Data Processing 1D Spectra

This procedure assumes that you have collected an optimized 1D FID
  1. Fourier Transformation
  2. Phasing
  3. Setting the Reference
  4. Baseline Correction
  5. Integration
  6. Peak Picking
  7. Other Spectrum Measurements

Fourier Transformation

  1. Set fn='n' to zerofill your data set. Zero filling improves your digital resolution.
  2. Set lb, gf, gfs, sb, and sbs to apodize your FID to improve signal/noise, resolution, or the shape of the peaks. Click on main menu, process, to interactively adjust these apodization parameters.
  3. Type wft to fourier transform your FID into a spectrum. The spectrometer DC offset is automatically subtracted from the FID, the FID is apodized and zero filled.

Phasing the Spectrum

Phase the spectrum using one opf these methods:

Setting the spectrum reference

  1. Click on main menu, display, interactive. Position the cursors to the left and right of the reference peak. Click on expand.
  2. Position the left cursor near the center of the reference peak and type nl.
  3. Type rl(valuep) where value = the ppm value of the peak. For instance, type rl(7.26p) to reference the residual protonated chloroform peak to 7.26 ppm.

Baseline Correction

If the baseline is not flat, or if you plan to integrate, apply baseline correction:
  1. Type dc to apply a linear drift correction.
  2. Type cz to clear the list of baseline points.
  3. Type region to automatically create the list of baseline points.
  4. Click on main menu, display, interactive, integral. If there are peaks that are not integrated (i.e., are not bisected by a yellow line), move the mouse pointer to the left of the peak, type z and type the <return> key, move the mouse pointer to the right of the peak, type z and type the <return> key.
  5. Type bc to apply a baseline correction.

Integration

  1. Type dc to apply a linear drift correction.
  2. Type cz to clear the list of baseline points.
  3. Type region to automatically create the list of baseline points.
  4. Click on main menu, display, interactive, integral.
    • If there are peaks that are not integrated (i.e., are not bisected by a yellow line) move the mouse cursor to the left of the peak, type z and type the <return> key, move the mouse pointer to the right of the peak, type z and type the <return> key.
    • If there are integration regions with incorrect starting and ending points, click on main menu, display, interactive, integral, reset. Position the mouse pointer where a new integration limit should be set and click the left mouse button. Position the mouse pointer near an integration limit to be removed, and click the right mouse button.
  5. Click on lvl/tlt and adjust the level and tilt of the integrals with the mouse buttons.
  6. Type isadj to normalize the total integration to 100. Type ins=new# to change the integral normalization scale to the value of new#.
  7. Type vp=12 dpirn to display integral values on the spectrum. Type dli to display a list of integrals.

Peak Picking

  1. Click on main menu, display, interactive, next, thresh.
  2. Use the left mouse button to adjust the height of the yellow threshold line. Use the middle mouse button to adjust the height of the spectrum.
  3. Type dpf to display peak frequencies on the spectrum. Type dll to display a listing of the peak frequencies.
  4. Type dg1 and change the spectrum display parameters:
    axis
    axis label in hz or ppm
    sc
    start of chart from the right edge
    wc
    width of chart
    sp
    start of spectral region in hz; can also be entered in ppm (i.e., sp=-0.5p)
    wp
    width of spectral region in hz; can also be entered in ppm (i.e., wp=10p)
    vp
    vertical position of spectrum; can also be changed by clicking the left mouse button pointed at the extreme left edge of teh graphics window.
    vs
    vertical scale of spectrum; can also be changed by clicking the middle mouse button above a peak.
    io
    integral offset

    Spectrum Plotting

    1. Click on main menu, more, config, select plotter to select HP7550A (HP pen plotter) or LaserJet_300R (HP LaserJet).
    2. Type one or more of the following commands separated by spaces, then hit <return>
      pl
      plot spectrum as it appears in the graphics window
      pscale
      plot scale
      ppa
      plot abbreviated parameter list
      pap
      plot all parameters
      pir
      plot integral regions
      pirn
      plot normalized integral regions
      ppf
      plot peak frequencies
      pll
      plot line list
      ptext
      plot text file
    3. Type page and hit <return> to send the plot to the printer.

      Spectrum Measurements

      dres
      determine spectral resolution of peak nearest the left cursor
      dsn
      display signal/noise ratio of largest signal relative to spectral region between the two vertical cursors
      delta
      difference between the two vertical frequency cursors

      Apodization functions change the signal/noise, resolution and shape of spectral peaks.

      A. Positive values of lb (line broadening) increase signal/noise at the expense of resolution. Negative values of lb increase resolution at the expense of signal/noise.

      B. Gaussian apodization changes peaks from lorentzian to gaussian shapes. Proper selection of gf and gfs achieves a good compromise between signal/noise and resolution, with emphasis on improved signal/noise.

      C. Sine Bell apodization changes peaks from lorentzian to sync shapes. Proper selection of sb and sbs achieves a good compromise between signal/noise and resolution, with emphasis on improved resolution. Positive values of sb select a sine bell function, while negative values of sb select a squared sine bell function.

      lb='n' gf='n' gf=1 sb='n' sb=2

      gfs='n' gfs=0 sbs='n' sbs=0

      lb=0.2 gf=0.5 gf=1 sb=4 sb=2

      gfs='n' gfs=0.5 sbs=-0.5 sbs=-0.3

      lb=1 gf=1 gf=1 sb=2 sb=2

      gfs='n' gfs=1 sbs==0.5 sbs=-0.5

      lb=-0.5 gf=2 gf=1 sb=1 sb=2

      gfs='n' gfs=2 sbs=-0.5 sbs=-1




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      Last updated: April 2nd, 1998
      URL: http://nmr.chem.indiana.edu/NMRguide/process/1dproc.html
      Copyright 1996, The Trustees of Indiana University