EP0809293B1

Power semiconductor structure with lateral transistor driven by vertical transistor

Abstract

This record has no abstract on file.

EP0809293B1, drawing sheet 1
Sheet 1 of 6

Term

Term ended

Expired 21 May 2016, 10.3 years ago.

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

10 claims: 1 independent, 9 dependent

  1. 1
    Power semiconductor structure (200) made from a chip of N type semiconductor material (105, 110) having a first and a second mutually opposing surface, the said power semiconductor structure (200) comprising:a vertical power transistor (Tv, Mv) having a P-type control region (120,410) extending from the said second surface to the inside of the said N-type material (105,110), an N-type source or emitter region (125,420) formed in said control region, a charge gathering region in the said N type material (105, 110) and a charge gathering electrode (Cv, Dv) consisting of conductive means (145) on the said first surface in contact with the said N type material (105), characterized in that it includes    a PNP bipolar lateral power transistor (Tl) for driving a load having a P-type emitter region (210) and a P-type collector region (220) both separated from the control region (120,410) of said vertical transistor and extending from the said second surface to the inside of the said N-type material (105, 110), and having a base region in the said N-type material (105, 110) in common with the said charge gathering region.
  2. 2
    Power semiconductor structure (500) according to Claim 1 furthermore comprising at least one well containing control circuitry, the well being delimited by a P-type insulation region (115) extending from the said second surface to the inside of the said N-type material (110).
  3. 3
    Power semiconductor structure (400) according to Claim 1 or 2, in which the said vertical power transistor is a field-effect transistor (Mv), the said control region (410) being a body region, the said charge gathering region (105, 110) being a drain region and the said charge gathering electrode being a drain electrode (Dv), the said field-effect transistor (Mv) comprising:an N-type source region (420) extending from the said second surface to the inside of the said body region (410), a source electrode (Sv) consisting of conductive means (430) on the said second surface in contact with the said source region (420) and a gate electrode (Gv) consisting of conductive means (440) on the said second surface and insulated from the said body region (410) by a layer of dielectric material.
  4. 4
    Power semiconductor structure (200) according to Claim 1 or 2, in which the said vertical power transistor is a bipolar transistor (Tv), the said control region (120) being a base region, the said charge gathering region (105, 110) being a collector region and the said charge gathering electrode being a collector electrode (Cv), the said bipolar transistor (Tv) comprising:an N-type emitter region (125) extending from the said second surface to the inside of the said base region (120), a base electrode (Bv) and an emitter electrode (Ev) consisting of conductive means (135 and 140) on the said second surface in contact, respectively, with the said base region (120) and with the said emitter region (125).
  5. 5
    Power semiconductor structure (300) according to any one of Claims 1 to 4 furthermore comprising a resistor consisting of an N-type region (310) extending from the said second surface to the inside of the said P-type emitter region (210) and conductive means (320) on the said second surface electrically connecting the said N-type region (310) to the said N-type material (110).
  6. 6
    Power semiconductor structure (300) according to Claim 5, further comprising an N-type enriched region (350) and a P-type region (360) extending from the said second surface to the inside of a portion of the said N-type material (110) lying between the vertical power transistor (Tv) and the lateral power transistor (Tl), the said enriched region (350) having a doping level greater than that of the said N-type material (110), the said enriched region (350) and the said P-type region (360) being adjacent and in contact on the said second surface with the said conductive means (320) electrically connecting the said N-type region (310) to the said N-type material (110).
  7. 7
    Power semiconductor structure (300) according to any one of Claims 1 to 6, comprising a further N-type enriched region (330) extending from the said second surface to the inside of a portion of the said N-type material (110) lying between the said P-type emitter region (210) and the said P-type collector region (220), the said further enriched region (330) having a doping level greater than that of the said N-type material (110).
  8. 8
    Power semiconductor structure (300) according to any one of Claims 1 to 7, comprising a further P-type region (340) extending from the said second surface to the inside of the said N-type material (110), the said further P-type region (340) comprising the said P-type collector region (220) and having a doping level less than that of the said P-type collector region (220).
  9. 9
    Power semiconductor structure (300) according to any one of Claims 4 to 8, in which the base region of the said bipolar vertical transistor (Tv) comprises a first P-type buried layer (120a) forming a first buried junction with the said N-type material (110a) and a first P-type contact region (120b) extending from the said second surface to contact the said first buried layer (120a), the emitter region of the said bipolar vertical transistor (Tv) comprising a second N-type buried layer (125a) forming a second buried junction with the said first buried layer (120a) and a second N-type contact region (125b,125c) extending from the said second surface to contact the said second buried region (125a).
  10. 10
    Power semiconductor structure according to any one of Claims 1 to 9, in which P-type regions are provided instead of the said N-type regions and vice versa.