• DocumentCode
    2066220
  • Title

    Via first approach optimisation for Through Silicon Via applications

  • Author

    Laviron, Cyrille ; Dunne, Brendan ; Lapras, Valérie Rie ; Galbiati, Paola ; Henry, David ; Toia, Fabrizio ; Moreau, Stéphane Phane ; Anciant, Romain ; Brunet-Manquat, Cahty ; Sillon, Nicolas

  • Author_Institution
    CEA, MINATEC, Grenoble
  • fYear
    2009
  • fDate
    26-29 May 2009
  • Firstpage
    14
  • Lastpage
    19
  • Abstract
    Through silicon via (TSV) is a very attractive solution for 3D stacking. Currently the main technique in industrial TSV processes is the via-last approach. But the via-first approach has also many advantages and in particular allows the use of high thermal budget materials for high voltage applications. In this work, we will show results on process development and integration of 100 mum deep annular TSVs in thick silicon on insulator (SOI) or on bulk substrate, with final validation through electrical characterizations. First the complete process will be presented for both approaches. Then, process development work and issues will be addressed. A special focus will be done on etching in the SOI case. A 3-step deep reactive ion etch (DRIE) was developed, as the BOX etch profile can induce some undercut leading to voids during the via filling step. The via sidewall isolation is discussed, with comparisons of different materials, including thermal oxide and high temperature oxide (HTO) or even a mix of these oxides. Results will be presented including breakdown field and thickness conformity on via side walls.Filling with highly doped poly silicon is compared to tungsten. Chemical mechanical polishing (CMP) is then used to planarize the surface to optimize the surface topology for the subsequent semiconductor process. The backside process is also discussed, from the point of view of the optimization of the thinning, stress release and surface finishing techniques to facilitate the backside contact and metallization processes. All the process steps are optimized to achieve a TSV with the best shape to minimize weak points for leakage and breakdown voltage to be able to handle high voltages in the region of 200 V. Simulation is also used to study the relative impact of different local TSV profiles on the final electric field and then optimize the process. Then electrical characterizations will be presented. A specific test vehicle was designed to study the TSV density an- d proximity impact, number of rings and ring width. Daisy chains, specific structures to measure TSV resistance similar to Kelvin structures, interdigitated chains to measure via leakage, and special structures to stress at very high voltage (up to 1000 V), were designed. The electrical results from those specific structures will be discussed. Finally, future developments will be discussed, in particular the integration of these TSVs in a real high-voltage semiconductor process.
  • Keywords
    chemical mechanical polishing; etching; interconnections; isolation technology; proximity effect (lithography); surface finishing; surface topography; 3D stacking; BOX etch profile; Kelvin structures; Si; chemical mechanical polishing; contact processes; deep reactive ion etch; etching; high-temperature oxide; interdigitated chains; metallization processes; proximity impact; size 100 mum; stress release; surface finishing techniques; surface topology; thinning; through silicon via applications; via filling step; via sidewall isolation; voids; voltage 1000 V; voltage 200 V; Electrical resistance measurement; Etching; Filling; Silicon on insulator technology; Stacking; Stress measurement; Substrates; Temperature; Through-silicon vias; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electronic Components and Technology Conference, 2009. ECTC 2009. 59th
  • Conference_Location
    San Diego, CA
  • ISSN
    0569-5503
  • Print_ISBN
    978-1-4244-4475-5
  • Electronic_ISBN
    0569-5503
  • Type

    conf

  • DOI
    10.1109/ECTC.2009.5073990
  • Filename
    5073990