Despite its sinister reputation, radioactivity has a great many positive applications, from medicine to space exploration. Each one exploits a specific property of a well-chosen isotope: its energy, its mean life, the type of radiation it emits.

  • Medicine: PET imaging with 18{}^{18}F, thyroid therapy with 131{}^{131}I, tumour radiotherapy with 60{}^{60}Co, brachytherapy with implanted sources.
  • Dating: 14{}^{14}C for archaeology (005050 ka), 40{}^{40}K/40{}^{40}Ar for rocks of 10610^610910^9 years, U/Pb for rocks of 10710^74,51094{,}5\cdot 10^9 years — this is how the age of the Earth was measured.
  • Energy: fission reactors (about 10%10\% of the world’s electricity) and experimental fusion plants on the horizon.
  • Safety: household smoke detectors use 241{}^{241}Am, whose α\alpha radiation ionises the air; smoke reduces the ionic current and triggers the alarm.
  • Space exploration: radioisotope thermoelectric generators (RTGs, with 238{}^{238}Pu) power probes too far from the Sun to use solar panels (Voyager 1 and 2, New Horizons).

The common thread is that the same physics — unstable nuclei transforming while releasing energy and radiation — can cure a tumour, date a rock, or power a probe at the edge of the solar system. The difference lies in the use chosen for it.

Collegamenti

Argomenti: Fisica nucleare Concetti: Decadimento radioattivo · Fissione nucleare

Esercizi collegati: Esercizio svolto — decadimento del radon in cantina · Dalla legge fenomenologica all’esponenziale · Vita media di un campione misto