We report on the fabrication and characterization of densified and transferred carbon nanotube forests for electronic interconnect application. A simple, low cost and quality method is developed for densifying vertically-aligned carbon nanotube (VA-CNTs) forests at room temperature. Commercially available paper is utilized in this work to serve as a solvent carrier. Highly densified CNT bundles are formed by the sorption of evaporative liquid from the paper into carbon nanotube forests. An average Young’s modulus increase from approximately 15.8 to 111.9 MPa is extrapolated from the measured load–displacement curves in the compression tests of the as-densified VA-CNTs. Subsequent low temperature transfer method is used to transfer the VA-CN...
Carbon nanotubes (CNTs) were proposed as a promising interconnection material in future miniaturized...
Understanding and controlling the hierarchical self-assembly of carbon nanotubes (CNTs) is vital for...
nanotubes, chemical vapor deposition, rolling, printing, nanomanufacturing We present a continuous m...
In this paper we report a novel method of transferring thermally grown vertically aligned carbon nan...
Carbon nanotube (CNT) has been well-known since its discovery owing to its unique properties such as...
Carbon nanotubes (CNTs) are considered as a candidate material for future electronicinterconnect app...
Carbon nanotubes (CNT) have been proposed for many electronic applications, such as field emitter, d...
Through-silicon vias (TSVs) filled with densified and transferred carbon nanotube (CNT) forests are ...
Carbon Nanotubes (CNTs) have excellent electrical, thermal and mechanical properties. They are mecha...
The high growth temperature of carbon nanotubes ( CNTs) hinders their direct assembly on temperature...
Vertically aligned carbon nanotube (CNT) 'forest' microstructures fabricated by chemical vapor depos...
A new and versatile vapor densification method is developed to fabricate various three-dimensional a...
The continued miniaturization and proliferation of electronics is met with significant thermal manag...
A dry method for densifying vertically aligned carbon nanotube bundles is proposed and experimentall...
We present a general catalyst design to synthesize ultrahigh density, aligned forests of carbon nano...
Carbon nanotubes (CNTs) were proposed as a promising interconnection material in future miniaturized...
Understanding and controlling the hierarchical self-assembly of carbon nanotubes (CNTs) is vital for...
nanotubes, chemical vapor deposition, rolling, printing, nanomanufacturing We present a continuous m...
In this paper we report a novel method of transferring thermally grown vertically aligned carbon nan...
Carbon nanotube (CNT) has been well-known since its discovery owing to its unique properties such as...
Carbon nanotubes (CNTs) are considered as a candidate material for future electronicinterconnect app...
Carbon nanotubes (CNT) have been proposed for many electronic applications, such as field emitter, d...
Through-silicon vias (TSVs) filled with densified and transferred carbon nanotube (CNT) forests are ...
Carbon Nanotubes (CNTs) have excellent electrical, thermal and mechanical properties. They are mecha...
The high growth temperature of carbon nanotubes ( CNTs) hinders their direct assembly on temperature...
Vertically aligned carbon nanotube (CNT) 'forest' microstructures fabricated by chemical vapor depos...
A new and versatile vapor densification method is developed to fabricate various three-dimensional a...
The continued miniaturization and proliferation of electronics is met with significant thermal manag...
A dry method for densifying vertically aligned carbon nanotube bundles is proposed and experimentall...
We present a general catalyst design to synthesize ultrahigh density, aligned forests of carbon nano...
Carbon nanotubes (CNTs) were proposed as a promising interconnection material in future miniaturized...
Understanding and controlling the hierarchical self-assembly of carbon nanotubes (CNTs) is vital for...
nanotubes, chemical vapor deposition, rolling, printing, nanomanufacturing We present a continuous m...