Control of the morphology of carbon nanotubes (CNT) is fundamental for many applications. It is known that the catalyst distributions influence the vertical alignment and the height of the CNT. In this work we investigate the influence of the pre-anneal time and reductant gases, specifically NH3 and H2 as well as combinations thereof, on the nanoparticle (NP) formation and CNT growth. The gases H2, NH3 show opposite roles during the dewetting of 1 nm Fe catalyst layer. The H2 favours uniform NP distributions (mean diameter of 15 nm) and the NH3 forms large clusters. Playing with double annealing steps H2- NH3 we obtained NP with larger mean diameters μ = 20 nm. We observed a mismatch between the diameters of the NP directly after annealing ...
The main objective of the present thesis is to deepen the understanding of the mechanisms involved i...
<font face="times new roman,times" size="2">Catalyst aggregation affects the growth of carbon nanotu...
Understanding the collective growth of carbon nanotube (CNT) populations is key to tailoring their p...
Control of the morphology of carbon nanotubes (CNT) is fundamental for many applications. It is know...
We systematically studied the influence of pretreatment condition on the morphology of Fe/Al2O3 cata...
Close control over the active catalyst phase and hence carbon nanotube structure remains challenging...
For practical deployment of carbon nanotubes, an understanding of their growth mechanism is required...
By controlling the timing and duration of hydrogen exposure in a fixed thermal process, we tuned the...
The effects of pretreatment of iron catalyst for carbon nanotube (CNT) growth was studied. CNTs were...
Well-aligned carbon nanotubes with controllable properties were grown on porous silicon substrates b...
The nucleation and growth of carbon nanotubes (CNTs) occurs through a vapor-liquid-solid (VLS) mecha...
[[abstract]]A systematic study on the effects of NH3 on the growth of carbon nanotubes in atmospheri...
Carbon nanotubes (CNTs) were grown on thin iron (Fe) films on SiO 2/Si substrates by chemical vapor ...
Nowadays the main challenge to fully exploit carbon nanotubes (CNTs) for potential applications cons...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 20...
The main objective of the present thesis is to deepen the understanding of the mechanisms involved i...
<font face="times new roman,times" size="2">Catalyst aggregation affects the growth of carbon nanotu...
Understanding the collective growth of carbon nanotube (CNT) populations is key to tailoring their p...
Control of the morphology of carbon nanotubes (CNT) is fundamental for many applications. It is know...
We systematically studied the influence of pretreatment condition on the morphology of Fe/Al2O3 cata...
Close control over the active catalyst phase and hence carbon nanotube structure remains challenging...
For practical deployment of carbon nanotubes, an understanding of their growth mechanism is required...
By controlling the timing and duration of hydrogen exposure in a fixed thermal process, we tuned the...
The effects of pretreatment of iron catalyst for carbon nanotube (CNT) growth was studied. CNTs were...
Well-aligned carbon nanotubes with controllable properties were grown on porous silicon substrates b...
The nucleation and growth of carbon nanotubes (CNTs) occurs through a vapor-liquid-solid (VLS) mecha...
[[abstract]]A systematic study on the effects of NH3 on the growth of carbon nanotubes in atmospheri...
Carbon nanotubes (CNTs) were grown on thin iron (Fe) films on SiO 2/Si substrates by chemical vapor ...
Nowadays the main challenge to fully exploit carbon nanotubes (CNTs) for potential applications cons...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 20...
The main objective of the present thesis is to deepen the understanding of the mechanisms involved i...
<font face="times new roman,times" size="2">Catalyst aggregation affects the growth of carbon nanotu...
Understanding the collective growth of carbon nanotube (CNT) populations is key to tailoring their p...