You are here

Modified Polymer with High Permittivity for High Energy Storage Application

Award Information
Agency: Department of Defense
Branch: Navy
Contract: N00014-08-M-0189
Agency Tracking Number: N081-076-0597
Amount: $100,000.00
Phase: Phase I
Program: SBIR
Solicitation Topic Code: N08-076
Solicitation Number: 2008.1
Timeline
Solicitation Year: 2008
Award Year: 2008
Award Start Date (Proposal Award Date): 2008-05-12
Award End Date (Contract End Date): 2009-03-12
Small Business Information
7610 Eastmark Drive
College Station, TX 77840
United States
DUNS: 184758308
HUBZone Owned: No
Woman Owned: No
Socially and Economically Disadvantaged: No
Principal Investigator
 Naima Bestaoui-Spurr
 Research Scientist
 (979) 693-0017
 naima.bestaoui@lynntech.com
Business Contact
 G. Hitchens
Title: Vice President
Phone: (979) 693-0017
Email: duncan.hitchens@lynntech.com
Research Institution
N/A
Abstract

New dielectric materials for large pulsed power capacitors that show good processability, high thermal performance (> 120C) and storage capability of more than 10 J/cc are needed for future naval vessels. Current state-of-the-art capacitors are polypropylene based and deliver 1 J/cc. Even though polypropylene has a low dielectric constant of about 2, the superior storage capabilities are due to its high breakdown voltage and low losses. In this Phase I SBIR project, Lynntech will prepare nanostructured ceramic/polymer composite materials through a simple and scalable solution casting process. Solution casting will offer the ability to pattern electrodes in selected regions with controllable thickness of surface materials and is a cost effective industrial process. On the other hand, the nanofiller and the polymer will act cooperatively to improve the dielectric properties of the composite material. The surface functionalization of an inorganic nanofiller, having high dielectric constant and low losses, will increase its wetability with selected polymer/copolymer host materials, leading to a solution cast composite with good uniformity, and improved dielectric properties. Due to the good delamination and dispersion of nanofiller within the polymer, only a very low loading (< 12%) of inorganic material will be needed to have superior storage capabilities.

* Information listed above is at the time of submission. *

US Flag An Official Website of the United States Government