EP0559366B1

Stackable three-dimensional multiple chip semiconductor device and method for making the same

Abstract

This record has no abstract on file.

EP0559366B1, drawing sheet 1
Sheet 1 of 2

Term

Term ended

Expired 23 February 2013, 13.6 years ago.

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

8 claims: 2 independent, 6 dependent

  1. 1
    A stackable semiconductor multiple chip module (25, 59) comprising:a lower chip carrier substrate (26, 52) of thermally conductive material having a top and a bottom surface and a plurality of solder bumps (15) on its bottom surface;a first semiconductor die (10, 50) electrically and physically attached to the top surface of the lower chip carrier substrate;an upper chip carrier substrate (30, 46) of thermally conductive material having a top and a bottom surface;a second semiconductor die (10') mounted and electrically coupled to the top surface of the upper chip carrier substrate, the upper chip carrier substrate is stacked over the lower chip carrier substrate, wherein the lower chip carrier substrate and the upper chip carrier substrate are electrically connected to each other by solder joints (29);and a lid (28, 60) capping the first semiconductor die (10, 50) and providing a positive stand-off between both chip carrier substrates, said solder joints (29) between the upper chip carrier substrate and the lower chip carrier substrate are hour-glass shaped.
  2. 6
    A method of making a stackable semiconductor multiple chip module (25, 59) comprising the steps of:providing a lower chip carrier substrate (26, 52) of thermally conductive material having top and bottom surfaces;depositing a plurality of solder bumps (15, 16) on both top and bottom surfaces of the lower chip carrier substrate;mounting a first semiconductor die (10) onto the top surface of the lower chip carrier substrate;electrically coupling the first semiconductor die (10) to the lower chip carrier substrate;placing a lid (28, 60) over the first semiconductor die (10) to serve as a positive stand-off;stacking an upper chip carrier substrate (30, 46) of thermally conductive material over the lower chip carrier substrate onto, the upper chip carrier substrate having a top and a bottom surface;depositing a plurality of solder bumps (23) on the bottom surface of the upper chip carrier substrate;mounting a second semiconductor die (10', 18) to the upper chip carrier substrate;electrically coupling the semiconductor die (10', 18) to the upper chip carrier substrate;aligning the upper chip carrier substrate (30) to the lower chip carrier substrate (26) by position of the solder bumps (15, 16, 23);and reflowing the solder bumps together to achieve physical and electrical connections (29), said electrical connections being hour-glass shaped.