agency
- Department of Energy
- Program / Phase
- SBIR · Phase I
- Solicitation
- DE-FOA-0000969
- NAICS
- —
- Place of performance
- CA
- Period
- 2014-02-18 → 2014-11-17
Description
This proposal responds DOEs effort to develop technology which will become the foundation of the next generation of eddy covariance. KWJ has developed a process for fabricating sub-m dimension TCDs, whose low thermal mass allows sub-millisecond measurement times, average power requirements of & lt;10W, and temperatures low enough to allow billions of measurements without drift. KWJ has demonstrated quantitative measurement of a range of gases including N2 and O2, as well as CH4 and CO2, using the nano-TCD sensors. In Phase I, KWJ will demonstrate sensitivity and stability needed to monitor fluctuations of N2 and Ar in synthetic air samples. The sensors will be characterized and tested for a suite of key gas sensor and analytical performance parameters under relevant environmental conditions for atmospheric measurements. The selectivity of the proposed sensor will be improved using microfabricated designs being developed at the Georgia Institute of Tecfhnology. An alternate technique for improving selectivity is also possible due to the ultra-fast nano-TCD response, this will be investigated in Phase I and developed fully in Phase II. Commercial Applications and Other Benefits: Not only are measurements of such fluxes crucial in the research fields of climate change, global change biology, and ecology, but they also have direct applications in agriculture, medicine, and industrial processes. However, it has been difficult to measure these gases precisely with fast response due to their high ambient abundance. This STTR Phase I proposal addresses development of a new, ultra-fast nano-sensor measurement technology that combines ultra-fast, micro-watt power nano-TCD sensors to enable high resolution, fast analysis of N2 and Ar, as well as future application to greenhouse gasses CO2 and CH4 when improved sensitivity is realized. The nanosensor-based atmospheric analyzer will provide a new tool for qualitative, quantitative and spatial measurement and mapping of atmospheric gas fluctuations. This sensor is part of a broader effort to develop smaller, faster, lower power and more cost effective alternatives for a wide variety of applications including not only atmospheric measurements, but also area monitoring and personal safety monitoring.