TY - GEN
T1 - CNT arrays grown upon catalytic nickel particles as applied in the nanoelectronic devices
T2 - Ab initio simulation of growth mechanism
AU - Zhukovskii, Y. F.
AU - Kotomin, E. A.
AU - Piskunov, S.
AU - Bellucci, S.
PY - 2012
Y1 - 2012
N2 - Carbon nanotubes, due to their exceptional and unique properties, have aroused a lot of research interest making them promising candidates as interconnects for future high-speed nanoelectronics. To predict a growth mechanism for carbon nanotubes (CNTs) upon a metal particle as synthesized in the porous membrane block then incorporated in the nanoelectronic device, we have performed a series of large-scale DFT-LCAO calculations using the CRYSTAL-06 code. Carbon adatoms can appear upon the densely-packed Ni(111) catalyst surface due to dissociation of hydrocarbon molecules (e.g., CH 4) when applying the CVD method for the nanotube growth. We have started with adsorption properties of carbon atoms. Then, we have simulated the regular C/Ni(111) interface, where adatoms initially form a monolayer which can be disintegrated to nanoflakes gradually transforming into CNT embryos (in the form of semi-fullerenes) and, finally, into the capped CNTs (d C-C ≈ 1.42 Å) with either armchair or zigzag chirality. Periodicity of this system results in models of infinite arrays (bundles) of single-walled (SW) CNTs with a diameter 8.0-8.2 Å and the inter-tube distance 4.2-4.6 Å (depending on chirality). Analyzing the results of calculations on the CNT/Ni interconnect, we have observed a considerable transfer of the electronic charge from the metallic catalyst towards the nanotube (up to ∼1.4 e per contacting C atom) accompanying by substantial redistribution of the electronic density, especially in the case of nanostructured Ni(111) containing nickel nanoclusters. The nanostructured morphology of metal substrate has been found to be the most effective for the growth of CNT bundles.
AB - Carbon nanotubes, due to their exceptional and unique properties, have aroused a lot of research interest making them promising candidates as interconnects for future high-speed nanoelectronics. To predict a growth mechanism for carbon nanotubes (CNTs) upon a metal particle as synthesized in the porous membrane block then incorporated in the nanoelectronic device, we have performed a series of large-scale DFT-LCAO calculations using the CRYSTAL-06 code. Carbon adatoms can appear upon the densely-packed Ni(111) catalyst surface due to dissociation of hydrocarbon molecules (e.g., CH 4) when applying the CVD method for the nanotube growth. We have started with adsorption properties of carbon atoms. Then, we have simulated the regular C/Ni(111) interface, where adatoms initially form a monolayer which can be disintegrated to nanoflakes gradually transforming into CNT embryos (in the form of semi-fullerenes) and, finally, into the capped CNTs (d C-C ≈ 1.42 Å) with either armchair or zigzag chirality. Periodicity of this system results in models of infinite arrays (bundles) of single-walled (SW) CNTs with a diameter 8.0-8.2 Å and the inter-tube distance 4.2-4.6 Å (depending on chirality). Analyzing the results of calculations on the CNT/Ni interconnect, we have observed a considerable transfer of the electronic charge from the metallic catalyst towards the nanotube (up to ∼1.4 e per contacting C atom) accompanying by substantial redistribution of the electronic density, especially in the case of nanostructured Ni(111) containing nickel nanoclusters. The nanostructured morphology of metal substrate has been found to be the most effective for the growth of CNT bundles.
KW - Adsorption and dissociation of CH molecule
KW - Association of C adatoms
KW - DFT-LCAO CRYSTAL code
KW - Formation of carbon semi-fullerenes
KW - Growth of capped CNTs
KW - Smooth and nanostructured Ni(111) substrates
KW - Swelling of carbon nanoflakes
UR - https://www.scopus.com/pages/publications/84862892417
UR - https://link.springer.com/chapter/10.1007/978-94-007-4119-5_9
U2 - 10.1007/978-94-007-4119-5_9
DO - 10.1007/978-94-007-4119-5_9
M3 - Conference paper
AN - SCOPUS:84862892417
SN - 9789400741188
T3 - NATO Science for Peace and Security Series B: Physics and Biophysics
SP - 101
EP - 114
BT - Nanodevices and Nanomaterials for Ecological Security
A2 - Shunin, Yuri
A2 - Kiv, Arnold
ER -