Confined propagation of covalent chemical reactions on single-walled carbon nanotubes.

Deng, Shunliu; Zhang, Yin; Brozena, Alexandra H; Mayes, Maricris Lodriguito; Banerjee, Parag; Chiou, Wen-An; Rubloff, Gary W; Schatz, George C et al. · Nat Commun · 2011

basic_science · Level V

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Abstract

Covalent chemistry typically occurs randomly on the graphene lattice of a carbon nanotube because electrons are delocalized over thousands of atomic sites, and rapidly destroys the electrical and optical properties of the nanotube. Here we show that the Billups-Birch reductive alkylation, a variant of the nearly century-old Birch reduction, occurs on single-walled carbon nanotubes by defect activation and propagates exclusively from sp(3) defect sites, with an estimated probability more than 1,300 times higher than otherwise random bonding to the 'π-electron sea'. This mechanism quickly leads to confinement of the reaction fronts in the tubular direction. The confinement gives rise to a series of interesting phenomena, including clustered distributions of the functional groups and a constant propagation rate of 18 ± 6  nm per reaction cycle that allows straightforward control of the spatial pattern of functional groups on the nanometre length scale.

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