The surprisingly large neutron capture cross-section of <sup>88</sup>Zr.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 30617314.
- Also identified by DOI 10.1038/s41586-018-0838-z.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
The probability that a nucleus will absorb a neutron-the neutron capture cross-section-is important to many areas of nuclear science, including stellar nucleosynthesis, reactor performance, nuclear medicine and defence applications. Although neutron capture cross-sections have been measured for most stable nuclei, fewer results exist for radioactive isotopes, and statistical-model predictions typically have large uncertainties<sup>1</sup>. There are almost no nuclear data for neutron-induced reactions of the radioactive nucleus <sup>88</sup>Zr, despite its importance as a diagnostic for nuclear security. Here, by exposing <sup>88</sup>Zr to the intense neutron flux of a nuclear reactor, we determine that <sup>88</sup>Zr has a thermal neutron capture cross-section of 861,000 ± 69,000 barns (1σ uncertainty), which is five orders of magnitude larger than the theoretically predicted value of 10 barns<sup>2</sup>. This is the second-largest thermal neutron capture cross-section ever measured and no other cross-section of comparable size has been discovered in the past 70 years. The only other nuclei known to have values greater than 10<sup>5</sup> barns<sup>3-6</sup> are <sup>135</sup>Xe (2.6 × 10<sup>6</sup> barns), a fission product that was first discovered as a poison in early reactors<sup>7,8</sup>, and <sup>157</sup>Gd (2.5 × 10<sup>5</sup> barns), which is used as a detector material<sup>9,10</sup>, a burnable reactor poison<sup>11</sup> and a potential medical neutron capture therapy agent<sup>12</sup>. In the case of <sup>88</sup>Zr neutron capture, both the target and the product (<sup>89</sup>Zr) nuclei are radioactive and emit intense γ-rays upon decay, allowing sensitive detection of miniscule quantities of these radionuclides. This result suggests that as additional measurements with radioactive isotopes become feasible with the operation of new nuclear-science facilities, further surprises may be uncovered, with far-reaching implications for our understanding of neutron capture reactions.