EP1579481A2

A method of semiconductor manufacturing by the implantation of boron hydride cluster ions

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 26 June 2023, 3.2 years ago.

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39 claims: 7 independent, 32 dependent

  1. 1
    Claims of equivalent WO 2004003973 A2 Claims 1. A method of implanting ions comprising the steps of:(a) producing a volume of gas phase molecules of a boron hydride B n H m , where n and m are integers and n > 10 and m > 0;(b) ionizing the boron hydride molecules defining ionized boron hydride molecules;and (c) accelerating the ionized boron hydride molecules by an electric field into a target.
  2. 10
    A method of implanting ions comprising the steps of:(a) producing a volume of gas phase molecules of a boron hydride B n H m , where n and m are integers and n > 10 and m ≥ 0;(b) forming a plasma containing boron hydride molecules, boron hydride ions and electrons;and (c) accelerating the boron hydride ions by an electric field to implant into a target, to perform doping of a semiconductor.
  3. 20
    A magnetic yoke assembly for generating a magnetic field, the magnetic yoke assembly comprising:a yoke formed from a pair of pole pieces ;a pair of permanent magnets having opposing North and South magnetic poles disposed between said pole pieces forming a yoke assembly;and a pair of aligned apertures formed in said pole pieces.
  4. 22
    A magnetic yoke assembly comprising:a magnetic coil wound about a first axis;and an upper yoke and a lower yoke magnetically coupled to opposing ends of said magnetic coil, said upper and lower yokes formed with aligned apertures configured such that a line through said aperture is generally parallel to said first axis.
  5. 24
    A method for forming a metal oxide semiconductor (MOS) device having a substrate, the method comprising the steps of:(a) forming a well and opposing trench isolations in a first region of said substrate;(b) forming a gate stack on said substrate between said opposing trench isolations defining exposed portions of said substrate;said formation comprising the steps of i) depositing or growing a gate dielectric;ii) depositing a polysilicon gate electrode, and iii) patterning to form the gate stack. (c) depositing a pad oxide onto said exposed portions of said substrate and on top of said gate stack;(d) implanting Bι 8 H x + ions to form drain extensions between said gate stack and said opposing trench isolations;(e) forming spacers adjacent said gate stack;(f) implanting P- type cluster ions to form source and drain regions;(g) providing heat treatment to activate material implanted by said doping step, thereby forming a P- type metal oxide semiconductor (MOS) device (PMOS).
  6. 28
    An ion source comprising:a source of gas;an ionization chamber in fluid communication with said source of gas, said ionization chamber formed with one or more electron entrance apertures, for receiving one or more electron beams, an ion extraction aperture for enabling an ionized beam to be extracted and a gas inlet aperture, said ionization chamber configured to enable ionization of said gas by electron bombardment;one or more electron sources for generating one or more electron beams, said electron source disposed outside of said ionization chamber;and a first source of magnetic flux for generating a magnetic field within said ionization chamber, said source including a magnetic yoke assembly disposed outside of said ionization chamber.
  7. 34
    A vapor source for an ion source, the vapor source comprising:a vaporizer body defining a volume for receiving a crucible;a conduit in fluid communication with said crucible;at least one shut off valve coupled to said conduit;a source block formed with a vapor conduit which forms a vapor feed for an ionization chamber;and a multiple-stage temperature system for controlling the temperature of said vaporizer body, at least one shut off valve and source block separately.