STTR Phase I: Novel Electrode Materials for Multi-Layer Capacitors

Information

  • NSF Award
  • 0512933
Owner
  • Award Id
    0512933
  • Award Effective Date
    7/1/2005 - 19 years ago
  • Award Expiration Date
    1/31/2007 - 17 years ago
  • Award Amount
    $ 100,000.00
  • Award Instrument
    Standard Grant

STTR Phase I: Novel Electrode Materials for Multi-Layer Capacitors

This Small Business Technology Transfer Phase I project will develop technology for the manufacture of low cost miniaturized multi-layer capacitors (MLCs). A titania (TiO2) thin film will be deposited on 60 to 150 nanometer nickel (Ni) particles to protect the ultrafine Ni particles from slow oxidation degradation while simultaneously providing a chemically compatible surface with the dielectric barium titanate (BaTiO3) layer during processing. The TiO2 film will allow the sintering temperature of the ultrafine Ni particles to be increased so the intercleaved Ni/BaTiO3 electrode/dielectric multilayers can be easily fabricated upon firing. The manufacture of composite TiO2/Ni particles via novel Atomic Layer Deposition (ALD) thin film technology allows for the synthesis of composite ultrafine Ni substrate particles with dual effectiveness (resisting oxidation, increasing sintering temperature). In the first aspect of this work, TiO2 will be deposited on 60 to 150 nm Ni particles by ALD. In the second aspect of this work, the composite powders will be characterized for film quality, oxidation resistance, and thermal expansion upon heating (i.e. sinterability). In the third aspect of this work, a 1 kg sample of the composite powder will be synthesized and supplied to a partner/customer for feasibility evaluation.<br/><br/>Commercially, the potential impact of successful large scale processing extends far beyond this proposed MLC application. Nanoscience will only achieve true "disruptive" technology status if the individual surfaces of ultrafine particles can be functionalized. ALD nanocoating of ultrafine particles provides such an opportunity. It is now possible to produce ultrafine particles with designed electrical, magnetic, optical, mechanical, rheological, or other properties. Markets for such functionalized ultra-fine powders include microelectronics, defense, hard metals, cosmetics, drug delivery, energetic materials, and polymer/ceramic nanocomposites, among others. A better understanding of the nanocoating of ultra-fine particles and its cost/performance value will be developed.

  • Program Officer
    William Haines
  • Min Amd Letter Date
    5/20/2005 - 19 years ago
  • Max Amd Letter Date
    6/20/2006 - 18 years ago
  • ARRA Amount

Institutions

  • Name
    ALD NANOSOLUTIONS, INC.
  • City
    Broomfield
  • State
    CO
  • Country
    United States
  • Address
    580 Burbank St, Unit 100
  • Postal Code
    800207166
  • Phone Number
    3033184145

Investigators

  • First Name
    Christopher
  • Last Name
    Gump
  • Email Address
    cgump@aldnanosolutions.com
  • Start Date
    5/20/2005 12:00:00 AM

FOA Information

  • Name
    Industrial Technology
  • Code
    308000