• DocumentCode
    1924268
  • Title

    Module miniaturization by ultra thin package stacking

  • Author

    Löher, Thomas ; Schütze, David ; Ostmann, Andreas ; Aschenbrenner, Rolf

  • Author_Institution
    Tech. Univ. Berlin, Berlin, Germany
  • fYear
    2010
  • fDate
    24-26 Aug. 2010
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    The scope of the European project TIPS (Thin Interconnected Package Stacks) is the fabrication of ultra thin packages for electronic components and the subsequent stacking and interconnection of those packages to form highly compact modules. In the first part of this paper approaches to fabricate ultra thin 10 × 10 mm packages by embedding technologies for chips into printed circuit board environments will be discussed. Technologies for commercial flexible printed circuit board substrates (polyimide sandwiched in Cu layers) and respective fabrication processes are used. After initial patterning of the Cu the chips are die bonded to the flex substrates and subsequently lamination into build up layers. Electrical contact between the chip and a fan out routing on the outer layer of the package are made by micro via formation, electroplating and wet chemical structuring of the metal layers. The thickness of the embedded components is constricted to 50 μm in order to constrain the package thicknesses to a maximum of 100 μm with this approach. Packages are fabricated in batches of 150 × 150 mm sheets of flex substrates. Stacking of individual packages can be performed in an automated package by package placement process using a frame as alignment tool and typical flexible printed circuit boards adhesives. In this way only known-good-packages are stacked in order to minimize yield loss. However, a more straight forward process is stacking of the packages using fabrication batches and established multilayer printed circuit board technologies. The disadvantage is the potential yield loss if one of the packages in a stacked layer is faulty. For either type of stacking process the individual stacks have to be milled out of the stack fabrication batch. After stacking and sound mechanical interconnection the electronic interconnection between layers is made by the sequence mechanical through hole drilling, plating and wet chemical structuring. Tes- - t issues, design considerations and results of first fabrication runs will be presented and discussed.
  • Keywords
    electronics packaging; interconnections; printed circuits; TIPS; automated package-by-package placement process; chemical structuring; compact modules; design considerations; die bonding; electrical contact; electronic components; electronic interconnection; electroplating; fabrication processes; fan out routing; flex substrates; flexible printed circuit board substrates; flexible printed circuit boards adhesives; known-good-packages; metal layers; micro via formation; module miniaturization; package interconnection; package thicknesses; sequence mechanical through hole drilling; sound mechanical interconnection; stack fabrication batch; subsequent stacking; test issues; thin interconnected package stacks; ultrathin package stacking; wet chemical structuring; yield loss minimization; Copper; Fabrication; Integrated circuit interconnections; Lamination; Printed circuits; Reliability; Stacking;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    CPMT Symposium Japan, 2010 IEEE
  • Conference_Location
    Tokyo
  • Print_ISBN
    978-1-4244-7593-3
  • Type

    conf

  • DOI
    10.1109/CPMTSYMPJ.2010.5679546
  • Filename
    5679546