Abstract:
The present invention relates to a composite material for use as a thermal interface material between a heat source and a heat sink. The present invention also relates to the method of synthesizing such a composite material. The composite material has high thermal conductivity, low thermal resistance and functions as an adhesive.
Abstract:
Borosilicate nanoparticles and method of making borosilicate nanoparticles. Advantages of the method include making the borosilicate nanoparticles at temperatures not greater than 200° C. The nanoparticles made are useful, for example, as fillers in coatings, adhesives, and composite articles.
Abstract:
A polymerizable composition includes: from 10x to 50x moles of at least one hydroxy-functional (meth)acrylate ester having a hydroxyl group; from 0. 1x to 25x moles of at least one metal nitrate compound, wherein the at least one metal nitrate compound comprises at least one metal selected from the group consisting of Al, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Ga, Ge, Mo, Pd, Ag, Cd, Sn, Sb, Te, Pt, Au, Pb, Bi, and combinations thereof; and from 0.001x to 0.0035x moles of at least one organic compound having a sterically hindered aminooxyl group, wherein x is a positive number. A polymerized composition, article including the polymerized composition, and method of making the article are also disclosed.
Abstract:
A coating composition which imparts antifog, antireflective, easy-cleaning, and/or antistatic properties to substrates coated therewith. The coating compositions utilize nanoparticles functionalized with amine groups and/or protected amine groups, and amine-reactive groups.
Abstract:
Borosilicate nanoparticles and method of making borosilicate nanoparticles. Advantages of the method include making the borosilicate nanoparticles at temperatures not greater than 200° C. The nanoparticles made are useful, for example, as fillers in coatings, adhesives, and composite articles.
Abstract:
Borosilicate nanoparticles and method of making borosilicate nanoparticles. Advantages of the method include making the borosilicate nanoparticles at temperatures not greater than 200 C. The nanoparticles made are useful, for example, as fillers in coatings, adhesives, and composite articles.
Abstract:
A coating composition which imparts antifog, antireflective, easy-cleaning, and/or antistatic properties to substrates coated therewith. The coating compositions utilize nanoparticles funtionalized with amine groups and/or protected amine groups, and amine-reactive groups.