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Biomedical subjects

J M Sirota

Publications and source records attributed to J M Sirota.

3 recordsLinked to original sources

Absolute band intensities of acetone ((CH3)2CO) in the infrared region of 830-3200 cm(-1) at low and room temperatures.

Absolute integrated band intensities of acetone (CH3)2CO in the region of 830-3200 cm(-1) have been measured near the temperatures of 233, 260 and 293 K. The spectra were recorded with a Fourier transform infrared (FTIR) spectrometer. The investigated region encompasses a total of 15 fundamental bands. At 293 K, for example, the band intensities range from 16.8 to 554.3 cm(-2) atm(-1) (at 300 K). The intensities have uncertainties of about 5%. All the band intensities increase with decreasing temperature. An empirical formulation was introduced which fit this temperature dependence well and which can be used to predict other unmeasured band intensities in the temperature region of approximately 200-300 K. The 295 K intensities reported here agree to within approximately 10% of previously published values, with lower estimated uncertainties. Low temperature intensity measurements are not available in the literature.

Acetone↗

Absolute band intensities in the nu19/nu23 (530 cm(-1)) and nu7 (777 cm(-1)) bands of acetone ((CH3)2CO) from 232 to 295 K.

Absolute band intensities of acetone ((CH3)2CO) in the nu19/nu23 and nu7 band systems near 530 and 777 cm(-1), respectively, were measured at temperatures of 232, 262 and 295 K, using a Fourier transform infrared (FTIR) spectrometer. No evident temperature dependence for the band intensities was observed. The dipole moments and the fundamental band intensities were derived in the harmonic oscillator approximation. The results are useful for the spectroscopic retrieval of acetone concentrations in the upper atmosphere.

Acetone↗

Fourier-transform optical microsystems.

The design, fabrication, and initial characterization of a miniature single-pass Fourier-transform spectrometer (FTS) that has an optical bench that measures 1 cm x 5 cm x 10 cm is presented. The FTS is predicated on the classic Michelson interferometer design with a moving mirror. Precision translation of the mirror is accomplished by microfabrication of dovetailed bearing surfaces along single-crystal planes in silicon. Although it is miniaturized, the FTS maintains a relatively high spectral resolution, 0.1 cm-1, with adequate optical throughput.

Equipment Design↗