Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer

A novel, portable, filter fluorometer was developed for the determination of chloroform and TCE at environmentally-relevant levels when coupled with improved sampling techniques and reagents. Reagents selective for the TCE or chloroform convert these toxic species into fluorescent species that can b...

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Main Author: Prayoonpokarach, Sanchai
Other Authors: Ingle, James D. Jr
Language:en_US
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/1957/30845
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spelling ndltd-ORGSU-oai-ir.library.oregonstate.edu-1957-308452012-07-11T03:22:16ZDevelopment and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometerPrayoonpokarach, SanchaiFluorimeterFluorimetryChloroform -- Measurement -- MethodologyChloroform -- Measurement -- InstrumentsTrichloroethylene -- Measurement -- MethodologyTrichloroethylene -- Measurement -- InstrumentsA novel, portable, filter fluorometer was developed for the determination of chloroform and TCE at environmentally-relevant levels when coupled with improved sampling techniques and reagents. Reagents selective for the TCE or chloroform convert these toxic species into fluorescent species that can be monitored. The fluorometer is based on LED excitation light sources, a battery-operated photomultiplier tube as a radiation detector, and appropriate excitation and emission filters. A unique low-power, miniature heater inside the cell holder of the fluorometer provides control of the temperature of the reagent solution above ambient temperature. The fluorometer and the sampling systems, including a miniature air pump, are portable and can be operated from a small lead battery over an entire day. Sparging, passive transfer, and membrane sampling techniques were used to transfer TCE or chloroform from the sample solution as a vapor into the appropriate reagent and to provide preconcentration. The apparatus for membrane sampling was improved to be applicable for continuous sampling of water in the field situations with minimal sample manipulation. Each of the three sampling techniques provides a transfer rate of the analyte of ~1 ng/min per ng/mL of analyte in the sample. The optimized reagent based on 1-(3-pyridylmethyl)urea provides high selectivity to chloroform and the reagent based on isonicotinamide has excellent selectivity to TCE. These two reagents serve as an alternative to the more common pyridine reagent for the determination of chloroform or TCE in water and eliminate the exposure of the user to toxic pyridine vapor. The developed filter fluorometer, the optimized reagents, and the membrane sampling technique provide a detection limit for chloroform of 0.2 and 10 ng/mL, respectively, with the pyridine and 1-(3-pyridylmethyl)urea reagent. The detection limit for TCE is 0.3 ng/mL with the isonicotinamide reagent. For TCE, the detection limit is almost two orders of magnitude better than obtained previously with a fluorometric technique. Analysis times vary from 15 to 30 min.Graduation date: 2003Ingle, James D. Jr2012-07-10T16:27:40Z2012-07-10T16:27:40Z2003-04-242003-04-24Thesis/Dissertationhttp://hdl.handle.net/1957/30845en_US
collection NDLTD
language en_US
sources NDLTD
topic Fluorimeter
Fluorimetry
Chloroform -- Measurement -- Methodology
Chloroform -- Measurement -- Instruments
Trichloroethylene -- Measurement -- Methodology
Trichloroethylene -- Measurement -- Instruments
spellingShingle Fluorimeter
Fluorimetry
Chloroform -- Measurement -- Methodology
Chloroform -- Measurement -- Instruments
Trichloroethylene -- Measurement -- Methodology
Trichloroethylene -- Measurement -- Instruments
Prayoonpokarach, Sanchai
Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
description A novel, portable, filter fluorometer was developed for the determination of chloroform and TCE at environmentally-relevant levels when coupled with improved sampling techniques and reagents. Reagents selective for the TCE or chloroform convert these toxic species into fluorescent species that can be monitored. The fluorometer is based on LED excitation light sources, a battery-operated photomultiplier tube as a radiation detector, and appropriate excitation and emission filters. A unique low-power, miniature heater inside the cell holder of the fluorometer provides control of the temperature of the reagent solution above ambient temperature. The fluorometer and the sampling systems, including a miniature air pump, are portable and can be operated from a small lead battery over an entire day. Sparging, passive transfer, and membrane sampling techniques were used to transfer TCE or chloroform from the sample solution as a vapor into the appropriate reagent and to provide preconcentration. The apparatus for membrane sampling was improved to be applicable for continuous sampling of water in the field situations with minimal sample manipulation. Each of the three sampling techniques provides a transfer rate of the analyte of ~1 ng/min per ng/mL of analyte in the sample. The optimized reagent based on 1-(3-pyridylmethyl)urea provides high selectivity to chloroform and the reagent based on isonicotinamide has excellent selectivity to TCE. These two reagents serve as an alternative to the more common pyridine reagent for the determination of chloroform or TCE in water and eliminate the exposure of the user to toxic pyridine vapor. The developed filter fluorometer, the optimized reagents, and the membrane sampling technique provide a detection limit for chloroform of 0.2 and 10 ng/mL, respectively, with the pyridine and 1-(3-pyridylmethyl)urea reagent. The detection limit for TCE is 0.3 ng/mL with the isonicotinamide reagent. For TCE, the detection limit is almost two orders of magnitude better than obtained previously with a fluorometric technique. Analysis times vary from 15 to 30 min. === Graduation date: 2003
author2 Ingle, James D. Jr
author_facet Ingle, James D. Jr
Prayoonpokarach, Sanchai
author Prayoonpokarach, Sanchai
author_sort Prayoonpokarach, Sanchai
title Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
title_short Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
title_full Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
title_fullStr Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
title_full_unstemmed Development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and TCE in water with a portable fluorometer
title_sort development and evaluation of sampling techniques, instrumentation, and pyridine derivative reagents for fluorometric determination of chloroform and tce in water with a portable fluorometer
publishDate 2012
url http://hdl.handle.net/1957/30845
work_keys_str_mv AT prayoonpokarachsanchai developmentandevaluationofsamplingtechniquesinstrumentationandpyridinederivativereagentsforfluorometricdeterminationofchloroformandtceinwaterwithaportablefluorometer
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