Facile growth of high-yield and -crystallinity vertically aligned carbon nanotubes via a sublimated ferric chloride catalyst precursor

A facile and effective catalyst deposition process for carbon nanotube (CNT) array growth via chemical vapor deposition using a resistively heated thermal evaporation technique to sublimate FeCl 3 onto the substrate is demonstrated. The catalytic activity of the sublimated FeCl 3 catalyst precursor...

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Veröffentlicht in:Nano futures 2023-06, Vol.7 (2), p.25001
Hauptverfasser: Goktas, Hilal, Lachman, Noa, Kalfon-Cohen, Estelle, Wang, Xiaoxue, Torosian, Stephen, Gleason, Karen K, Wardle, Brian L
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Sprache:eng
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Zusammenfassung:A facile and effective catalyst deposition process for carbon nanotube (CNT) array growth via chemical vapor deposition using a resistively heated thermal evaporation technique to sublimate FeCl 3 onto the substrate is demonstrated. The catalytic activity of the sublimated FeCl 3 catalyst precursor is shown to be comparable to the well-studied e-beam evaporated Fe catalyst, and the resulting vertically aligned CNTs (VA-CNTs) have a similar diameter, walls, and defects, as well as improved bulk electrical conductivity. In contrast to standard e-beam-deposited Fe, which yields base-growth CNTs, scanning and transmission electron microscopy and X-ray photoelectron spectroscopy characterizations reveal a tip-growth mechanism for the FeCl 3 -derived VA-CNT arrays/forests. The FeCl 3 -derived forests have a lower (∼1/3 less) longitudinal indentation modulus, but higher longitudinal electrical conductivity (greater than twice) than that of the e-beam Fe-grown CNT arrays. The sublimation process to grow high-quality VA-CNTs is a highly facile and scalable process (extensive substrate shape and size, and moderate vacuum and temperatures) that provides a new route to synthesizing aligned CNT forests for numerous applications.
ISSN:2399-1984
2399-1984
DOI:10.1088/2399-1984/acc43c