ExLibris header image
SFX Logo
Title: Optical Transitions in Artificial Few-Electron Atoms Strongly Confined inside ZnO Nanocrystals
Source:

Physical Review Letters [0031-9007] Germeau, A yr:2003


Collapse list of basic services Basic
Full text
Full text available via American Physical Society Journals
GO
Document delivery
Request document via Library/Bibliothek GO
Users interested in this article also expressed an interest in the following:
1. Roest, AL. "Staircase in the electron mobility of a ZnO quantum dot assembly due to shell filling." Physical review letters 89.3 (2002): 36801-368014. Link to Full Text for this item Link to SFX for this item
2. "Enhancing Quantum Dot LED Efficiency by Tuning Electron Mobility in the ZnO Electron Transport Layer." Advanced materials interfaces. 3.22: 1600868-. Link to SFX for this item
3. Roest, A. "Long-range transport in an assembly of ZnO quantum dots: The effects of quantum confinement, coulomb repulsion and structural disorder." Chemphyschem 4.9 (2003): 959-966. Link to Full Text for this item Link to SFX for this item
4. Houtepen, A. "Reappraisal of Variable-Range Hopping in Quantum-Dot Solids." Nano letters 8.10 (2008): 3516-3520. Link to Full Text for this item Link to SFX for this item
5. Roest, AL. "Electron-conducting quantum-dot solids with ionic charge compensation." Faraday discussions of the Chemical Society 125 (2004): 55-62. Link to Full Text for this item Link to SFX for this item
6. Huang, W. "Surface modification enabled carrier mobility adjustment in CZTS nanoparticle thin films." Solar energy materials and solar cells 127 (2014): 188-192. Link to SFX for this item
7. Barrow, Steven J. "Mapping Bright and Dark Modes in Gold Nanoparticle Chains using Electron Energy Loss Spectroscopy." Nano letters 14.7 (2014): 4294967295-3808. Link to Full Text for this item Link to SFX for this item
8. Shim, M. "Comment on “Staircase in the Electron Mobility of a ZnO Quantum Dot Assembly due to Shell Filling” and “Optical Transitions in Artificial Few-Electron Atoms Strongly Confined inside ZnO Nanocrystals”." Physical review letters 91.16 (2003): 169703-. Link to Full Text for this item Link to SFX for this item
9. Magne, C. "Effects of ZnO film growth route and nanostructure on electron transport and recombination in dye-sensitized solar cells." Journal of Materials Chemistry A: Materials for energy and sustainability 1.6 (2013): 2079-2088. Link to SFX for this item
10. Meyer, J. "Transition Metal Oxides for Organic Electronics: Energetics, Device Physics and Applications." Advanced materials 24.40 (2012): 5408-27. Link to Full Text for this item Link to SFX for this item
11. Wiacek, A. "Effect of ionic strength on electrokinetic properties of oil/water emulsions with dipalmitoylphosphatidylcholine." Colloids and surfaces. A, Physicochemical and engineering aspects 302.1-3 (2007): 141-149. Link to SFX for this item
12. Nair, G. "Carrier multiplication yields in PbS and PbSe nanocrystals measured by transient photoluminescence." Physical review. B, Condensed matter and materials physics 78.12 (2008): 125325-. Link to Full Text for this item Link to SFX for this item
13. Law, M. "Structural, optical, and electrical properties of PbSe nanocrystal solids treated thermally or with simple amines." Journal of the American Chemical Society 130.18 (2008): 5974-5985. Link to Full Text for this item Link to SFX for this item
14. Klem, E. "Solution processed photovoltaic devices with 2% infrared monochromatic power conversion efficiency: Performance optimization and oxide formation." Advanced materials 20.18 (2008): 3433-3439. Link to Full Text for this item Link to SFX for this item
15. Vanmaekelbergh, D. "Electrochemical gating: A method to tune and monitor the (opto)electronic properties of functional materials." Electrochimica Acta 53.3 (2007): 1140-1149. Link to SFX for this item
16. Wood, A. "Size effects in ZnO: The cluster to quantum dot transition." Australian journal of chemistry 56.10 (2003): 1051-1057. Link to SFX for this item
17. Guyot-Sionnest, P. "Charging colloidal quantum dots by electrochemistry." Mikrochimica acta 160.3 (2008): 309-314. Link to Full Text for this item Link to SFX for this item
18. Clapp, Aaron R. "Fluorescence resonance energy transfer between quantum dot donors and dye-labeled protein acceptors." Journal of the American Chemical Society 126.1 (2004): 301-310. Link to Full Text for this item Link to SFX for this item
View More...
View Less...
Select All Clear All

Expand list of advanced services Advanced