Journal of the American Chemical Society · 2010 · 128 citations · 15 references
Selective synthesis of single‑walled carbon nanotubes with specific (n,m) structures is desired, but current chirality control is limited to small‑diameter (6,5) and (7,5) nanotubes, so extending control to other (n,m) species is essential. The authors aim to demonstrate highly selective synthesis of (9,8) SWCNTs on Co‑incorporated TUD‑1 catalysts and to advance toward producing (n,m)‑specific nanotube materials via post‑synthetic sorting. Co‑incorporated TUD‑1 catalysts achieve selective (9,8) growth through a low reduction temperature (483 °C), large surface area, and strong metal–support interaction that stabilizes Co clusters. Prereducing the catalysts in H₂ at 500 °C yields 59.1 % (9,8) semiconducting nanotubes, and devices made from these nanotubes show higher mobility and a greater fraction of semiconducting behavior than those made from (6,5) nanotubes.
Selective synthesis of single walled carbon nanotubes (SWCNTs) with specific (n,m) structures is desired for many potential applications. Current chirality control growth has only achieved at small diameter (6,5) and (7,5) nanotubes. Each (n,m) species is a distinct molecule with structure-dependent properties; therefore it is essential to extend chirality control to various (n,m) species. In this communication, we demonstrate the highly selective synthesis of (9,8) nanotubes on a cobalt incorporated TUD-1 catalyst are (Co-TUD-1). When catalysts were prereduced in H2 at the optimized temperature of 500 °C, 59.1% of semiconducting nanotubes have the (9,8) structure. The uniqueness of Co-TUD-1 relies on its low reduction temperature (483 °C), large surface area, and strong metal−support interaction, which stabilizes Co clusters responsible for the growth of (9,8) nanotubes. SWCNT thin film field effect transistors fabricated using (9,8) nanotubes from our synthesis process have higher average device mobility and a higher fraction of semiconducting devices than those using (6,5) nanotubes. Combining with further postsynthetic sorting techniques, our selective synthesis method brings us closer to the ultimate goal of producing (n,m) specific nanotube materials.
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Band Gap Fluorescence from Individual Single-Walled Carbon Nanotubes
Michael O’Connell, Sergei M. Bachilo, Chad Huffman et al. · Science · 2002 · 3.8K citations