Americium
Americium (symbol Am, atomic number 95) is a synthetic, radioactive, silvery-white metallic element belonging to the actinide series of the periodic table, the third of the transuranic elements. Produced in nuclear reactors by neutron irradiation of plutonium, americium is best known through its isotope americium-241, a weak gamma-emitting alpha source used in tens of millions of household smoke detectors worldwide, and it also plays an important role in the long-term behavior of spent nuclear fuel.
Background and Position in the Periodic Table
Americium is a member of the actinide series, occupying the position beneath europium in the f-block. Its electron configuration in the ground state is [Rn] 5f⁷ 7s², and its chemistry is broadly analogous to that of the lanthanides, particularly europium, whose position it mirrors. Like all transuranic elements, americium does not occur naturally in measurable quantities in the Earth's crust; any atoms present in primordial matter decayed away long ago. The only americium found in nature today arises as a decay product of plutonium-241 released by atmospheric nuclear weapons testing or from reactor accidents, and it occurs in minute traces within spent nuclear fuel and contaminated environments.
Because it has no stable isotopes, no standard atomic weight is assigned to americium; its longest-lived isotope, americium-243, has a mass number of 243 and is conventionally used for reference.
History and Discovery
Americium was discovered in late 1944 by Glenn T. Seaborg, Ralph A. James, Leon O. Morgan, and Albert Ghiorso at the Metallurgical Laboratory of the University of Chicago, as part of the wartime Manhattan Project. The team identified the element in material produced by bombarding plutonium-239 with neutrons in a reactor. Successive neutron captures produced plutonium-241, which underwent beta decay to form americium-241:
²³⁹Pu → (n,γ) → ²⁴⁰Pu → (n,γ) → ²⁴¹Pu → (β⁻) → ²⁴¹Am
Like other wartime discoveries of synthetic elements, americium was kept secret for national-security reasons. The existence of elements 95 and 96 (americium and curium) was revealed to the public in an unusual fashion: on November 11, 1945, Glenn Seaborg announced them on the American radio quiz program "Quiz Kids," days before the formal scientific disclosure. The name "americium," adopted in honor of the Americas, deliberately parallels "europium," which was named for Europe, reflecting the actinide–lanthanide correspondence. Formal scientific publications describing the element's chemistry appeared in the following years.
Weighable microgram quantities of americium compounds were separated in the late 1940s, and metallic americium was first prepared in the early 1950s by metallothermic reduction of americium trifluoride with barium vapor. Gram quantities became available during the 1950s, and kilogram-scale production of americium-241 was achieved during the 1960s.
Production
Americium is produced exclusively artificially. The dominant production route is the neutron irradiation of uranium and plutonium in nuclear reactors, where successive neutron captures and beta decays generate plutonium-241, which decays with a half-life of about 14.3 years into americium-241. Consequently, americium-241 accumulates steadily in aged reactor fuel and in stored weapons-grade or reactor-grade plutonium, and most of the world's separated americium is recovered from such stocks. Separation from spent fuel is accomplished through hydrometallurgical processes such as the PUREX process for plutonium and uranium recovery, followed by advanced extraction schemes (for example TRUEX- and SANEX-type processes) designed to partition minor actinides including americium from lanthanide fission products.
The longer-lived isotope americium-243 is produced in smaller quantities by extended neutron irradiation of plutonium or americium targets in high-flux reactors. Total global production of americium is small compared with conventional elements; separated material is available only from national laboratories, and the element remains among the most expensive, with americium-241 offered at roughly on the order of US$1,500 per gram.
Physical Properties
Americium is a silvery-white metal that slowly tarnishes in dry air at room temperature. It is a dense, ductile metal with a density of approximately 12 g/cm³, a melting point of 1176 °C, and an estimated boiling point of about 2607 °C. The metal exhibits several allotropic forms: at room temperature it adopts a double hexagonal close-packed structure (α-americium), transforming at elevated temperatures to a face-centered cubic form and, near the melting point, to a body-centered cubic form.
Notably, pure americium metal displays no magnetic ordering at low temperatures, in contrast to many neighboring actinides, a behavior attributed to the electronic configuration of its 5f electrons. Its compounds, however, show characteristic paramagnetism.
Chemical Properties
The chemistry of americium is dominated by the +3 oxidation state, which is the most stable state in aqueous solution and in the majority of its solid compounds, as is typical for the heavier actinides. Trivalent americium ions form pale pink solutions and a wide range of salts, oxides, hydroxides, and coordination complexes, often closely resembling the corresponding europium(III) compounds.
Americium is unusual in exhibiting a broad range of oxidation states, from +2 through +7, the widest range of any actinide element:
- Am(II) is rare and observed only in a few solid compounds such as americium dihalides.
- Am(III) is the most common state, present in compounds like AmCl₃ and Am(OH)₃.
- Am(IV) occurs in americium dioxide (AmO₂), the most stable oxide and the form used in technical applications, and in americium tetrafluoride (AmF₄).
- Am(V) and Am(VI) exist in solution as the linear actinyl-type ions AmO₂⁺ and AmO₂²⁺.
- Am(VII) has been observed under strongly oxidizing alkaline conditions and represents one of the highest oxidation states known among the elements.
Americium also forms organometallic compounds, such as the cyclooctatetraenyl complex Am(C₈H₈)₂, and numerous intermetallic compounds with transition metals and p-block elements. In the environment, trivalent americium forms strong complexes with carbonate and organic ligands, a factor that influences its geochemical mobility.
Isotopes and Nuclear Properties
Isotopes of americium are known for mass numbers from 229 to 247, all radioactive. The most significant isotopes are:
- Americium-241 (half-life 432.2 years) decays predominantly by alpha emission (main line about 5.5 MeV) to neptunium-237, accompanied by a characteristic 59.5 keV gamma ray. Its specific activity is about 127 gigabecquerels per gram.
- Americium-243 (half-life about 7,370 years) is the longest-lived isotope and decays by alpha emission to plutonium-239.
- Americium-242m, a long-lived nuclear isomer (half-life about 141 years), possesses an exceptionally high thermal-neutron fission cross-section of several thousand barns, making it a subject of study for compact nuclear power sources and, historically, for specialized reactor concepts.
In reactor operation, americium builds up as plutonium-241 decays, and further neutron capture produces heavier americium isotopes and, ultimately, curium and other transplutonium elements.
Applications
The most widespread application of americium is in ionization-type smoke detectors. A typical domestic detector contains roughly 0.3 micrograms of americium-241 dioxide (an activity of about 37 kBq, or 1 microcurie), dispersed in a sealed gold matrix on a small metal disc. The alpha particles emitted by the americium ionize the air in a sensing chamber, allowing a small current to flow between electrodes. Smoke particles entering the chamber attenuate the ionization and reduce the current, triggering the alarm. The quantity of radioactive material is minute, and the source is sealed, making routine exposure negligible.
Other established uses include:
- Neutron sources: Americium-241 mixed with beryllium (Am–Be sources) generates neutrons via the (α,n) reaction. These compact sources are used in oil well logging, moisture and density gauges, neutron activation analysis, and reactor startup instrumentation.
- Gamma and X-ray applications: The 59.5 keV gamma emission of americium-241 has been used in thickness gauges, level gauges, radiography, and as an excitation source in X-ray fluorescence analysis.
- Radioisotope power sources: Because americium-241 is available in quantity from civil plutonium stockpiles, has a half-life long enough for multi-decade missions, and releases about 0.1 watts of thermal power per gram, it has been investigated, notably by European space agencies and research institutions
You May Be Interested In
토머스 하디
토머스 하디(Thomas Hardy, 1840년 6월 2일 ~ 1928년 1월 11일)는 영국의 소설가이자 시인으로, 빅토리아 시대 문학을 대표하는 거장 중 한 사람으로 널리 평가받는다. 그는 잉글랜드 남서부의 준(...
갈릴레오 갈릴레이
갈릴레오 갈릴레이(Galileo di Vincenzo Bonaiuti de' Galilei, 1564년 2월 15일 ~ 1642년 1월 8일)는 이탈리아 피사 출신의 천문학자·물리학자·기술자이자 박식가로, 근대 과학...
한반도(Korea)
한반도(Korea)는 동아시아에 위치한 지리적 지역이자 문화적 실체로, 아시아 대륙 동부에서 남쪽으로 뻗어 나온 한반도 본토와 그에 딸린 수많은 섬들로 구성된다. 북서쪽으로는 중국과 국경을 접하고, 동쪽으로는 대한해...
알베르트 아인슈타인
알베르트 아인슈타인(독일어: Albert Einstein, 1879년 3월 14일 ~ 1955년 4월 18일)은 독일 출신의 이론물리학자로, 역사상 가장 영향력 있는 과학자이자 역대 최고의 물리학자 중 한 명으로 널...
Comments (0)
No comments yet. Be the first to comment!