CERN: Antiprotons probe the nuclear stratosphere
Creators
Description
The outer periphery of heavy stable nuclei is notoriously difficult to study experimentally. While the well understood electromagnetic interaction between electrons (or muons) and protons has given the nuclear charge (or proton) distribution with high precision for almost all stable nuclei, neutron distribution studies are much less precise. This is especially true for large nuclear distances, where the nuclear density is small. A few previous experiments probing the nuclear ''stratosphere'' suggested that far from the centre of the nucleus (of the order of 2 nuclear radii) this stratosphere may be composed predominantly of neutrons. At the end of the sixties the term ''neutron halo'' was introduced to describe this phenomenon, but experimental evidence was scarce or even controversial, and remained so for almost a quarter of a century. Recently, the Warsaw/Munich/Berlin collaboration working within the PS203 experiment at CERN's LEAR low energy antiproton ring, proposed a new method to study the nuclear periphery using stopped antiprotons. The halo now looks firmer. A 200 MeV/c beam of antiprotons was slowed down by interactions with atomic electrons. When antiproton kinetic energy drops well below 1 keV, the particles are captured in the outermost orbits of ''exotic atoms'', where the antiprotons take the place of the usual orbital electrons. With the lower orbits in this antiprotonic atom empty, the antiproton drops toward the nuclear surface, first emitting Auger electrons and later predominantly antiprotonic X-rays. Due to the strong interaction between antiprotons and nucleons, the antiproton succumbs to annihilation with a nucleon in the rarified nuclear stratosphere, far above the innermost Bohr orbit of the atom. The annihilation probability in heavy nuclei is maximal where the nuclear density is about 3% of its central value and extends to densities many orders of magnitude smaller. Antiproton annihilation on a proton or on a neutron at the nuclear periphery produces on average five pions. Some of these enter the nuclear volume and ''heat'' the nucleus, which ''cools'' by first emitting fast nucleons and later evaporating neutrons or charged particles, or by fission
Availability note (English)
Available on-line: http://cds.cern.ch/record/1732403/files/vol35-issue4-p017-e.pdfFiles
47127199.pdf
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Additional details
Identifiers
Publishing Information
- Journal Title
- CERN Courier
- Journal Volume
- 35
- Journal Issue
- 4
- Journal Page Range
- p. 17-18
- ISSN
- 0304-288X
- CODEN
- CECOA2
INIS
- Country of Publication
- European Organization for Nuclear Research (CERN)
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 47127199
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Descriptors DEI
- ANTIPROTONS; CERN; CERN LEAR; ELECTROMAGNETIC INTERACTIONS; ELECTRONS; HEAVY NUCLEI; NEUTRONS; STRONG INTERACTIONS
- Descriptors DEC
- ANTIBARYONS; ANTIMATTER; ANTINUCLEI; ANTINUCLEONS; ANTIPARTICLES; BARYONS; BASIC INTERACTIONS; ELEMENTARY PARTICLES; FERMIONS; HADRONS; INTERACTIONS; INTERNATIONAL ORGANIZATIONS; LEPTONS; MATTER; NUCLEI; NUCLEONS; PROTONS
Optional Information
- Secondary number(s)
- INIS-XC--16A0189