Abstract
The techniques of colloidal chemistry permit the routine creation of semiconductor nanocrystals1,2 whose dimensions are much smaller than those that can be realized using lithographic techniques3,4,5,6. The sizes of such nanocrystals can be varied systematically to study quantum size effects or to make novel electronic or optical materials with tailored properties7,8,9. Preliminary studies of both the electrical10,11,12,13 and optical properties14,15,16 of individual nanocrystals have been performed recently. These studies show clearly that a single excess charge on a nanocrystal can markedly influence its properties. Here we present measurements of electrical transport in a single-electron transistor made from a colloidal nanocrystal of cadmium selenide. This device structure enables the number of charge carriers on the nanocrystal to be tuned directly, and so permits the measurement of the energy required for adding successive charge carriers. Such measurements are invaluable in understanding the energy-level spectra of small electronic systems, as has been shown by similar studies of lithographically patterned quantum dots3,4,5,6 and small metallic grains17.
This is a preview of subscription content, access via your institution
Relevant articles
Open Access articles citing this article.
-
Deterministic transfer of optical-quality carbon nanotubes for atomically defined technology
Nature Communications Open Access 25 May 2021
-
Magneto-transport properties of a single molecular transistor in the presence of electron-electron and electron-phonon interactions and quantum dissipation
Scientific Reports Open Access 11 November 2019
Access options
Subscribe to this journal
Receive 51 print issues and online access
$199.00 per year
only $3.90 per issue
Rent or buy this article
Get just this article for as long as you need it
$39.95
Prices may be subject to local taxes which are calculated during checkout




References
Brus, L. Quantum crystallites and nonlinear optics. Appl. Phys. A 53, 465–474 (1991).
Alivisatos, A. P. Semiconductor clusters, nanocrystals, and quantum dots. Science 271, 933–937 (1996).
Kastner, M. A. Artificial atoms. Phys. Today 46, 24–31 (1993).
Ashoori, R. C. Electrons in artificial atoms. Nature 380, 559 (1996).
Tarucha, S., Austing, D. G., Honda, T., van der Hage, R. J. & Kouwenhoven, L. P. Shell filling and spin effects in a few electron quantum dot. Phys. Rev. Lett. 77, 3613–3616 (1996).
Kouwenhoven, L. P. & McEuen, P. L. in Nanoscience and Technology (ed. Timp, G.) (AIP Press, New York, in the press).
Colvin, V. L., Schlamp, M. C. & Alivisatos, A. P. Light-emitting diodes made from cadmium selenide nanocrystals and a semiconducting polymer. Nature 370, 354–357 (1994).
Dabbousi, B. O., Bawendi, M. G., Onitsuka, O. & Rubner, M. F. Electroluminescence from CdSe quantum-dot/polymer composites. Appl. Phys. Lett. 66, 1316–1318 (1995).
Greenham, N. C., Peng, X. & Alivisatos, A. P. Charge separation and transport in conjugated-polymer/semiconductor-nanocrystal composites studied by photoluminescence quenching and photoconductivity. Phys. Rev. B 54, 17628–17637 (1996).
Alperson, B., Cohen, S., Rubinstein, I. & Hodes, G. Room-temperature conductance spectroscopy of CdSe quantum dots using a modified scanning force microscope. Phys. Rev. B 53, 17017–17020 (1995).
Klein, D. L., McEuen, P. L., Bowen Katari, J. E. & Alivisatos, A. P. An approach to electrical studies of single nanocrystals. Appl. Phys. Lett. 68, 2574–2576 (1996).
Andres, R. P. et al. Coulomb staircase at room temperature in a self-assembled molecular nanostructure. Science 272, 1323–1325 (1996).
Sato, T. & Ahmed, H. Observation of a Coulomb staircase in electron transport through a molecularly linked chain of gold colloidal particles. Appl. Phys. Lett. 70, 2579–2761 (1997).
Blanton, S. A., Dehestani, A., Lin, P. C. & Guyotsionnest, P. Photoluminescence of single semiconductor nanocrystallites by two-photon excitation microscopy. Chem. Phys. Let. 229, 317–322 (1994).
Empedocles, S. A., Norris, D. J. & Bawendi, M. G. Photoluminescence spectroscopy of single CdSe nanocrystallite quantum dot. Phys. Rev. Lett. 77, 3873–3876 (1996).
Nirmal, M. et al. Fluorescence intermittency in single cadmium selenide nanocrystals. Nature 383, 802–804 (1996).
Ralph, D. C., Black, C. T. & Tinkham, M. Gate-voltage studies of discrete electronic states in aluminum nanoparticles. Phys. Rev. Lett. 78, 4087–4090 (1997).
Bowen-Katari, J. E., Colvin, V. L. & Alivisatos, A. P. X-ray photoelectron spectroscopy of CdSe nanocrystals with applications to studies of the nanocrystal surface. J. Phys. Chem. 98, 4109–4117 (1994).
Murray, C. B., Norris, D. B. & Bawendi, M. G. Synthesis and characterization of nearly monodisperse CdE (E = S, SE, TE) semiconductor nanocrystals. J. Am. Chem. Soc. 115, 8706–8715 (1993).
Porter, M. D., Bright, T. B., Allara, D. L. & Chidsey, C. E. D. Spontaneously organized molecular assemblies. IV. Structural characterization of n-alkyl thiol monolayers on gold by optical ellipsometry, infrared spectroscopy, and electrochemistry. J. Am. Chem. Soc. 109, 3559–3568 (1987).
Bain, C. D. et al. Formation of monolayer films by the spontaneous assembly of organic thiols from solution onto gold. J. Am. Chem. Soc. 111, 321–335 (1989).
Boulas, C., Davidovits, J. V., Rondelez, F. & Vuillamueme, D. Suppression of charge carrier tunneling through organic self-assembled monolayers. Phys. Rev. Lett. 76, 4797–4800 (1996).
Ekimov, I. et al. Absorption and intensity-dependent photoluminescence measurements on CdSe quantum dots: assignment of the first electronic transitions. J. Opt. Soc. Am. 10, 100–107 (1993).
Author information
Authors and Affiliations
Corresponding author
Rights and permissions
About this article
Cite this article
Klein, D., Roth, R., Lim, A. et al. A single-electron transistor made from a cadmium selenide nanocrystal. Nature 389, 699–701 (1997). https://doi.org/10.1038/39535
Received:
Accepted:
Issue Date:
DOI: https://doi.org/10.1038/39535
This article is cited by
-
Preparation and characterization of SbAs nanorods for opto-electronics applications
Bulletin of Materials Science (2023)
-
Branched Gold Nanostructures Through a Facile Fructose Mediated Microwave Route
Journal of Cluster Science (2022)
-
Quantum dots-sensitized solar cells: a review on strategic developments
Bulletin of Materials Science (2022)
-
Deterministic transfer of optical-quality carbon nanotubes for atomically defined technology
Nature Communications (2021)
-
Sol–gel synthesized siloxane hybrid materials for display and optoelectronic applications
Journal of Sol-Gel Science and Technology (2021)
Comments
By submitting a comment you agree to abide by our Terms and Community Guidelines. If you find something abusive or that does not comply with our terms or guidelines please flag it as inappropriate.