Jove
Visualize
Contact Us

Related Concept Videos

Nuclear Stability03:18

Nuclear Stability

22.7K
Protons and neutrons, collectively called nucleons, are packed together tightly in a nucleus. With a radius of about 10−15 meters, a nucleus is quite small compared to the radius of the entire atom, which is about 10−10 meters. Nuclei are extremely dense compared to bulk matter, averaging 1.8 × 1014 grams per cubic centimeter. If the earth’s density were equal to the average nuclear density, the earth’s radius would be only about 200 meters.
To hold positively charged protons together...
22.7K
Radioactivity and Nuclear Equations03:18

Radioactivity and Nuclear Equations

26.7K
Nuclear chemistry is the study of reactions that involve changes in nuclear structure. The nucleus of an atom is composed of protons and, except for hydrogen, neutrons. The number of protons in the nucleus is called the atomic number (Z) of the element, and the sum of the number of protons and the number of neutrons is the mass number (A). Atoms with the same atomic number but different mass numbers are isotopes of the same element.
A nuclide of an element has a specific number of protons and...
26.7K
Nuclear Transmutation03:20

Nuclear Transmutation

20.3K
Nuclear transmutation is the conversion of one nuclide into another. It can occur by the radioactive decay of a nucleus, or the reaction of a nucleus with another particle. The first manmade nucleus was produced in Ernest Rutherford’s laboratory in 1919 by a transmutation reaction, the bombardment of one type of nuclei with other nuclei or with neutrons. Rutherford bombarded nitrogen-14 atoms with high-speed α particles from a natural radioactive isotope of radium and observed...
20.3K
Nuclear Binding Energy02:13

Nuclear Binding Energy

14.5K
The difference between the calculated and experimentally measured masses is known as the mass defect of the atom. In the case of helium-4, the mass defect indicates a “loss” in mass of 4.0331 amu – 4.0026 amu = 0.0305 amu. The loss in mass accompanying the formation of an atom from protons, neutrons, and electrons is due to the conversion of that mass into energy that is evolved as the atom forms. The nuclear binding energy is the energy produced when the atoms’ nucleons are bound...
14.5K
Types of Radioactivity03:23

Types of Radioactivity

19.3K
The most common types of radioactivity are α decay, β decay, γ decay, neutron emission, and electron capture.
Alpha (α) decay is the emission of an α particle from the nucleus. For example, polonium-210 undergoes α decay:
19.3K
Nuclear Fission02:50

Nuclear Fission

12.2K
Many heavier elements with smaller binding energies per nucleon can decompose into more stable elements that have intermediate mass numbers and larger binding energies per nucleon—that is, mass numbers and binding energies per nucleon that are closer to the “peak” of the binding energy graph near 56. Sometimes neutrons are also produced. This decomposition of a large nucleus into smaller pieces is called fission. The breaking is rather random with the formation of a large...
12.2K

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Nuclear track detectors evaluation for radon activity concentration measurements.

Applied radiation and isotopes : including data, instrumentation and methods for use in agriculture, industry and medicine·2026
Same author

Determination of emission intensity for low energy photons following the decay of <sup>109</sup>Cd.

Applied radiation and isotopes : including data, instrumentation and methods for use in agriculture, industry and medicine·2025
Same author

Performance evaluation of radon monitors at IFIN-HH, Romania.

Applied radiation and isotopes : including data, instrumentation and methods for use in agriculture, industry and medicine·2023
Same author

Low-Level Radon Activity Concentration-A MetroRADON International Intercomparison.

International journal of environmental research and public health·2022
Same author

The Metrological Traceability, Performance and Precision of European Radon Calibration Facilities.

International journal of environmental research and public health·2021
Same author

60 years of absolute standardization of radionuclides by coincidence counting methods in the Romanian metrology laboratory.

Applied radiation and isotopes : including data, instrumentation and methods for use in agriculture, industry and medicine·2021
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Experiment Video

Updated: Jan 4, 2026

Preparing an Isotopically Pure 229Th Ion Beam for Studies of 229mTh
10:42

Preparing an Isotopically Pure 229Th Ion Beam for Studies of 229mTh

Published on: May 3, 2019

7.2K

226Th nuclear decay data evaluation.

Aurelian Luca1

  • 1Horia Hulubei National Institute for R&D in Physics and Nuclear Engineering, IFIN-HH Bucharest, 30 Reactorului Street, Magurele, Ilfov County, PO Box MG-6, RO-077125, Romania.

Applied Radiation and Isotopes : Including Data, Instrumentation and Methods for Use in Agriculture, Industry and Medicine
|November 12, 2019
PubMed
Summary

This study presents updated nuclear decay data for Thorium-226 (²²⁶Th), a key radionuclide for targeted alpha therapy. These findings enhance the accuracy of data used in nuclear medicine and research.

Keywords:
(226)ThAlpha-particleEvaluationNuclear decay data

More Related Videos

Separation of Uranium and Thorium for 230Th-U Dating of Submarine Hydrothermal Sulfides
08:43

Separation of Uranium and Thorium for 230Th-U Dating of Submarine Hydrothermal Sulfides

Published on: May 20, 2019

7.2K
Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
09:18

Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident

Published on: December 14, 2017

10.9K

Related Experiment Videos

Last Updated: Jan 4, 2026

Preparing an Isotopically Pure 229Th Ion Beam for Studies of 229mTh
10:42

Preparing an Isotopically Pure 229Th Ion Beam for Studies of 229mTh

Published on: May 3, 2019

7.2K
Separation of Uranium and Thorium for 230Th-U Dating of Submarine Hydrothermal Sulfides
08:43

Separation of Uranium and Thorium for 230Th-U Dating of Submarine Hydrothermal Sulfides

Published on: May 20, 2019

7.2K
Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
09:18

Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident

Published on: December 14, 2017

10.9K

Area of Science:

  • Nuclear Physics
  • Radiochemistry
  • Medical Physics

Background:

  • Accurate nuclear decay data are crucial for applications like targeted alpha therapy.
  • Thorium-226 (²²⁶Th) is a daughter nuclide of Uranium-230 (²³⁰U) and is of significant interest for medical applications.
  • Previous evaluations of ²³⁰U decay data necessitated a similar update for its daughter, ²²⁶Th.

Purpose of the Study:

  • To perform a comprehensive evaluation of the nuclear decay data for ²²⁶Th.
  • To provide precise data for half-life, decay energy, alpha-particle characteristics, and gamma-ray emissions.
  • To ensure the availability of reliable data for the Decay Data Evaluation Project (DDEP) and the IAEA.

Main Methods:

  • Evaluation of nuclear decay data following established protocols within the DDEP and an IAEA Coordinated Research Project.
  • Analysis of parameters including half-life, decay energy, alpha-particle energies and probabilities, internal conversion coefficients, and gamma-ray energies and intensities.
  • Inclusion of the evaluated data into the NUCLEIDE database.

Main Results:

  • A detailed set of nuclear decay data for ²²⁶Th has been compiled and evaluated.
  • Specific data points include half-life, decay energy, alpha-particle emission energies and probabilities, and gamma-ray energies and intensities.
  • The evaluated data are ready for integration into the DDEP's NUCLEIDE database.

Conclusions:

  • The updated nuclear decay data for ²²⁶Th provide a more accurate foundation for its use in targeted alpha therapy.
  • This evaluation contributes to the DDEP's mission of maintaining a comprehensive nuclear decay data library.
  • The findings will support advancements in nuclear medicine and related research fields.