Periodic Elements
Actinium
Group 3
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Andre-Louis Debierne announced it in Paris in 1899 from pitchblende residues, and Friedrich Oskar Giesel independently obtained it in Germany in 1902 under the name emanium. The credit is genuinely argued over: work published from the 1970s onward pointed out that Debierne's own results of 1904 do not match what he reported in 1899 and 1900, and Giesel is credited with the first radiochemically pure preparation. Most historians still give Debierne priority. Actinium is about 150 times as radioactive as radium and glows pale blue. Actinium-225 is used in targeted alpha therapy.
Facts
Identity
Atomic Number Attestation
Note on the DiscoveryDiscovered in 1899 by Andre Louis Debierne, in residues of pitchblende ore left over from earlier work on radium by Marie and Pierre Curie. 2 Origins
Origin of the NameNamed from the Greek aktinos, meaning ray or beam, another reference to its radioactivity. 1 Learn More
Overview
Actinium was discovered in 1899 by the French chemist Andre-Louis Debierne, a colleague of the Curies, in the residues of pitchblende, and independently by Friedrich Oskar Giesel in 1902. Its name comes from the Greek aktis, aktinos, a ray or beam, after its radioactivity. Actinium is a soft, silvery, intensely radioactive metal that glows with a pale blue light in the dark, and it gives its name to the actinide series of elements that follows it. So intensely radioactive that it glows and gives off heat, actinium has few uses beyond research, though a heavy isotope is studied as a source of alpha particles for targeted cancer therapy, and it once served in neutron sources and radioactivity standards.
Nearly all actinium available today, a few grams worldwide at most, is manufactured by irradiating radium-226 with neutrons in a small number of specialised reactors, since natural pitchblende yields only trace amounts too minute for practical extraction. Demand for actinium-225 has grown quickly in recent years as a component of targeted alpha-particle cancer therapies, creating a persistent global supply shortage that has pushed several countries and private companies to invest in new dedicated production routes.
The Ray-Giver and Its Series
Actinium's name, from the Greek for ray, was chosen to mark the powerful radiation it emits, so strongly that the pure element visibly glows in darkness from the ionisation of the surrounding air. Beyond its own properties, actinium lends its name to a whole family: the actinides, the fifteen elements from actinium through lawrencium, which include the naturally important thorium and uranium and the entirely synthetic transuranium elements, and which occupy the lower of the two detached rows beneath the main body of the periodic table.
Actinium has no ancient or alchemical tradition, being a product of the study of radioactivity at the turn of the twentieth century; its significance is that of a namesake and a marker, the ray-giving head of one of the great series of the modern table. The actinide series divides in practice into two very different halves: the first few members, actinium through uranium, occur naturally on Earth in workable if often minute quantities, while everything past uranium, the transuranium elements from neptunium onward, exists only because twentieth-century physicists learned to manufacture new nuclei in reactors and accelerators, a split that makes actinium's own header position a hinge between elements found in the ground and elements built entirely by human hands.
Cross-Tradition Connections
Associated With
This source names Germany directly: "Giesel independently obtained it in Germany in 1902 under the name emanium."
Paris, Cities This source names Paris directly: "Andre-Louis Debierne announced it in Paris in 1899 from pitchblende residues, and Friedrich Oskar Giesel independently obtained it in Germany in 1902 under the name emanium."
Namesake Of
Protactinium means the parent of actinium: its alpha decay produces actinium, and the name records that decay relation rather than any property of the metal itself.
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