Access
To read this story in full you will need to login or make a payment (see right).
Letter
Nature 449, 195-197 (13 September 2007) | doi:10.1038/nature06094; Received 11 June 2007; Accepted 17 July 2007
Open Innovation Challenges
-
Efficient Chromosome Doubling: Plant Cell Division
The Seeker is looking for an efficient chromosome doubling method in plants and in particular, metho...
-
Fast Growth of Transformed Soybean Shoots
A method for accelerating growth of soybean shoots is desired.
nature jobs
Faculty Position in Biochemistry
- University of Tuebingen
- Tuebingen 72076 Germany
Research Fellows in Pluripotent Stem Cell Technology
- The University of Nottingham
- Nottingham, UK
The production of molecular positronium
D. B. Cassidy1 & A. P. Mills, Jr1
- Department of Physics and Astronomy, University of California, Riverside, California 92521-0413, USA
Correspondence to: D. B. Cassidy1 Correspondence and requests for materials should be addressed to D.B.C. (Email: cassidy@physics.ucr.edu).
Abstract
It has been known for many years that an electron and its antiparticle, the positron, may together form a metastable hydrogen-like atom, known as positronium or Ps (ref. 1). In 1946, Wheeler speculated2 that two Ps atoms may combine to form the di-positronium molecule (Ps2), with a binding energy3 of 0.4 eV. More recently, this molecule has been studied theoretically4; however, because Ps has a short lifetime and it is difficult to obtain low-energy positrons in large numbers, Ps2 has not previously been observed unambiguously5. Here we show that when intense positron bursts are implanted into a thin film of porous silica, Ps2 is created on the internal pore surfaces. We found that molecule formation occurs much more efficiently than the competing process of spin exchange quenching, which appears to be suppressed in the confined pore geometry. This result experimentally confirms the existence of the Ps2 molecule and paves the way for further multi-positronium work. Using similar techniques, but with a more intense positron source, we expect to increase the Ps density to the point where many thousands of atoms interact and can undergo a phase transition to form a Bose–Einstein condensate6. As a purely leptonic, macroscopic quantum matter–antimatter system this would be of interest in its own right, but it would also represent a milestone on the path to produce an annihilation gamma-ray laser7.
- Department of Physics and Astronomy, University of California, Riverside, California 92521-0413, USA
Correspondence to: D. B. Cassidy1 Correspondence and requests for materials should be addressed to D.B.C. (Email: cassidy@physics.ucr.edu).
To read this story in full you will need to login or make a payment (see right).
MORE ARTICLES LIKE THIS
These links to content published by NPG are automatically generated.
NEWS AND VIEWS
Atomic physics A whiff of antimatter soupNature News and Views (13 Sep 2007)
Positronium spin conversionNature News and Views (14 Apr 1977)
See all 10 matches for News And ViewsRESEARCH
Near-field optics: from subwavelength illumination to nanometric shadowingNature Biotechnology Research (01 Nov 2003)
MarketplaceNature Structural Biology Marketplace (01 Jan 1997)
See all 17 matches for Research
