Cultural advice

The Australian National University acknowledges, celebrates and pays our respects to the Ngunnawal and Ngambri people of the Canberra region and to all First Nations Australians on whose traditional lands we meet and work, and whose cultures are among the oldest continuing cultures in human history.

Aboriginal and Torres Strait Islander peoples are advised that ANU Library collections may include images, names, voices, and other representations of deceased persons.

Material in the collection may contain terms, language or views that reflect the period in which the item was created and may be considered inappropriate today.

Nuclear Tracks in Solids: Registration Physics and the Compound Spike

Loading...
Thumbnail Image

Date

Authors

Chadderton, Lewis

Journal Title

Journal ISSN

Volume Title

Publisher

Pergamon-Elsevier Ltd

Abstract

Observations of GeV heavy ion and MeV cluster-ion tracks in crystalline solids give us new insight into registration physics. Thermal and ion explosion spikes no longer compete; a 'compound spike' accounts for both. Ion explosion dominates for surface tracks (electronic sputtering). And there can also be transient plasma stopping in the bulk. For clusters there are 'vicinage effects' - both electronic and nuclear - which can influence track dimensions and structure. Displacement cascades in large energetic clusters may lead to projectile "fission" and coherent flow into sub-tracks. The absence of tracks in certain targets, and their size/structure in others, leads to a model of projectile assisted prompt anneal (PAPA) in ∼10-11 s, either partial or complete, often by swift epitaxy, on elemental lattices (e.g. silicon) or on compound sublattices (e.g. fluorite). Phase transformations are important, but simple target amorphization is rare - the exception, not the rule. For many targets the thermal spike (macroscopic) fails, since 'point' defects (atomistic) characteristic of the target, their motion, and the electronic band structure, determine latent track detail. Circumstances in which the Bragg Rule of Additivity fails completely are revealed, and the kinetic threshold for constructive phase transitions in tracks described. This same track physics applies generally also to geothermometry - the opposite time extremum (∼10+11 s) - where annealing is due to defect assisted delayed anneal (DADA). Differences between etching rates of induced and spontaneous fission tracks can be explained. The geothermobarometric "Wendt/Vidal effect" (2002) - combined pressure, temperature and stress (with time) influences on fission track annealing (in e.g. apatite) - is briefly discussed.

Description

Citation

Source

Radiation Measurements

Book Title

Entity type

Access Statement

License Rights

Restricted until