EP4123684A2

Improved method of data dependent control

Abstract

A method of mass spectrometry is disclosed comprising obtaining first data at a first time and/or location and second data at a second subsequent time and/or location. A future trend or rate of change in the data is predicted from the first and second data. An attenuation factor of an attenuation device is adjusted in response to the predicted future trend or rate of change in the data so as to maintain operation of a detector or detector system within the dynamic range of the detector or detector system and/or to prevent saturation of the detector or detector system.

EP4123684A2, drawing sheet 1
Sheet 1 of 6

Term

7.5 yearsto projected expiry

Projected expiry 14 March 2034, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

12 claims: 8 independent, 4 dependent

  1. 1
    A method of mass spectrometry comprising:(i) obtaining first intensity data at a first time and/or location and second intensity data at a second subsequent time and/or location;(ii) predicting a future trend or rate of change in the intensity of a signal delivered to a mass spectrometer from said first and second intensity data, wherein said mass spectrometer comprises an attenuation device;and(iii) adjusting the transmission of ions by adjusting an attenuation factor of said attenuation device in response to said predicted future trend or rate of change so as to: limit space charge effects in an ion trap or ion mobility separation device of the mass spectrometer;or control the build-up of contamination on a lens element of the mass spectrometer;or control the maximum data rate through downstream high speed electronics of the mass spectrometer.
  2. 3
    A method as claimed in claims 2 or 3, wherein said first and second intensity data comprise mass spectral data.
  3. 4
    A method as claimed in any preceding claim, wherein said first and second intensity data comprise multi-dimensional data.
  4. 6
    A method as claimed in any preceding claim, wherein the step of adjusting said attenuation factor comprises using an attenuation factor from a limited array of allowed attenuation factors.
  5. 7
    A method as claimed in any preceding claim, wherein the step of adjusting the transmission of ions by adjusting an attenuation factor of said attenuation device comprises restricting the maximum amount by which said attenuation factor can be changed.
  6. 8
    A method as claimed in any of the preceding claims, wherein the step of adjusting the transmission of ions by adjusting an attenuation factor of said attenuation device comprises repeatedly switching said attenuation device between a first mode of operation for a first time period wherein the ion transmission is substantially zero and a second mode of operation for a second time period wherein the ion transmission is greater than substantially zero.
  7. 10
    A method of mass spectrometry comprising:(i) obtaining first intensity data at a first time and/or location and second intensity data at a second subsequent time and/or location;(ii) predicting a future trend or rate of change in the intensity of a signal delivered to a mass spectrometer from said first and second intensity data;and(iii) adjusting the transmission of ions through the mass spectrometer in response to the predicted future trend or rate of change in the intensity of a signal delivered to the mass spectrometer so as to maintain a desired performance of the mass spectrometer within a desired range;wherein said desired performance of the mass spectrometer comprises maximum data rate, or space charge induced mass or resolution shift.
  8. 12
    A mass spectrometer comprising:an attenuation device;a control system arranged and adapted: (i) to obtain first intensity data at a first time and/or location and second intensity data at a second subsequent time and/or location;(ii) to predict a future trend or rate of change in the intensity of a signal delivered to a mass spectrometer from said first and second intensity data;and(iii) to adjust the transmission of ions by adjusting an attenuation factor of an attenuation device or otherwise adjust the transmission of ions in response to said predicted future trend or rate of change so as to: limit space charge effects in an ion trap or ion mobility separation device of the mass spectrometer;or control the build-up of contamination on a lens element of the mass spectrometer;or control the maximum data rate through downstream high speed electronics of the mass spectrometer.