SlideShare uma empresa Scribd logo
1 de 13
CLEO/QELS
                                                                           May 9, 2012




 In-Line Reference Cell for Real-Time Calibration of
          Laser Absorption Spectrometers


  Clinton J. Smith1, Amir Khan2, Mark A. Zondlo2, and Gerard Wysocki1




1. Dept. of Electrical Engineering, Princeton University, Princeton, NJ 08544
2. Dept. of Civil and Environmental Engineering, Princeton University, Princeton, NJ 08544



pulse.princeton.edu
Project Goal & Outline


The project goal:
• Develop and implement a technique for real-time calibration of
  portable trace-gas sensors
     Use modeling of wavelength modulation spectroscopic spectra
     Differentiate between sample and reference based on physical
                                                      http://www.coas.oregonstate.edu/research/po/satellite.gif

       parameters of the gas

Outline
• Key challenges to long-term sensor measurement stability
     Immunity to noise and long term drift
• Conventional calibration solutions are not compatible with the need
  for low-power, compact sensors
• Overview of the permanent in-line reference cell implementation
• Simulations of the technique
• Experimental results
• Conclusions and Future directions

                                                                                                                  2
Measurement Noise & Drift Reduce Sensitivity


Measurement drift can be induced
by many factors:

• Electronics instability
• Environmental dependence              Allan Deviation
• Opto-mechanical instability
       Shear, torque, compressive,
        stress
       Beam steering
• Laser & Detector Drift
       Optical power fluctuation
•   Fabry-Perot Fringing
                                      Averaging Time (sec)



                  Recurring Calibration Required

                                                               3
Traditional Calibration Vs. In-Line Reference Cell
                                Multi-Pass Gas Cell
                         I0
•    Split off beam                             IDet,1              •   Use single cell                      Ambient
•    Use separate                                     Detector      •   Cycle between     Ref. Gas
                                                                                                     Inlet     Outlet
     reference cell                                                     reference and
                                     Ref. Cell      IDet,2                                I0                       IDet
                                                                        sample gases
                                nRef, LRef , PRef , σRef Detector                                                Detector



                      Separate reference cell signal and ambient signal
                              using gas parameters and WMS




    • Permanently insert a low-pressure reference cell in the beam path
           Contains the same gas as sampled
    •   Reference beam experiences the same fringes as the ambient/sampling beam
    •   No complex gas handling required
    •   Only single detector is needed

                                                                                                                          4
Simultaneous Detection of Sample and Reference


                           IDet Detector    2f ambient   6f reference


                                                                   2f
I0
                            IDet Detector




 • Simultaneous 2f & 6f demodulation
                           IDet Detector

 • Selectively suppress ambient sample or low pressure reference signal
 • Real-time, in-line calibration is possible                       6f
I0
                            IDet Detector




                                                                          5
Key WMS Parameters
                                              Laser frequency change
                                                  Amplitude = β
Key characteristics of Wavelength                                          Absorption Line Shape

Modulation Spectroscopy (WMS)                                             νHWHM
                                                                  Laser      Detector

• Modulate laser    wavelength at a
    high frequency (f) and with
    modulation depth/amplitude (β)                                 1f
       Avoids 1/f noise
•   Demodulate and filter at
    multiples of f
       Low-noise, “derivative-like”
         spectral envelopes                                        2f
• WMS Signal is proportional to
    laser power and depends on
    3 key parameters:
       Line-width, νHWHM (cm-1)                                  3f
       Modulation depth, β (cm-1)       m
       Harmonic (e.g., 1f, 2f, 3f, …)         HWHM


                                                                                                   6
Optimizing 2f WMS Detection



                                      S amb
                                      S ref
                  Ambient Pressure




• 1% CO2 Absorbance in the reference cell
• Pressure affects the νHWHM of the target line
• Simulate 2f spectrum for different reference cell pressures and β
       Select reference cell pressure that minimizes “crosstalk”
       Samb/Sref  max.
•   Both higher and lower pressures in reference cell can provide better signal
    contrast

                                                                                  7
Experimental Validation of Samb/Sref vs. Pressure for 2f




• Experimentally varied the modulation index for pressures from 50 to 1000 Torr
• Line-center value used for comparison
• Good agreement between experiment and simulation
• Reference cell signal into ambient signal cross-talk of ~13%

                                                                                  8
Optimizing 6f WMS Detection



                                            S ref
                   Ambient Pressure        S amb




• 1% CO2 Absorbance in the reference cell
• Simulate 6f spectrum for different reference cell pressures and β
      Select reference cell pressure that minimizes “crosstalk”
      Higher Sref/Samb ratio at 6f can be achieved than Samb/Sref at 2f (16 vs. 10)
      Optimum pressure: 100-150 Torr
•   Only low pressure and low modulation depth give higher ratio


                                                                                       9
Experimental Validation of Sref/Samb vs. Pressure for 6f




• Experimentally varied the modulation index for pressures from 50 to 1000 Torr
• Line-center value used for comparison
• Good agreement between experiment and simulation
• Ambient signal into reference cell signal cross-talk of ~4%
     Ambient signal is at or below the observed noise floor


                                                                                  10
Conclusion and Future Work

• A novel in-line calibration technique has been presented
       Single detector is used
       Sample and reference signals experience the same parasitic optical fringes
•   Reference cell contains the same gas as the sampled gas
•   Physical properties of the gas in conjunction with WMS are used to distinguish
    the reference from the sample

Future Improvements and Potential Applications
• Further investigate the degree to which crosstalk reduces precision
• Perform long-term measurements and drift analyses
• Further enhancement of the signal and reference contrast
       Investigate full spectral fitting
•   Potential Applications
       Use with gases that do not require ultra-high precision (e.g. ambient NH3 requires
        ~5% precision)
       Use with gases with low variability (e.g., 4% cross-talk with a sample of 20%
        variability yields 0.8% precision)


                                                                                        11
Acknowledgements

This work was sponsored in part by:

The National Science Foundation’s MIRTHE Engineering Research Center

An NSF MRI award #0723190 for the openPHOTONS systems

An innovation award from The Keller Center for Innovation in Engineering
Education

National Science Foundation Grant No. 0903661 “Nanotechnology for Clean
Energy IGERT”




                                                                           12
Vary Linewidth, Mod. Index, & Detection Order

Optimal contrast:                             N=2 (mod = 1 * LWamb)              Simulation
• Ambient                         0.018
    • Samb>>Sref                                                                       N=2 (mod = 5 * LWamb)


• Reference                       0.016

    • Sref>>Samb                  0.014
                     Linecenter
Simulation                        0.012

  Parameters:




                                                                            ambient
• 1% CO2                           0.01

  Absorbance                      0.008
• Variables                                                 N=6 (mod = 5 * LWamb)

    • Pressure                    0.006

    • Modulation                  0.004
      Depth
    • Harmonic                    0.002
                                                                                       N=6 (mod = 1 * LWamb)
                                     0
                                          0        200       400      600             800     1000      1200   1400   1600
                                                           Reference Cell Pressure (Torr)
                                                                                                                      13

Mais conteúdo relacionado

Mais procurados

Long-term stability of an SiGeHBT-based active cold load.pdf
Long-term stability of an SiGeHBT-based active cold load.pdfLong-term stability of an SiGeHBT-based active cold load.pdf
Long-term stability of an SiGeHBT-based active cold load.pdf
grssieee
 
SiriusT3 Brochure
SiriusT3 BrochureSiriusT3 Brochure
SiriusT3 Brochure
Jon Mole
 
Oscilloscope Fundamentals, Hands-On Course at EELive 2014
Oscilloscope Fundamentals, Hands-On Course at EELive 2014Oscilloscope Fundamentals, Hands-On Course at EELive 2014
Oscilloscope Fundamentals, Hands-On Course at EELive 2014
Rohde & Schwarz North America
 
Updated! Debugging EMI Problems Using a Digital Oscilloscope
Updated! Debugging EMI Problems Using a Digital OscilloscopeUpdated! Debugging EMI Problems Using a Digital Oscilloscope
Updated! Debugging EMI Problems Using a Digital Oscilloscope
Rohde & Schwarz North America
 
Testo 316 4 datasheet 2012
Testo 316 4 datasheet 2012Testo 316 4 datasheet 2012
Testo 316 4 datasheet 2012
Testo Limited
 

Mais procurados (13)

Long-term stability of an SiGeHBT-based active cold load.pdf
Long-term stability of an SiGeHBT-based active cold load.pdfLong-term stability of an SiGeHBT-based active cold load.pdf
Long-term stability of an SiGeHBT-based active cold load.pdf
 
Stability under Large-Signal Conditions Presentation
Stability under Large-Signal Conditions PresentationStability under Large-Signal Conditions Presentation
Stability under Large-Signal Conditions Presentation
 
SiriusT3 Brochure
SiriusT3 BrochureSiriusT3 Brochure
SiriusT3 Brochure
 
Principle of FMCW radar
Principle of FMCW radarPrinciple of FMCW radar
Principle of FMCW radar
 
Mba top schoil in india
Mba top schoil in indiaMba top schoil in india
Mba top schoil in india
 
Nondestructive Testing at NASA WSTF
Nondestructive Testing at NASA WSTFNondestructive Testing at NASA WSTF
Nondestructive Testing at NASA WSTF
 
SiriusT3 Brochure
SiriusT3 BrochureSiriusT3 Brochure
SiriusT3 Brochure
 
Oscilloscope Fundamentals, Hands-On Course at EELive 2014
Oscilloscope Fundamentals, Hands-On Course at EELive 2014Oscilloscope Fundamentals, Hands-On Course at EELive 2014
Oscilloscope Fundamentals, Hands-On Course at EELive 2014
 
Webinar Slides: Measurements and Analysis for Switched-mode Power Designs
Webinar Slides: Measurements and Analysis for Switched-mode Power DesignsWebinar Slides: Measurements and Analysis for Switched-mode Power Designs
Webinar Slides: Measurements and Analysis for Switched-mode Power Designs
 
Measuring Jitter Using Phase Noise Techniques
Measuring Jitter Using Phase Noise TechniquesMeasuring Jitter Using Phase Noise Techniques
Measuring Jitter Using Phase Noise Techniques
 
Updated! Debugging EMI Problems Using a Digital Oscilloscope
Updated! Debugging EMI Problems Using a Digital OscilloscopeUpdated! Debugging EMI Problems Using a Digital Oscilloscope
Updated! Debugging EMI Problems Using a Digital Oscilloscope
 
Coffee can radar
Coffee can radarCoffee can radar
Coffee can radar
 
Testo 316 4 datasheet 2012
Testo 316 4 datasheet 2012Testo 316 4 datasheet 2012
Testo 316 4 datasheet 2012
 

Destaque (7)

PosterFairFeb2015
PosterFairFeb2015PosterFairFeb2015
PosterFairFeb2015
 
Cover letter phang
Cover letter   phangCover letter   phang
Cover letter phang
 
Jennifer lopez
Jennifer lopezJennifer lopez
Jennifer lopez
 
Simple Steps to Improve Your Maintenance Program
Simple Steps to Improve Your Maintenance ProgramSimple Steps to Improve Your Maintenance Program
Simple Steps to Improve Your Maintenance Program
 
Co2 Sensor Temp Stability Analysis
Co2 Sensor Temp Stability AnalysisCo2 Sensor Temp Stability Analysis
Co2 Sensor Temp Stability Analysis
 
Biomedical Optical Sensor
Biomedical Optical SensorBiomedical Optical Sensor
Biomedical Optical Sensor
 
ColeNIDA_7
ColeNIDA_7ColeNIDA_7
ColeNIDA_7
 

Semelhante a Inline Reference Cell for Reatime Calibration of Laser Absorption Spectrometers

ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNAZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
NMDG NV
 
Analog to-digital conversion, 2e
Analog to-digital conversion, 2eAnalog to-digital conversion, 2e
Analog to-digital conversion, 2e
Springer
 
PhaseRequirements_v1_2.pdf
PhaseRequirements_v1_2.pdfPhaseRequirements_v1_2.pdf
PhaseRequirements_v1_2.pdf
grssieee
 

Semelhante a Inline Reference Cell for Reatime Calibration of Laser Absorption Spectrometers (20)

A rotational reference cell for high-accuracy real-time spectroscopic trace-g...
A rotational reference cell for high-accuracy real-time spectroscopic trace-g...A rotational reference cell for high-accuracy real-time spectroscopic trace-g...
A rotational reference cell for high-accuracy real-time spectroscopic trace-g...
 
Ei unit 2
Ei unit 2Ei unit 2
Ei unit 2
 
A Frequency-based RF Partial Discharge Detector for Low-power Wireless Sens...
A Frequency-based  RF Partial Discharge Detector  for Low-power Wireless Sens...A Frequency-based  RF Partial Discharge Detector  for Low-power Wireless Sens...
A Frequency-based RF Partial Discharge Detector for Low-power Wireless Sens...
 
Syllabus
SyllabusSyllabus
Syllabus
 
Instrumentation: Liquid and Gas Sensing - VE2013
Instrumentation: Liquid and Gas Sensing - VE2013Instrumentation: Liquid and Gas Sensing - VE2013
Instrumentation: Liquid and Gas Sensing - VE2013
 
Surface Acoustic Wave (SAW) Wireless Passive RF Sensor Systems
Surface Acoustic Wave (SAW) Wireless Passive RF Sensor SystemsSurface Acoustic Wave (SAW) Wireless Passive RF Sensor Systems
Surface Acoustic Wave (SAW) Wireless Passive RF Sensor Systems
 
ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNAZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
ZVxPlus Product Note: Nonlinear Extension Kit for R&S VNA
 
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
 
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
Expanding Your High Performance Liquid Chromatography and Ultra High Performa...
 
SYM Technology RF Spectrum Performance Analysis
SYM Technology RF Spectrum Performance AnalysisSYM Technology RF Spectrum Performance Analysis
SYM Technology RF Spectrum Performance Analysis
 
Low-power Portable Laser Spectroscopic Sensors for Atmospheric CO2 Monitoring
Low-power Portable Laser Spectroscopic Sensors for Atmospheric CO2 MonitoringLow-power Portable Laser Spectroscopic Sensors for Atmospheric CO2 Monitoring
Low-power Portable Laser Spectroscopic Sensors for Atmospheric CO2 Monitoring
 
ICP-MS
ICP-MSICP-MS
ICP-MS
 
A Solar-powered, TDMA Distributed Wireless Network for Trace-gas Monitoring
A Solar-powered, TDMA Distributed Wireless Network for Trace-gas MonitoringA Solar-powered, TDMA Distributed Wireless Network for Trace-gas Monitoring
A Solar-powered, TDMA Distributed Wireless Network for Trace-gas Monitoring
 
Lc nmr
Lc nmrLc nmr
Lc nmr
 
Analog to-digital conversion, 2e
Analog to-digital conversion, 2eAnalog to-digital conversion, 2e
Analog to-digital conversion, 2e
 
J Fernandes Hst 2009
J Fernandes Hst 2009J Fernandes Hst 2009
J Fernandes Hst 2009
 
time based ranging via uwb radios
time based ranging via uwb radiostime based ranging via uwb radios
time based ranging via uwb radios
 
RESOLUTION AND APPLICATIONS OF HPLC
RESOLUTION AND APPLICATIONS OF HPLCRESOLUTION AND APPLICATIONS OF HPLC
RESOLUTION AND APPLICATIONS OF HPLC
 
PhaseRequirements_v1_2.pdf
PhaseRequirements_v1_2.pdfPhaseRequirements_v1_2.pdf
PhaseRequirements_v1_2.pdf
 
CellExtender® Antenna System Design Guidelines
CellExtender® Antenna System Design GuidelinesCellExtender® Antenna System Design Guidelines
CellExtender® Antenna System Design Guidelines
 

Mais de Clinton Smith

High-accuracy laser spectrometers for wireless trace-gas sensor networks
High-accuracy laser spectrometers for wireless trace-gas sensor networksHigh-accuracy laser spectrometers for wireless trace-gas sensor networks
High-accuracy laser spectrometers for wireless trace-gas sensor networks
Clinton Smith
 
Two-node Co2 sensor network
Two-node Co2 sensor networkTwo-node Co2 sensor network
Two-node Co2 sensor network
Clinton Smith
 

Mais de Clinton Smith (8)

Laser-Based Standoff Methane Sensors for Enhancing Coal Miner Safety
Laser-Based Standoff Methane Sensors for Enhancing Coal Miner SafetyLaser-Based Standoff Methane Sensors for Enhancing Coal Miner Safety
Laser-Based Standoff Methane Sensors for Enhancing Coal Miner Safety
 
Compact Hydrogen Peroxide Sensor for Sterilization Cycle Monitoring
Compact Hydrogen Peroxide Sensor for Sterilization Cycle MonitoringCompact Hydrogen Peroxide Sensor for Sterilization Cycle Monitoring
Compact Hydrogen Peroxide Sensor for Sterilization Cycle Monitoring
 
High-accuracy laser spectrometers for wireless trace-gas sensor networks
High-accuracy laser spectrometers for wireless trace-gas sensor networksHigh-accuracy laser spectrometers for wireless trace-gas sensor networks
High-accuracy laser spectrometers for wireless trace-gas sensor networks
 
Two-node Co2 sensor network
Two-node Co2 sensor networkTwo-node Co2 sensor network
Two-node Co2 sensor network
 
Current Tuning Self Osc Vcsel
Current Tuning Self Osc Vcsel Current Tuning Self Osc Vcsel
Current Tuning Self Osc Vcsel
 
Three-node Co2 Sensor Network
Three-node Co2 Sensor Network Three-node Co2 Sensor Network
Three-node Co2 Sensor Network
 
Low-power Portable Laser Spectroscopic Sensor for Atmospheric CO2 Monitoring
Low-power Portable Laser Spectroscopic Sensor for Atmospheric CO2 MonitoringLow-power Portable Laser Spectroscopic Sensor for Atmospheric CO2 Monitoring
Low-power Portable Laser Spectroscopic Sensor for Atmospheric CO2 Monitoring
 
Vcsel Clock.Smith 8.Chou 1
Vcsel Clock.Smith 8.Chou 1Vcsel Clock.Smith 8.Chou 1
Vcsel Clock.Smith 8.Chou 1
 

Último

Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
kauryashika82
 
1029 - Danh muc Sach Giao Khoa 10 . pdf
1029 -  Danh muc Sach Giao Khoa 10 . pdf1029 -  Danh muc Sach Giao Khoa 10 . pdf
1029 - Danh muc Sach Giao Khoa 10 . pdf
QucHHunhnh
 
Spellings Wk 3 English CAPS CARES Please Practise
Spellings Wk 3 English CAPS CARES Please PractiseSpellings Wk 3 English CAPS CARES Please Practise
Spellings Wk 3 English CAPS CARES Please Practise
AnaAcapella
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
QucHHunhnh
 
The basics of sentences session 3pptx.pptx
The basics of sentences session 3pptx.pptxThe basics of sentences session 3pptx.pptx
The basics of sentences session 3pptx.pptx
heathfieldcps1
 

Último (20)

Dyslexia AI Workshop for Slideshare.pptx
Dyslexia AI Workshop for Slideshare.pptxDyslexia AI Workshop for Slideshare.pptx
Dyslexia AI Workshop for Slideshare.pptx
 
Magic bus Group work1and 2 (Team 3).pptx
Magic bus Group work1and 2 (Team 3).pptxMagic bus Group work1and 2 (Team 3).pptx
Magic bus Group work1and 2 (Team 3).pptx
 
Making communications land - Are they received and understood as intended? we...
Making communications land - Are they received and understood as intended? we...Making communications land - Are they received and understood as intended? we...
Making communications land - Are they received and understood as intended? we...
 
ICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptxICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptx
 
Understanding Accommodations and Modifications
Understanding  Accommodations and ModificationsUnderstanding  Accommodations and Modifications
Understanding Accommodations and Modifications
 
On National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan FellowsOn National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan Fellows
 
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
 
Unit-V; Pricing (Pharma Marketing Management).pptx
Unit-V; Pricing (Pharma Marketing Management).pptxUnit-V; Pricing (Pharma Marketing Management).pptx
Unit-V; Pricing (Pharma Marketing Management).pptx
 
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
 
Accessible Digital Futures project (20/03/2024)
Accessible Digital Futures project (20/03/2024)Accessible Digital Futures project (20/03/2024)
Accessible Digital Futures project (20/03/2024)
 
1029 - Danh muc Sach Giao Khoa 10 . pdf
1029 -  Danh muc Sach Giao Khoa 10 . pdf1029 -  Danh muc Sach Giao Khoa 10 . pdf
1029 - Danh muc Sach Giao Khoa 10 . pdf
 
Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024
 
Spellings Wk 3 English CAPS CARES Please Practise
Spellings Wk 3 English CAPS CARES Please PractiseSpellings Wk 3 English CAPS CARES Please Practise
Spellings Wk 3 English CAPS CARES Please Practise
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
 
Python Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docxPython Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docx
 
Unit-IV; Professional Sales Representative (PSR).pptx
Unit-IV; Professional Sales Representative (PSR).pptxUnit-IV; Professional Sales Representative (PSR).pptx
Unit-IV; Professional Sales Representative (PSR).pptx
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdf
 
Introduction to Nonprofit Accounting: The Basics
Introduction to Nonprofit Accounting: The BasicsIntroduction to Nonprofit Accounting: The Basics
Introduction to Nonprofit Accounting: The Basics
 
The basics of sentences session 3pptx.pptx
The basics of sentences session 3pptx.pptxThe basics of sentences session 3pptx.pptx
The basics of sentences session 3pptx.pptx
 
PROCESS RECORDING FORMAT.docx
PROCESS      RECORDING        FORMAT.docxPROCESS      RECORDING        FORMAT.docx
PROCESS RECORDING FORMAT.docx
 

Inline Reference Cell for Reatime Calibration of Laser Absorption Spectrometers

  • 1. CLEO/QELS May 9, 2012 In-Line Reference Cell for Real-Time Calibration of Laser Absorption Spectrometers Clinton J. Smith1, Amir Khan2, Mark A. Zondlo2, and Gerard Wysocki1 1. Dept. of Electrical Engineering, Princeton University, Princeton, NJ 08544 2. Dept. of Civil and Environmental Engineering, Princeton University, Princeton, NJ 08544 pulse.princeton.edu
  • 2. Project Goal & Outline The project goal: • Develop and implement a technique for real-time calibration of portable trace-gas sensors  Use modeling of wavelength modulation spectroscopic spectra  Differentiate between sample and reference based on physical http://www.coas.oregonstate.edu/research/po/satellite.gif parameters of the gas Outline • Key challenges to long-term sensor measurement stability  Immunity to noise and long term drift • Conventional calibration solutions are not compatible with the need for low-power, compact sensors • Overview of the permanent in-line reference cell implementation • Simulations of the technique • Experimental results • Conclusions and Future directions 2
  • 3. Measurement Noise & Drift Reduce Sensitivity Measurement drift can be induced by many factors: • Electronics instability • Environmental dependence Allan Deviation • Opto-mechanical instability  Shear, torque, compressive, stress  Beam steering • Laser & Detector Drift  Optical power fluctuation • Fabry-Perot Fringing Averaging Time (sec) Recurring Calibration Required 3
  • 4. Traditional Calibration Vs. In-Line Reference Cell Multi-Pass Gas Cell I0 • Split off beam IDet,1 • Use single cell Ambient • Use separate Detector • Cycle between Ref. Gas Inlet Outlet reference cell reference and Ref. Cell IDet,2 I0 IDet sample gases nRef, LRef , PRef , σRef Detector Detector Separate reference cell signal and ambient signal using gas parameters and WMS • Permanently insert a low-pressure reference cell in the beam path  Contains the same gas as sampled • Reference beam experiences the same fringes as the ambient/sampling beam • No complex gas handling required • Only single detector is needed 4
  • 5. Simultaneous Detection of Sample and Reference IDet Detector 2f ambient 6f reference 2f I0 IDet Detector • Simultaneous 2f & 6f demodulation IDet Detector • Selectively suppress ambient sample or low pressure reference signal • Real-time, in-line calibration is possible 6f I0 IDet Detector 5
  • 6. Key WMS Parameters Laser frequency change Amplitude = β Key characteristics of Wavelength Absorption Line Shape Modulation Spectroscopy (WMS) νHWHM Laser Detector • Modulate laser wavelength at a high frequency (f) and with modulation depth/amplitude (β) 1f  Avoids 1/f noise • Demodulate and filter at multiples of f  Low-noise, “derivative-like” spectral envelopes 2f • WMS Signal is proportional to laser power and depends on 3 key parameters:  Line-width, νHWHM (cm-1)  3f  Modulation depth, β (cm-1) m  Harmonic (e.g., 1f, 2f, 3f, …)  HWHM 6
  • 7. Optimizing 2f WMS Detection S amb S ref Ambient Pressure • 1% CO2 Absorbance in the reference cell • Pressure affects the νHWHM of the target line • Simulate 2f spectrum for different reference cell pressures and β  Select reference cell pressure that minimizes “crosstalk”  Samb/Sref  max. • Both higher and lower pressures in reference cell can provide better signal contrast 7
  • 8. Experimental Validation of Samb/Sref vs. Pressure for 2f • Experimentally varied the modulation index for pressures from 50 to 1000 Torr • Line-center value used for comparison • Good agreement between experiment and simulation • Reference cell signal into ambient signal cross-talk of ~13% 8
  • 9. Optimizing 6f WMS Detection S ref Ambient Pressure S amb • 1% CO2 Absorbance in the reference cell • Simulate 6f spectrum for different reference cell pressures and β  Select reference cell pressure that minimizes “crosstalk”  Higher Sref/Samb ratio at 6f can be achieved than Samb/Sref at 2f (16 vs. 10)  Optimum pressure: 100-150 Torr • Only low pressure and low modulation depth give higher ratio 9
  • 10. Experimental Validation of Sref/Samb vs. Pressure for 6f • Experimentally varied the modulation index for pressures from 50 to 1000 Torr • Line-center value used for comparison • Good agreement between experiment and simulation • Ambient signal into reference cell signal cross-talk of ~4%  Ambient signal is at or below the observed noise floor 10
  • 11. Conclusion and Future Work • A novel in-line calibration technique has been presented  Single detector is used  Sample and reference signals experience the same parasitic optical fringes • Reference cell contains the same gas as the sampled gas • Physical properties of the gas in conjunction with WMS are used to distinguish the reference from the sample Future Improvements and Potential Applications • Further investigate the degree to which crosstalk reduces precision • Perform long-term measurements and drift analyses • Further enhancement of the signal and reference contrast  Investigate full spectral fitting • Potential Applications  Use with gases that do not require ultra-high precision (e.g. ambient NH3 requires ~5% precision)  Use with gases with low variability (e.g., 4% cross-talk with a sample of 20% variability yields 0.8% precision) 11
  • 12. Acknowledgements This work was sponsored in part by: The National Science Foundation’s MIRTHE Engineering Research Center An NSF MRI award #0723190 for the openPHOTONS systems An innovation award from The Keller Center for Innovation in Engineering Education National Science Foundation Grant No. 0903661 “Nanotechnology for Clean Energy IGERT” 12
  • 13. Vary Linewidth, Mod. Index, & Detection Order Optimal contrast: N=2 (mod = 1 * LWamb) Simulation • Ambient 0.018 • Samb>>Sref N=2 (mod = 5 * LWamb) • Reference 0.016 • Sref>>Samb 0.014 Linecenter Simulation 0.012 Parameters: ambient • 1% CO2 0.01 Absorbance 0.008 • Variables N=6 (mod = 5 * LWamb) • Pressure 0.006 • Modulation 0.004 Depth • Harmonic 0.002 N=6 (mod = 1 * LWamb) 0 0 200 400 600 800 1000 1200 1400 1600 Reference Cell Pressure (Torr) 13