Nova Patents
EP2297546B1

Probe detection system

Abstract

This record has no abstract on file.

EP2297546B1, drawing sheet 1
Sheet 1 of 7

Term

2.7 yearsleft in the term

Expires 8 June 2029.

  1. Priority and filed
  2. Granted
  3. Today
  4. Expires

13 claims: 3 independent, 10 dependent

  1. 1
    A detection system (74) for use with a scanning probe microscope, the system comprising a light source for generating a beam to illuminate a probe (16) comprising a cantilever (18) with base and free ends, the free end supporting a sharp tip (20), collecting means for collecting light reflected from the probe wherein the beam illuminates an upper surface of the probe in the vicinity of its tip, characterised in that the reflected light comprises two components:a first component (84a, 84b, 84c) from which an indication of the deflection of the upper surface of the probe is obtained and a second component (86a, 86b, 86c) for transmission to a height detection system (88) arranged to extract from this component information relating to the position of the upper surface of the probe relative to a reference point, wherein the system includes a beamsplitter (82) arranged to separate the reflected light into the first and second components, and wherein the height detection system comprises an interferometer arranged to detect the path difference between the second component of reflected light and a height reference beam.
  2. 4
    A detection system according to any one of claims 1 to 3 wherein the first component is also transmitted to the interferometer, the interferometer being further arranged to detect an optical path difference between the first component of reflected light and a deflection reference beam which propagates along an optical path whose length is defined by a position on the cantilever remote from its free end, thereby providing information as to the deflection of the cantilever.
  3. 5
    A detection system according to any one of claims 1 to 3 wherein the first component is transmitted to a deflection detector, the deflection detector being arranged to provide the indication of the deflection of the upper surface of the probe.
  4. 9
    A scanning probe microscope for imaging a sample in accordance with an interaction between the sample and a probe, the microscope comprising driving means arranged to provide relative motion between the probe and the sample surface and a probe detection system in accordance with any one of claims 1 to 8.
  5. 10
    A scanning probe microscope in accordance with claim 9 wherein the driving means comprises an xy scanner arranged to provide relative motion between the probe and the sample surface in a plane substantially parallel to the sample surface and a z driver arranged to provide relative motion in a direction perpendicular to the sample surface, and wherein the indication of the deflection of the upper surface of the probe obtained from the probe detection system is included in a feedback system incorporating the z driver, the z driver being arranged to return the indication of the deflection of the upper surface of the probe to a set level.
  6. 11
    A scanning probe microscope in accordance with claim 10 wherein the z driver includes a base driver that is arranged to move the base of the probe and optionally also an actuator that is integral with the probe, the actuator being operable to move the tip of the probe.
  7. 12
    A scanning probe microscope in accordance with claim 10 or 11 wherein the feedback system operates on a timescale longer than that taken by the xy scanner to move the probe between image pixels, the xy scanner preferably comprising a resonator arranged to oscillate either the probe or sample plus support at or near its resonant frequency.
  8. 13
    A method of collecting data using a scanning probe microscope, the method comprising the steps of:(a) Moving a probe (16) comprising a cantilever (18) with base and free ends, the free end supporting a sharp tip (20), into close proximity with a sample surface (14);(b) directing a light beam (76) on an upper surface of the probe at a point directly above the tip;and (c) scanning the probe across the sample surface whilst collecting and analysing light reflected from the upper surface of the probe, a z driver being operative to drive the base of the probe vertically in response to a feedback signal obtained by analysis of a first component of the collected light (84a, 84b, 84c), from which is obtained an indication of the deflection of the upper surface of the probe and wherein a second component of collected light (86a, 86b, 86c) is transmitted to an interferometer (88) arranged to detect the path difference between this component and a height reference beam and arranged to form an image indicative of the height of the probe tip above a reference level, wherein the reflected light is separated into the first and second components using a beamsplitter (82).