EP1294534B2

In-situ endpoint detection and process monitoring method and apparatus for chemical mechanical polishing

Abstract

A chemical mechanical polishing apparatus has a polishing pad (30), a carrier (70) to hold a substrate (10) against a first side of the polishing surface, and a motor coupled to at least one of the polishing pad (30) and carrier head (70) for generating relative motion therebetween. An eddy current monitoring system (40) is positioned to generate an alternating magnetic field in proximity to the substrate (10), an optical monitoring system (140) generates a light beam and detects reflections of the light beam from the substrate (10), and a controller (90) receives signals from the eddy current monitoring system (40) and the optical monitoring system (140).

Term

Term ended

Expired 18 May 2021, 5.4 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

1 claim: 1 independent, 0 dependent

  1. 1
    What is claimed is:1. A sensor for momtoring a conductive film in a substrate, comprising: a core positionable in proximity to the substrate;a first coil wound around a first portion of the core;an oscillator electrically coupled to the first coil to induce an alternating current in the first coil and generate an alternating magnetic field in proximity to the substrate;a second coil wound around a second portion of the core;a capacitor electrically coupled to the second coil;and an amplifier electrically coupled to the second coil and the capacitor to generate an output signal. 2. The sensor of claim 1, wherein the oscillator induces an alternating current with a frequency selected to provide a resonant frequency when the substrate is not in proximity to the core. 3. The sensor of claim 1 , wherein the core consists essentially of ferrite. 4. The sensor of claim 1, wherein the core includes two prongs and a connecting -portion-between the two prongs. - - • - — - - 5. The sensor of claim 4, wherein the first coil is wound around the connecting portion and the second coil is wound around at least one of the two prongs. 6. The sensor of claim 1, wherein the second coil and the capacitor are connected in parallel. 7. The sensor of claim 1 , wherein the sensor is positioned on a side of a polishing -pad opposite the -substrate. — 8. The sensor of claim 7, wherein the polishing pad includes an upper layer and a lower layer, and an aperture is formed in at least a portion of the lower layer adjacent the core. 9. The sensor of claim 1, further comprising a computer that receives the output signal. 10. A chemical mechanical polishing apparatus, comprising: a polishing pad;a carrier to hold a substrate against a first side of the polishing surface;an eddy current sensor including at least one inductor positioned on a second side of the polishing pad opposite the substrate, an oscillator electrically coupled to the at least one inductor to induce an alternating current in the coil and generate an alternating magnetic field, and a capacitor electrically coupled to the at least one inductor;and a motor coupled to at least one of the polishing pad and carrier head for generating relative motion therebetween. 11. The apparatus of claim 10, further comprising a platen to support the polishing pad. 12. The apparatus of claim 11 , wherein the at least one inductor is positioned in a recess in a top surface of the platen. 13. The apparatus of claim 11 , wherein the platen rotates. 14. The apparatus of claim 13, further comprising a position sensor to determine an angular position of the platen and a controller to sample data from the eddy current sensor when the at least one inductor is positioned adjacent the substrate. 15. The apparatus of claim 10, wherein the a recess is formed in the second side of the polishing pad. 16. The apparatus of claim 15, wherein the polishing pad includes a cover layer on the first side of the polishing pad and a backing layer on the second side of the polishing pad, and the recess is formed by removing a portion of the backing layer. 17. The apparatus of claim 15, wherein the eddy current sensor includes a core having two poles positioned adjacent the recess in the polishing pad, and the at least one inductor is wound around a first portion of the core. 18. The apparatus of claim 10, wherein the eddy cunent sensor includes a core, and the at least one inductor includes a first inductor wound around a first portion of the core and a second inductor wound around a second portion of the core. 19. The apparatus of claim 18, wherein the oscillator is electrically coupled to the first coil to induce an alternating current in the first coil. 20. The apparatus of claim 19, wherein the capacitor is electrically coupled to the second coil. 21. The apparatus of claim 10, wherein the oscillator induces an alternating current with a frequency selected to provide a resonant frequency when the substrate is not in proximity to the core. 22. The apparatus of claim 21, further comprising an endpoint detection system to receive an output signal from the eddy current sensor, the endpoint detection system configured to signal a polishing endpoint if the output signal exceeds a predetermined threshold. 23. A method of monitoring a thickness of a conductive layer in a substrate during a polishing operation, comprising: positioning a substrate on a first side of a polishing surface;generating an alternating magnetic field from an inductor positioned on a second side of the polishing surface opposite the substrate, the magnetic field extending through the polishing surface to induce eddy currents in the conductive layer;and detecting a change in the alternating magnetic field caused by a change in the thickness of the conductive layer. 24. The method of claim 23, wherein generating the alternating magnetic field from an inductor includes driving a first coil with an oscillator at a first frequency. 25. The method of claim 24, wherein the first frequency is a resonant frequency when the substrate is not in proximity to the magnetic field. 26. The method of claim 24, wherein detecting a change in the alternating magnetic field includes sensing the alternating magnetic field with a second coil. 27. The method of claim 26, wherein the second coil is connected in parallel with a capacitor. 28. The method of claim 26, wherein the first coil is wound around a first portion of a core and the second coil is wound around a second portion of the core. 29. The method of claim 23, further comprising determining when the inductor is adjacent the subsfrate. 30. The method of claim 23, wherein generating an alternating magnetic field from an inductor includes driving the inductor with a first signal, and detecting a change in the alternating magnetic field includes generating a second signal from the alternating magnetic field. 31. The method of claim 30, further comprising determining a change in amplitude in the second signal. 32. The method of claim 30, further comprising determining a change in a phase difference between the first signal and the second signal. 33. A ' method of chemical mechanical polishing, comprising: positioning a subsfrate having a conductive layer on a first side of a polishing surface;generating an alternating magnetic field from an inductor positioned on a second side of the polishing surface opposite the substrate, the magnetic field extending through the polishing surface to induce eddy currents in the conductive layer;creating relative motion between the substrate and the polishing surface to polish the conductive layer;sensing the eddy currents in the substrate;and halting polishing when the sensed eddy currents exhibit an endpoint criteria. 34. The method of claim 33, wherein the endpoint criteria comprises the eddy currents signal passing a threshold strength. 35. The method of claim 33, wherein the endpoint criteria comprises a slope of the eddy current signal leveling off. 36. A chemical mechanical polishing apparatus, comprising: a polishing pad with a polishing surface;a carrier to hold a substrate against the polishing surface;a motor coupled to at least one of the polishing pad and carrier head for generating relative motion therebetween;and ~ a conductiveTayerthickness monitoring system including at least one inductor, a current source that generates a drive signal, the current source electrically coupled to the at least one inductor to induce an alternating current in the at least one inductor and generate an alternating magnetic field, sense circuitry including a capacitor electrically coupled to the at least one inductor to sense the alternating magnetic field and generate a sense signal, and a phase comparison circuitry coupled to the current source and the sense circuitry to measure a phase difference between the sense signal and the drive signal. 37. The apparatus of claim 36, further comprising at least one first gate to convert " sinusoidal signals from the inductor and the oscillator into first and second square-wave signals. 38. The apparatus of claim 37, where the at least one first gate is an XOR gate. 39. The apparatus of claim 37, further comprising a comparator to compare the first square- wave signal to the second square-wave signal to generate a third square-wave signal. 40. The apparatus of claim 39, wherein the comparator is an XOR gate. 41. The apparatus of claim 39, further comprising a filter to convert the third square- wave signal into differential signal having an amplitude proportional to the phase difference between the first and second square wave signals. 42. The apparatus of claim 36, wherein the phase comparison circuitry generates a signal with a duty cycle proportional to the phase difference. 43. A method of monitoring a thickness of a conductive layer on a subsfrate during a chemical mechanical polishing operation, comprising: energizing a coil with a first signal to generate an alternating magnetic field, the alternating magnetic field inducing eddy currents in a conductive layer of the substrate;measuring the alternating magnetic field and generating a second signal indicative of the magnetic field;and — — comparing the first-and second-signals to determine a phase difference therebetween. 44. A chemical mechanical polishing apparatus, comprising: a polishing pad;a carrier to hold a subsfrate against a first side of the polishing surface;an eddy current monitoring system positioned to generate an alternating magnetic field in proximity to the subsfrate;an optical monitoring system that generates a light beam and detects reflections of the light beam from the substrate;a controller to ~ receive signals from the eddy current monitoring system and the optical monitoring system;and a motor coupled to at least one of the polishing pad and carrier head for generating relative motion therebetween. 45. The polishing apparatus of claim 44, wherein the eddy current monitoring system includes an inductor positioned on a second side of the polishing pad opposite the substrate. 46. The polishing apparatus of claim 45, wherein the inductor is positioned in a cavity in a platen below the polishing pad. 47. The polishing apparatus of claim 44, wherein the optical monitoring system includes a light source and a photodetector positioned on a second side of the polishing pad opposite the substrate. 48. The polishing apparatus of claim 47, wherein the light source and photodetector are positioned in a first cavity in a platen below the polishing pad. 49. The polishing apparatus of claim 48, wherein the eddy current monitoring system includes an inductor positioned in the first cavity in the platen. 50. The polishing apparatus of claim 48, wherein the eddy current monitoring system includes- an- inductor positioned-in a- second- cavity in the platen separate from the first cavity. 51. The polishing apparatus of claim 47, wherein the eddy current momtoring system includes an inductor positioned on a second side of the polishing pad opposite the subsfrate. 52. The polishing apparatus of claim 44, wherein the eddy current monitoring system and the optical monitoring system are positioned to monitor substantially the same radial position on the substrater — 53. The polishing apparatus of claim 44, wherein the controller is configured to detect endpoint criteria in signals from both the eddy current monitoring system and the optical monitoring system. 54. A method of chemical mechanical polishing, comprising: positioning a substrate on a first side of a polishing surface;creating relative motion between the substrate and the polishing surface to polish the substrate;generating a first signal from an eddy current momtoring system;generating a second signal from an optical monitoring system;monitoring the first and second signals for endpoint criteria. 55. The method of claim 54, further comprising halting polishing when endpoint criteria have been detected in both the first and second signals. 56. The method of claim 54, further comprising halting polishing when an endpoint criterion has been detected in either the first or second signal. 57. The method of claim 54, wherein the substrate includes a metal layer, and the monitoring step includes monitoring the signal from the eddy current monitoring system until the metal layer reaches a predetermined thickness and then monitoring the signal from the optical monitoring system. 58. A method of chemical mechanical polishing a metal layer on a substrate, comprising: polishing the substrate at a first polishing station with a first polishing surface at a first polishing rate;monitoring polishing at the first polishing station with an eddy current monitoring system;transferring the substrate to a second polishing station when the eddy current monitoring system indicates that a predetermined thickness of the metal layer remains on the substrate;- polishing the substrate at the second polishing station with a second polishing surface at a second polishing rate that is lower than the first polishing rate;monitoring polishing at the second polishing station with an optical monitoring system;and halting polishing when the optical momtoring system indicates that a first underlying layer is at least partially exposed. 59. The method of claim 58, wherein the first underlying layer is a barrier layer. 60. The method of claim 59, further comprising transferring the substrate to a third polishing station and polishing the substrate with a third polishing surface. 61. The method of claim 60, further comprising monitoring polishing at the third polishing station with a second optical monitoring system, and halting polishing when the second optical momtoring system indicates that a second underlying layer is at least partially exposed. 62. The method of claim 60, wherein polishing at the third polishing station continues until the second underlying layer is substantially entirely exposed. 63. The method of claim 58, wherein polishing at the second polishing station continues until the first underlying layer is substantially entirely exposed. 64. The method of claim-58, wherein-polishing- the-substrate at the second polishing station includes an initiation polishing step at a higher pressure than the remaining polishing at the second polishing station. 65. A method of chemical mechanical polishing a metal layer on a subsfrate, comprising: polishing the subsfrate at a first polishing station with a first polishing surface at a first polishing rate;monitoring polishing at the first polishing station with an eddy current monitoring system;reducing the polishing rate at the first polishing station when the eddy current monitoring system indicates that a predetermined thickness of the metal layer remains on the substrate;monitoring polishing at the first polishing station with an optical monitoring system;and halting polishing when the optical monitoring system indicates that a first underlying layer is at least partially exposed. 66. The method of claim 65, wherein the first underlying layer is a barrier layer. 67. The method of claim 65, further comprising transferring the subsfrate to a second polishing station and polishing the substrate with a second polishing surface. 68. The method of claim 67, further comprising monitoring polishing at the second polishing station with a second optical monitoring system, and halting polishing when the second optical monitoring system indicates that a second underlying layer is at least partially exposed. 69. The method of claim 68, further comprising transferring the substrate to a third polishing station and buffing the substrate with a buffing surface. 70. The method of claim 65, wherein polishing at the second polishing station continues until the first underlying layer is substantially entirely exposed. 71. A method of chemical mechanical polishing a metal layer on a substrate, comprising: polishing the substrate at a first polishing rate;monitoring polishing with an eddy current monitoring system;reducing the polishing rate when the eddy current monitoring system indicates that a predetermined thickness of the metal layer remains on the substrate;monitoring polishing with an optical monitoring system;and halting polishing when the optical monitoring system indicates that an underlying layer is at least partially exposed. "