DocumentCode
111868
Title
Silicon-Embedding Approaches to 3-D Toroidal Inductor Fabrication
Author
Xuehong Yu ; Minsoo Kim ; Herrault, Florian ; Chang-Hyeon Ji ; Jungkwung Kim ; Allen, Mark G.
Author_Institution
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Volume
22
Issue
3
fYear
2013
fDate
Jun-13
Firstpage
580
Lastpage
588
Abstract
This paper presents complementary-metal-oxide-semiconductor-compatible silicon-embedding techniques for on-chip integration of microelectromechanical-system devices with 3-D complex structures. By taking advantage of the “dead volume” within the bulk of the silicon wafer, functional devices with large profile can be embedded into the substrate without consuming valuable die area on the wafer surface or increasing the packaging complexity. Furthermore, through-wafer interconnects can be implemented to connect the device to the circuitry on the wafer surface. The key challenge of embedding structures within the wafer volume is processing inside deep trenches. To achieve this goal in an area-efficient manner, straight-sidewall trenches are desired, adding additional difficulty to the embedding process. Two approaches to achieve this goal are presented in this paper, i.e., a lithography-based process and a shadow-mask-based process. The lithography-based process utilizes a spray-coating technique and proximity lithography in combination with thick epoxy processing and laminated dry-film lithography. The shadow-mask-based process employs a specially designed 3-D silicon shadow mask to enable simultaneous metal patterning on both the vertical sidewall and the bottom surface of the trench during deposition, eliminating multiple lithography steps and reducing the process time. Both techniques have been demonstrated through the embedding of the topologically complex 3-D toroidal inductors into the silicon substrate for power supply on-chip (PwrSoC) applications. Embedded 3-D inductors that possess 25 turns and a diameter of 6 mm in a silicon trench of 300-μm depth achieve overall inductances of 45-60 nH, dc resistances of 290-400 mΩ, and quality factors of 16-17.5 at 40-70 MHz.
Keywords
CMOS integrated circuits; elemental semiconductors; inductors; masks; micromechanical devices; photolithography; silicon; spray coatings; 3D complex structures; 3D silicon shadow mask; 3D toroidal inductor fabrication; PwrSoC applications; Si; complementary-metal-oxide-semiconductor-compatible silicon-embedding techniques; dead volume; deep trenches; depth 300 mum; embedded 3D inductors; epoxy processing; frequency 40 MHz to 70 MHz; functional devices; laminated dry-film lithography; lithography-based process; metal patterning; microelectromechanical-system devices; packaging complexity; power supply on-chip application; proximity lithography; resistance 290 mohm to 400 mohm; shadow-mask-based process; silicon wafer surface; silicon-embedding approach; spray-coating technique; straight-sidewall trenches; through-wafer interconnects; topologically complex 3D toroidal inductors; Conductors; Fabrication; Inductors; Lithography; Metals; Silicon; Surface treatment; 3-D shadow mask; Deep-trench patterning; silicon-embedding; spray coating; toroidal inductor;
fLanguage
English
Journal_Title
Microelectromechanical Systems, Journal of
Publisher
ieee
ISSN
1057-7157
Type
jour
DOI
10.1109/JMEMS.2012.2233718
Filename
6401141
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