Localization of Metastable Atom Beams with Optical Standing Waves: Nanolithography at the Heisenberg Limit
- 5 June 1998
- journal article
- other
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 280 (5369) , 1583-1586
- https://doi.org/10.1126/science.280.5369.1583
Abstract
The spatially dependent de-excitation of a beam of metastable argon atoms, traveling through an optical standing wave, produced a periodic array of localized metastable atoms with position and momentum spreads approaching the limit stated by the Heisenberg uncertainty principle. Silicon and silicon dioxide substrates placed in the path of the atom beam were patterned by the metastable atoms. The de-excitation of metastable atoms upon collision with the surface promoted the deposition of a carbonaceous film from a vapor-phase hydrocarbon precursor. The resulting patterns were imaged both directly and after chemical etching. Thus, quantum-mechanical steady-state atom distributions can be used for sub-0.1-micrometer lithography.Keywords
This publication has 15 references indexed in Scilit:
- Metastable-atom-activated growth of an ultrathin carbonaceous resist for reactive ion etching of SiO2 and Si3N4Journal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures, 1998
- Nanometer definition of atomic beams with masks of lightPhysical Review A, 1997
- Atoms in the Lowest Motional Band of a Three-Dimensional Optical LatticePhysical Review Letters, 1997
- A virtual slit for atom optics and nanolithographyQuantum and Semiclassical Optics: Journal of the European Optical Society Part B, 1996
- Precision position measurement of moving atomsPhysics Reports, 1995
- Microlithography by Using Neutral Metastable Atoms and Self-Assembled MonolayersScience, 1995
- Laser-Focused Atomic DepositionScience, 1993
- Observation of quantized motion of Rb atoms in an optical fieldPhysical Review Letters, 1992
- Wave-function approach to dissipative processes in quantum opticsPhysical Review Letters, 1992
- Trapping of Neutral Sodium Atoms with Radiation PressurePhysical Review Letters, 1987