Headspace Analysis of Volatile Compounds Using Segmented Chirped-Pulse Fourier Transform mm-wave Spectroscopy

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Headspace Analysis of Volatile Compounds Using Segmented Chirped-Pulse Fourier Transform mm-wave Spectroscopy Brent J. Harris, Amanda L. Steber, and Brooks H. Pate Department of Chemistry University of Virginia

Instruments for Spectroscopy Spectroscopy and its applications Frequency Molecular Energy Levels Commercial Techniques RF (<1 GHz) Nuclear Spin in Magnetic Field NMR, MRI MW (9-90 GHz) Electron Spin in Magnetic Field EPR/ESR MW-THz (2-2000 GHz) Overall Molecular Rotation NONE IR (100-4000 cm -1 ) Molecular Vibration FTIR, NDIR Diode laser UV-VIS (100-800 nm) Electronic Excitation Fluorimeters, Imaging, LIBS, Raman microscopy X-rays (< 100 nm) Inner Core Electron Excitation X-ray emission for chemical analysis

Rotational Spectroscopy as an Analytical Technique The Routine Rotational Spectrometer H. W. Harrington, J. R. Hearn, R. F. Rauskolb, Hewlett-Packard Journal, 1971, 22, 1 1) Competitive performance metrics 2) Benchtop operation, low sample consumption, no consumables or cryogens 3) Multispecies analysis (broadband spectrum)

Chirped-Pulse Fourier Transform for Room-Temperature Gases Why millimeter-wave? Effect of temperature Effect of molecule size/mass 300 K 260-295 GHz best window for high power sources and 3-5 heavy atom, room-temperature, volatiles

CP-FTmmW Spectrometer Block schematic and segmented waveform 1) 12GS/s, 12 bit Arbitrary Waveform Generator for custom excitation, local oscillator waveforms 2) 45 mwatt Peak Power, High Bandwidth Active Multiplier Chain 3) 4GS/s High Speed Digitizer with FPGA Signal Accumulation (16M averages)

Segmented CP-FTmmW Segmented (lowers performance requirements for digitizers) Chirped Pulse (add instantaneous bandwidth to utilize entire source power Fourier Transform (relieve pressure broadening in digital signal processing) (enhance analysis with time resolved analytical tools) Noise Level: 0.002 mv Near 100% duty cycle

Sensitivity and Sample Matrix 1) Sampling Directly from Air Max Cell Pressure: 100 mtorr (collisional broadening) Detection Limit: 30 ppb (good, similar to CRDS) 1L Chamber Volume 160 fmol detection Partial Pressure: 3 ntorr 8 minutes 18 OC 36 S (1 : 3.4 million) 2) Gas Processing to Isolate Volatiles Gas Sample: 1 L-atm Total Volatiles less than 100 mtorr Detection Limit: 4 ppq (excellent) For a large number of volatiles, segmented CP-FT offers sub-ppb detection limits in a 10 minute broadband measurement with gas processing.

4(5)-Methylimidadazole Unknown impurity Prediction does not match 5 mtorr total pressure 1/24/16 8

4(5)-Methylimidadazole Identification of unknown A search for low molecular weight, common synthesis solvents Submillimeter wave spectrum of acetic acid V.V. Illyushin, C.P. Endres, F. Lewen, S. Schlemmer, B.J. Drouin, J. Mol. Spec., 2013, 290, 31 5 mtorr total pressure Glacial acetic acid residual solvent identified with pure reference spectrum Melt solid to evaporate solvents and analyze purified crystals 1/24/16 9

Mixture analysis - Solutions EPA VOC mix 6: 2000 µg/ml each component in methanol Analytical standard Table 3.1: VOC mix #6 Components and Properties Chemical Formula Mass (amu) Henry's Law Constant (atm m 3 /mol) Net Dipole Moment S/N 100mg/L Chloromethane ClCH 3 50.49 8.82E-03 b 1.9 e 26,000:1 Chloroethane ClCH 3 CH 3 64.51 1.11E-02 b 2.1 e 6000:1 Bromomethane BrCH 3 94.94 6.24E-03 c 1.8 f 6000:1 Vinyl Chloride ClCHCH 3 62.50 2.70E-02 c 1.5 e 5000:1 Dichlorodifluoromethane Cl 2 F 2 C 120.91 2.25E-01 c 0.5 e 25:1 Trichlorofluoromethane Cl 3 FC 137.37 9.70E-02 d 0.5 e 35:1 Methanol a CH 3 OH 32.04 4.55E-06 c 1.7 e 7000:1 a) Diluent b) J. M. Gosset, Environ. Sci. Technol., 1987, 21, 202 c) USEPA, Industrial Environmental Research Laboratory, Cincinnati, OH, USA, 1982. d) R. D. Nelson Jr., D. R. Lide, A. A. Maryott, NSRDS-NBS10, 1967 e) C. G. Gray, K. E. Gubbins, Theory of molecular fluids. Volume 1: Fundamentals, Clarendon Press, Oxford 1984 1/24/16 10

Mixture analysis - Solutions Unbiased Search Components well resolved Spectral redundancy Isotopic ratios 2 minutes to acquire 1/24/16 11

Linearity and LDL Table 3.4: Detection Limits in Water Broadband Target Mix EPA 524.2 (5min, µg/l ) (10min, µg/l) 60 min (µg/l) Chloromethane 5.0 0.1 0.1 Bromomethane 22 0.8 0.1 Chloroethane 26 0.5 0.1 Vinyl Chloride 42 0.5 0.2 Dichlorodifluoromethane 100,000 1000 0.1 Trifluorochloromethane 100,000 1000 0.1 Regulation Limits for Residual Solvents: 10-1000 µg/l

Conclusions 1) Segmented CP-FT mmw provides high sensitivity broadband detection of volatiles. 2) In favorable cases, headspace detection has a sensitivity that rivals GC/MS. Acknowledgments: This work was support by: NSF I-Corps 1242377 NSF Chemistry 1213200 Brent Harris received an NSF Graduate Fellowship. University of Virginia brightspec.com 1/24/16 13