EP1103631A2

Apparatus and method for depositing material on a substrate

Abstract

The disclosure relates to a method and apparatus for achieving conformal step coverage on a substrate by PVD. A target (104) provides a source of material to be sputtering by a plasma and then ionized. Ionization is facilitated by maintaining a sufficiently dense plasma using, for example, an inductive coil (122). The ionized material is then deposited on the substrate (110) which is biased to a negative voltage by support member (112). A signal (200) provided to the target during processing includes a negative voltage portion (202) and a zero-voltage portion (204). During the negative voltage portion, ions are attracted to the target to cause sputtering. During the zero-voltage portion, sputtering from the target is terminated while the bias on the substrate cause reverse sputtering therefrom. Accordingly, the negative voltage portion (202) and the zero-voltage portion (204) are alternated to cycle between a sputter step and a reverse sputter step. The film quality and uniformity can be controlled by adjusting the frequency of the signal, the chamber pressure, the power supplied to each of the support member and other process parameters.

EP1103631A2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 21 November 2020, 5.8 years ago.

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21 claims: 12 independent, 9 dependent

  1. 1
    An apparatus for depositing material on a substrate comprising:(a) a processing chamber;(b) a substrate support member disposed in the processing chamber having a first power source coupled thereto;(c) a target disposed in the processing chamber;(d) a second power source coupled to the target adapted to vary the voltage applied tot he target;and(e) an electromagnetic field source.
  2. 5
    An apparatus as claimed in any of claims 1 to 4, wherein the target comprises a material selected from the group comprising Ti, Cu, Ta, W, Al and any combination thereof.
  3. 6
    An apparatus as claimed in any of claims 1 to 5, further comprising a gas source coupled to the processing chamber to supply a gas for creating a plasma during processing.
  4. 7
    An apparatus as claimed in any of claims 1 to 6, wherein the electromagnetic field source is a coil having a power supply coupled thereto.
  5. 9
    A method of depositing a material on a substrate in a process chamber, wherein the substrate includes a feature formed therein, comprising:(a) providing a plasma in the process chamber;(b) biasing the substrate with a negative voltage;and(c) alternating between a sputtering and a reverse sputtering step, wherein the sputtering step comprises applying a bias to a target and the reverse sputtering step comprises terminating the bias to the target.
  6. 12
    A method as claimed in any of claims 9 to 11, wherein (b) comprises supplying a radio frequency (RF) signal to the substrate.
  7. 13
    A method as claimed in any of claims 9 to 12, wherein the bias to the target comprises providing at least on of an RF signal and a DC signal to the target.
  8. 14
    A method of depositing a material on a substrate in a process chamber, comprising:(a) providing a plasma in the processing chamber;(b) negatively biasing the substrate;(c) energizing a coil;and(d) biasing the target with a signal having a negative voltage portion and a zero-voltage portion.
  9. 17
    A method as claimed in any of claims 14 to 16, wherein (d) comprises supplying a DC (direct current) to the target.
  10. 18
    A method as claimed in any of claims 14 to 17, wherein the negative voltage portion is between about 50V and 600V.
  11. 19
    A method as claimed in any of claims 14 to 18, wherein the signal to the target has a frequency of between about 0.01Hz and 1Hz and the negative voltage portion has a pulse width between about 0.5 second and 60 seconds.
  12. 21
    A method as claimed in any of claims 14 to 20, further comprising providing a device feature formed in the substrate having as aspect ratio greater than 2:1.