EP1111672B2

Semiconductor chip assemblies, methods of making same and components for same

Abstract

This record has no abstract on file.

EP1111672B2, drawing sheet 1
Sheet 1 of 19

Term

Term ended

Expired 24 September 2011, 15 years ago.

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

38 claims: 8 independent, 30 dependent

  1. 1
    A semiconductor chip assembly comprising:a semiconductor chip (28) having a plurality of surfaces (36, 38);a plurality of contacts (40) on one of said plurality of surfaces of said semiconductor chip;a sheetlike element (42) abuting one of said plurality of surfaces of said semiconductor chip;a plurality of terminals (48) for connection to a plurality of contact pads of a substrate to which the assembly is to be mounted, said terminals being arranged spaced-apart on the sheetlike element and at least some of said terminals overlying one of said plurality of surfaces of the semiconductor chip so that these terminals lie within the periphery of the one surface and are insulated and spaced from the chip by the sheetlike element;and a plurality of electrical connections connecting said plurality of terminals to said plurality of semiconductor chip contacts;wherein said plurality of electrical connections comprise flexible leads (50) and wherein the sheetlike element (42) and the flexible leads (50) are arranged to permit movement of said terminals (48) overlying the chip relative to the chip contacts (40) so that such movement compensates for differential thermal expansion of the chip and a substrate upon which the assembly is mounted in service and thereby contributes to the ability of the assembly to withstand thermal cycling when the assembly is mounted on a substrate.
  2. 18
    A chip assembly as claimed in any one of the preceding claims, wherein said flexible leads (50) are curved in a plane perpendicular to said one surface of the chip.
  3. 19
    A chip assembly as claimed in any one of the preceding claims, wherein said flexible leads (50) are curved in a plane parallel to said one surface of the chip.
  4. 22
    A chip assembly as claimed in any one of claims 20 to 21, wherein said terminals (50) are substantially evenly distributed throughout an area of said sheetlike element (42) overlying said front surface (38) of said chip (28).
  5. 26
    A structure comprising a chip assembly as claimed in any one of claims 1 to 17, 20 to 21, and 23 to 25 and a substrate (20,988) facing toward said sheetlike element (42,932), the substrate having a plurality of contact pads (24,990) disposed in a pattern corresponding to the pattern of said terminals (48,946) so that said pads (24,990) confront said terminals (48,990) on said sheetlike element, and said contact pads (24,990) on said substrate (20,988) being bonded to said terminals (48,990) on said sheetlike element (42,932).
  6. 29
    A method of making a semiconductor chip assembly, comprising:providing a semiconductor chip (28) having a plurality of surfaces (36,38) and contacts (40) on at least one of said surfaces with a sheetlike element bearing a plurality of discrete terminals (48) for connection to a plurality of discrete contact pads of a substrate to which the assembly is to be mounted, so that at least some of the terminals (48) overlie at least one of said surfaces of said chip and these terminals lie within the periphery of the one surface and so that the sheetlike element abuts at least one of said surfaces and acts as a spacer between the terminals and the chip to space the terminals from the chip, and electrically connecting said plurality of terminals to said plurality of semiconductor chip contacts (40) by means of flexible leads (50) connected to said contacts and said terminals, the sheetlike element (42) being provided so that that the sheetlike element and the flexible leads (50) permit movement of the terminals (48) relative to the chip contacts (40) so that such movement compensates for differential thermal expansion of the chip and a substrate upon which the assembly is mounted in service and thereby contributes to the ability of the assembly to withstand thermal cycling when the assembly is mounted on a substrate.
  7. 34
    A method as claimed in any one of claims 29 to 33, which further comprises connecting said flexible leads (50) to said contacts (4) so that said flexible leads (50) extend between the contacts (40) and terminals (48) through apertures (54) in said sheetlike member (42).
  8. 37
    A method as claimed in any one of claims 29 to 36, further comprising assembling a substrate with said sheetlike element so that contact pads on said substrate confront the terminals on said sheet-like member and bonding said terminals to said pads.