Electron Emission from Diamondoids: A Diffusion Quantum Monte Carlo Study
- 22 August 2005
- journal article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 95 (9) , 096801
- https://doi.org/10.1103/physrevlett.95.096801
Abstract
We present density-functional theory (DFT) and quantum Monte Carlo (QMC) calculations designed to resolve experimental and theoretical controversies over the optical properties of H-terminated C nanoparticles (diamondoids). The QMC results follow the trends of well-converged plane-wave DFT calculations for the size dependence of the optical gap, but they predict gaps that are 1-2 eV higher. They confirm that quantum confinement effects disappear in diamondoids larger than 1 nm, which have gaps below that of bulk diamond. Our QMC calculations predict a small exciton binding energy and a negative electron affinity (NEA) for diamondoids up to 1 nm, resulting from the delocalized nature of the lowest unoccupied molecular orbital. The NEA suggests a range of possible applications of diamondoids as low-voltage electron emitters.Keywords
All Related Versions
This publication has 22 references indexed in Scilit:
- Soft X-ray emission study of nano-structured carbonJournal of Electron Spectroscopy and Related Phenomena, 2004
- Heat-Induced Transformation of Nanodiamond into a Tube-Shaped Fullerene: A Molecular Dynamics SimulationPhysical Review Letters, 2003
- Coexistence of bucky diamond with nanodiamond and fullerene carbon phasesPhysical Review B, 2003
- Quantum Confinement and Fullerenelike Surface Reconstructions in NanodiamondsPhysical Review Letters, 2003
- Isolation and Structure of Higher Diamondoids, Nanometer-Sized Diamond MoleculesScience, 2003
- Quantum Confinement Effect in Diamond Nanocrystals Studied by X-Ray-Absorption SpectroscopyPhysical Review Letters, 1999
- Ab initiocalculation of electron affinities of diamond surfacesPhysical Review B, 1998
- Shape Transition of Germanium Nanocrystals on a Silicon (001) Surface from Pyramids to DomesScience, 1998
- Quantum Confinement in Size-Selected, Surface-Oxidized Silicon NanocrystalsScience, 1993
- Quantum photoyield of diamond(111)—A stable negative-affinity emitterPhysical Review B, 1979