| Ajayan et al. (1997). “Nanometre-size tubes of carbon” Rep. Prog. Phys., vol. 60: 1025-1062. |
| Chui et al. (1999). “A chemically functionalizable nanoporous material [Cu3(TMA)2(H2O)3]n” Science, vol. 283: 1148-1150. |
| Collier et al. (1998). “Nanocrystal superlattices” Annu. Rev. Phys. Chem., vol. 49: 371-404. |
| Ghadiri et al. (1993). “Self-assembling organic nanotubes based on a cyclic peptide architecture” Nature, vol. 366: 324-327. |
| Iijimi et al. (1991). “Helical microtubules of graphitic carbon” Nature, vol. 354: 56-58. |
| Kroto et al. (1987). “The stability of the fullerenes of Cn, with n=24, 28,32,36,50,60 and 70.” Nature, vol. 329(8): 529-5531. |
| Li et al. (1999). “Supertetrahedral sulfide crystals with giant cavities and channels” Science, vol. 283: 1145-1147. |
| Rao et al. (1996). “Fullerenes and carbon nanotubes” Current Opinion in Solid State & Materials in Science, vol. 1: 279-284. |
| Seeman (1999). “DNA engineering and its application nanotechnology” Tibtech, vol. 17: 437-443. |
| Stange et al. (1998). “Self-organizing molecular works” Biophysical Chemistry, vol. 72: 73-85. |
| Wukovitz et al. (1995). “Why protein crystals favour some space-groups over others” Nature Structural Biology, vol. 2(12): 1062-1067. |