7
Applications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic and anthropogenic sources. Detection of such VOC is critical in environmental, industrial, medical, and military applications. Despite their importance, real-time detection of VOCs at the sub-parts-per-billion level in the field remains elusive. The current, gold-standard method for VOC measurements is EPA Method TO-15 [1], which involves collecting discrete air samples in a passivated, evacuated steel canister (e.g. Summa canister) and then measuring these samples at a laboratory using gas chromatography coupled to mass spectrometry (GC/MS). This system is highly sensitive and extensively vetted; however, sampling is labor-intensive and sparse, measurements are costly, and the system is not amenable to reactive species that cannot be readily captured and transported. In order to address these limitations, researchers have developed several field-deployable VOC analyzers, including portable GC/MS, field- portable mass spectrometry, and ion mobility spectrometry. These systems are costly to operate, require frequent calibration, are insufficiently sensitive, and utilize extensive consumable gases. Moreover, since many VOC analyzers require high vacuum, their robustness is limited and skilled operators are needed for field deployments. Technology In order to address these limitations, ABB has developed the VOC Analyzer (model 909-0048), a field- deployable, sensitive analyzer based on its patented mid-infrared incoherent cavity rindown spectrometry (mid-IR iCRDS). Light in the mid-infrared (5 – 12 microns) is absorbed at select wavelength by particular VOCs. By examining the absorbed frequencies in this “fingerprint” region and the magnitude of the absorption, the specific VOC and its concentration can be determined. At low VOC concentrations, the amount of mid-infrared light absorption is very small and conventional mid-infrared absorption spectrometry cannot readily discern trace VOC levels. ABB’s solution, the VOC Analyzer, shown schematically in Figure 1, exploits recently developed External Cavity Quantum Cascade Lasers (EC-QCLs) and cavity ringdown spectroscopy (CRDS) to provide simultaneous and selective detection of multiple VOCs with high sensitivity [2,3]. A widely tunable external cavity quantum cascade laser is coupled into a high-finesse optical cavity in an off-axis fashion [4]. The laser is operated in pulsed mode and can tune over a wide spectral range (e.g. 2 – 3 microns) in the mid-infrared. The particular spectral range can be customized to address the application, with the 8 – 10 micron range often used for VOC characterization. The high-finesse optical cavity consists of a Teflon-coated, stainless steel gas cell bounded by two high reflectivity mirrors (R > 99.9 %). Laser light transmitting through the cavity is focused onto an amplified HgCdTe (MCT) photodetector with fast response.

Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

  • Upload
    voque

  • View
    224

  • Download
    1

Embed Size (px)

Citation preview

Page 1: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Applications Note VOC Analyzer

Introduction Volatileorganiccompounds(VOCs)areubiquitousfrombothbiogenicandanthropogenicsources.DetectionofsuchVOCiscriticalinenvironmental,industrial,medical,andmilitaryapplications.Despitetheirimportance,real-timedetectionofVOCsatthesub-parts-per-billionlevelinthefieldremainselusive.Thecurrent,gold-standardmethodforVOCmeasurementsisEPAMethodTO-15[1],whichinvolvescollectingdiscreteairsamplesinapassivated,evacuatedsteelcanister(e.g.Summacanister)andthenmeasuringthesesamplesatalaboratoryusinggaschromatographycoupledtomassspectrometry(GC/MS).Thissystemishighlysensitiveandextensivelyvetted;however,samplingislabor-intensiveandsparse,measurementsarecostly,andthesystemisnotamenabletoreactivespeciesthatcannotbereadilycapturedandtransported.Inordertoaddresstheselimitations,researchershavedevelopedseveralfield-deployableVOCanalyzers,includingportableGC/MS,field-portablemassspectrometry,andionmobilityspectrometry.Thesesystemsarecostlytooperate,requirefrequentcalibration,areinsufficientlysensitive,andutilizeextensiveconsumablegases.Moreover,sincemanyVOCanalyzersrequirehighvacuum,theirrobustnessislimitedandskilledoperatorsareneededforfielddeployments.

Technology Inordertoaddresstheselimitations,ABBhasdevelopedtheVOCAnalyzer(model909-0048),afield-deployable,sensitiveanalyzerbasedonitspatentedmid-infraredincoherentcavityrindownspectrometry(mid-IRiCRDS).Lightinthemid-infrared(5–12microns)isabsorbedatselectwavelengthbyparticularVOCs.Byexaminingtheabsorbedfrequenciesinthis“fingerprint”regionandthemagnitudeoftheabsorption,thespecificVOCanditsconcentrationcanbedetermined.AtlowVOCconcentrations,theamountofmid-infraredlightabsorptionisverysmallandconventionalmid-infraredabsorptionspectrometrycannotreadilydiscerntraceVOClevels.

ABB’ssolution,theVOCAnalyzer,shownschematicallyinFigure1,exploitsrecentlydevelopedExternalCavityQuantumCascadeLasers(EC-QCLs)andcavityringdownspectroscopy(CRDS)toprovidesimultaneousandselectivedetectionofmultipleVOCswithhighsensitivity[2,3].Awidelytunableexternalcavityquantumcascadelaseriscoupledintoahigh-finesseopticalcavityinanoff-axisfashion[4].Thelaserisoperatedinpulsedmodeandcantuneoverawidespectralrange(e.g.2–3microns)inthemid-infrared.Theparticularspectralrangecanbecustomizedtoaddresstheapplication,withthe8–10micronrangeoftenusedforVOCcharacterization.Thehigh-finesseopticalcavityconsistsofaTeflon-coated,stainlesssteelgascellboundedbytwohighreflectivitymirrors(R>99.9%).LaserlighttransmittingthroughthecavityisfocusedontoanamplifiedHgCdTe(MCT)photodetectorwithfastresponse.

Page 2: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Figure1:(left)Schematicofthepatented,widelytunablemid-infrarediCRDSsystemthatisutilizedin(right)theABBVOCAnalyzer.

Eachlaserpulsecreatesacavityringdowneventonthedetector.Manysuchevents(e.g.1000–10000ringdowns)areaveragedtogether,andtheresultantexponentialdecayisfittoyieldtheopticallossofthecavity.TheopticallossataspecificwavelengthismeasuredwhenthecavitycontainsbothVOC-freeairandthesamplegas.Thedifferencebetweenthesevaluesprovidestheopticalabsorptionofthegassampleatagivenlaserfrequency.Thelaseristhensteppedthroughitswavelengthtuningrangetocreateacompleteabsorptionspectrumofmeasuredcavityopticallossduetoabsorptionversuswavelength.Eachspectrumtakesapproximately5–15minutestoobtain,dependingonthewavelengthrangeandstepsize.

Theminimumdetectableabsorptionlossislimitedbythedetectornoiseonthemeasuredringdowntrace.Inordertoreducethisnoise,theeffectivelaserpowercoupledinthecavitymustbeincreased.Thelaserpowercoupledintothecavitywasincreasedbyusingare-injectionmirrortorepeatedlyre-injectthelaserbeamreflectedoffthefrontmirrorintothecavity.Thisprocesssignificantlyimprovesthemeasurementsignal-to-noiseratio.

ThespectrumofVOC-free,dryairisthensubtractedfromthespectraofthegassamplestodeterminetheabsorptionspectrumofthesamplegas.Thismeasuredabsorptionspectrumisfittoasumofabsorptionspectraofdiscretecompoundsviaalinearleast-squaresfit.Theindividualspeciesabsorptionspectraareeitherdirectlymeasuredortakenfrompublisheddatabases(e.g.theNorthwestInfraredspectrallibraryofquantitativeinfraredabsorptionspectrafromthePacificNorthwestNationalLaboratory).Asamplemeasuredspectraof97.5ppbtetrachloroethylene(PCE)and88.7ppbtrichloroethylene(TCE)inambientairandtheassociatedfitsareshowninFigure2.Theformeralsoincludesopticalabsorptionbetween940–1000cm-1duetoFreon-134ausedinthechemicaldustersinthelaboratory.

Page 3: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Figure2: Spectraoftetrachloroethylene(PCE)andtrichloroethylene(TCE)measuredbytheABBVOCAnalyzer.TheanalyzeriscapableofdetectingPCEandTCEto<1ppb.ThePCEspectrawascontaminatedwithFreon-134afoundintheambientlaboratoryair.

Advantages of ABB VOC Analyzer TheABBVOCanalyzerhasseveraladvantagesoverconventionaltechnologiesincluding:

Field-PortableDeploymentTheABBinstrumentishighlyrobustandcanbereadilyfield-deployedinawidearrayofenvironmentalconditions.Turnkeyoperationassuresthatitdoesnotrequireatrainedoperatororonsitesupport.TheanalyzerisalsoequippedwithremoteaccesstoallowforinstrumentverificationanddataaccessthroughanInternetconnection.UltrasensitiveDetectionABB’spatented,cavity-enhancedtechnologyenablesthesystemtomeasuresub-ppblevelsofseveralkeyVOCs,includingtrichloroethylene,tetrachloroethylene,refrigerants,andothercriticalenvironmentalhazards.Theanalyzerdetectionlimitcanbefurtherenhancedbyemployingapre-concentrationsystem,ifnecessary.Fast,ContinuousMeasurementsTheinstrumentprovidesaVOCmeasurementevery5–15minutes.Unlikeconventionalflaskmethods,whicharetypicallytakenatverylong,discreteintervals(e.g.,monthly),theanalyzerprovidescontinuousmeasurements,allowingforquantificationoftransienteventslikediurnalcycling,pollutionmigration,andremediationefforts.

NoConsumables

PeriodicmeasurementsofVOC-free,dryaircanbeprovidedbypassingambientairthroughaNafiondryercoupledtoaVOCscrubber.Thisconfigurationobviatestheneedforanyconsumables,extendingfielddeployments,reducingserviceneeds,andloweringcostofownership.

Page 4: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Cost-Effective

TheABBVOCAnalyzerissubstantiallymoreeconomicalthancompetinganalyzersthatutilizemassspectrometry.Additionally,theinstrument’srobustnessandlackofconsumablesresultinamarkedlylowercostofownership.

Applications TheABBVOCAnalyzercanbeusedinawidevarietyofapplications.ThesystemcandetectmanyenvironmentalpollutantsincludingBTEXcompounds(benzene,toluene,ethylbenzene,andxylenes),PCE,andTCE.Thismakesitidealformonitoringpollutedarea,includingEPASuperfundandDOEremediationsites.Likewise,theinstrumentcanbeusedtodetecthighlytoxicspecies,includingmanychemicalweapons,forpersonnelsafety.VOCdetectionhasalsobeenimplicatedinnon-invasivemedicaldiagnosticsandisanexcitingprospectforbreathmonitoring.Thesystemiscapableofmeasuringhundredsofcompoundsthatabsorblightinthemid-infraredandABBcantailorasolutiontomeetmanycustomerneeds.

Field Deployment 1 – Superfund Site Monitoring TheMiddlefield-Ellis-Whisman(MEW)SuperfundStudyAreausedtohouseseveralindustries,includingsemiconductormanufacturing,drycleaning,andmetalfinishingfacilities.Chemicalsfromtheseindustrieswereleachedintothesoilandgroundwater,resultinginsignificantTCEandPCEcontaminationlevels.

TheanalyzerwasdeployedinBuilding10oftheNASAAmesResearchCenterandsampledalternativelyfrom2locationsinthebuilding:thebreathingzoneandtunneltube.Forcedaircirculationwasusedinthetunneltubeaspartofremediationefforttopreventthebuildupofairtoxins.Thesampleinletwascycledbetweenthetunnelair,breathingzoneair,andzeroairwithaspectrummeasurementevery20minutes.MeasurementsofPCEandTCEversustimeforbothdeploymentsareshowninFigure3.

Withactiveremediation,themeasurementsshowtypicalambientPCEandTCElevelsof<50ppbinthetunnelzonethatreduceto<2ppbinthebreathingzone.Whentheremediationeffortsweredeactivated,thelevelsinthebreathingzoneincreasedto75–150ppb,withlittletonocorrespondingincreaseinthebreathingzone.Moreover,thereal-timemeasurementsdemonstratedthatthebuild-uptimeconstantfortheairtoxinswasabout14hours,allowingresearcherstomeasurevaporintrusionratesandobtainanimmediategaugeofremediationefficacy.ThemeasurementswerecomparedtodiscretesamplestakenaccordingtotheTO-15protocol,andfoundtoagreetowithinthespreadofthediscretesampling.

Page 5: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Figure3: MeasurementsoftetrachloroethyleneandtrichloroethyleneattheMiddlefield-Ellis-WhismanSuperfundsite(yosemite.epa.gov/r9/sfund/r9sfdocw.nsf/ViewByEPAID/CAD982463812).Thecontinuousmeasurements,whichwereinexcellentagreementwithconcurrentEPAdata,showdiurnalcyclingandvaporintrusiondynamics.

Theinstrumentreadilyresolvedsub-ppbchangesinPCEandTCElevelsinboththetunnelandbreathingzones,showingcleardiurnalcontaminantcycling.Increasedexposureswereobservedwhenthetunnelwasopened.SincetheABBVOCAnalyzersimultaneouslydetectsmanyVOCs,italsodetectedanunexpecteddimethyletherleakduringthedeploymentperiod.

Field Deployment 2 – Chemical Weapon Simulants TheABBVOCAnalyzerhasalsobeenusedtodetectavarietyoftoxicgasesandhazards.Forexample,theinstrumenthasbeendeployedataDoDtestfacilitytomeasurechemicalweapons.Preliminarymeasurementsoftracelevelsofdimethylmethylphosphonate(DMMP),asarinsimulant,areshowninFigure4.

Page 6: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Figure4: Spectraofdimethylmethylphosphonate(DMMP),asarinsimulant,measuredbytheABBVOCAnalyzeratsingle-digitppm-levelconcentrations.

ThemeasurementssuggestaDMMPdetectionlimitof150parts-per-trillion.Manychemicalweapons(e.g.sarin)havesimilarmid-infraredabsorptioncross-sectionsandasimilardetectionlimitisanticipatedforsuchweapons.Notethatthisdetectionlimitisfarbelowthemaximumsarinexposurelimitof3–6ppb,suggestingthatfalsepositivesorfalsenegativeswouldoccurveryrarely(e.g.>3years)atanalarmlimitof1ppb.FurthertestinganddeploymentiscurrentunderwaywithDoDresearchers.

Field Deployment 3 – Bacterial Off-Gas ABBscientistshaveworkedwithStanfordUniversityresearcherstoemploytheABBVOCAnalyzerforavarietyofbacterialandmedicalbreathdiagnostics.Onesuchtestinvolvedmeasuringbacterialoff-gasofseveraldifferentstrains.TheinstrumentwasconnectedtoabacterialgrowthchamberinarecirculatingfashionasshowninFigure5.

Page 7: Applications Note VOC Analyzer Introduction Note - ABB VOC Analyzer.pdfApplications Note VOC Analyzer Introduction Volatile organic compounds (VOCs) are ubiquitous from both biogenic

Figure5:(left)ExperimentsetupinwhichtheABBVOCAnalyzer(iCRDSCell)wasconnectedtoabacterialgrowthchamberingasrecirculationmode.

Figure6:(right)Spectraofoff-gasfromvariousbacterialstrainsmeasuredbytheABBVOCanalyzer.

Themid-infraredabsorptionspectraofseveralbacterialstrainsareshowninFigure6.Thestrainsclearlyexhibitsomesimilaroff-gaschemicalcomponents,butdiffersubstantiallyintheratiosandamountsofsuchchemicals.Thesedifferencescanbeexploitedtousethebacterialoff-gastospeciateculturetypes.

References 1. McClenny,W.A.,andM.W.Holdren."CompendiumMethodTO-15,DeterminationofVolatileOrganic

Compounds(VOCs)inAirCollectedInSpecially-PreparedCanistersandAnalyzedbyGasChromatography."MassSpectrometry(GC/MS).USEPA.ReportnrEPA/625/R-96/010b(1999):1-67.

2. Leen,J.B.,Gupta,M.,andD.S.Baer.“DetectingExplosiveandChemicalWeaponsUsingCavity-EnhancedAbsorptionSpectrometry.”Chapter11inPellegrino,PaulM.,EllenL.Holthoff,andMikellaE.Farrell,eds.Laser-BasedOpticalDetectionofExplosives.Vol.40.CRCPress,2015.

3. Leen,J.Brian,andAnthonyO’Keefe."Opticalre-injectionincavity-enhancedabsorptionspectroscopy."ReviewofScientificInstruments85,no.9(2014):093101.

4. Baer,D.S.,Paul,J.B.,Gupta,M.,andA.O’Keefe,“Sensitiveabsorptionmeasurementsinthenear-infraredregionusingoff-axisintegratedcavityoutputspectroscopy,”Appl.Phys.B.75(2002)261.