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U 92

Uranium (U)

actinide
Período: 7 Bloco: f

Solid

Peso atômico padrão

238,02891 u

Configuração eletrônica

[Rn] 7s2 5f3 6d1

Ponto de fusão

1134,85 °C

Ponto de ebulição

4130,85 °C

Densidade

1,895e+4 kg/m³

Estados de oxidação

−1, +1, +2, +3, +4, +5, +6

Eletronegatividade (Pauling)

1,38

Energia de ionização (1ª)

6,19405 eV

Ano da descoberta

1789

Raio atômico

175 pm

Detalhes

Origem do nome Named for the planet Uranus.
País da descoberta Germany
Descobridores Martin Klaproth

Uranium is a dense actinide metal and the heaviest element found in substantial natural abundance on Earth. Natural uranium is dominated by ²³⁸U, with smaller amounts of fissile ²³⁵U and trace ²³⁴U. Its chemistry is strongly oxophilic and commonly involves the uranyl ion, UO₂²⁺. Uranium is technologically important as nuclear fuel and historically important in the discovery and development of radioactivity and nuclear fission.

Pure uranium is a silvery white, weakly radioactive metal, which is harder than most elements. It is malleable, ductile, slightly paramagnetic, strongly electropositive and is a poor electrical conductor. Uranium metal has very high density, being approximately 70% denser than lead, but slightly less dense than gold. Uranium metal exhibits in three crystallographic modifications: alpha > (688°C) > beta > (776°C) > gamma. Uranium is pyrophoric when finely divided. It is a little softer than steel and is attacked by cold water in a finely divided state.In air, uranium metal becomes coated with a layer of oxide. Acids dissolve the metal, forming the +3 oxidation state which oxidizes rapidly by water and air to form higher oxidation states. Uranium metal is unaffected by alkalis. Uranium metal can be prepared by reducing uranium halides with alkali or alkaline earth metals or by reducing uranium oxides by calcium, aluminum, or carbon at high temperatures. The metal can also be produced by electrolysis of KUF5 or UF4, dissolved in a molten salt mixture of CaCl2 and NaCl. High-purity uranium can be prepared by the thermal decomposition of uranium halides on a hot filament.

Uranium metal reacts with almost all nonmetallic elements and their compounds, with reactivity increasing with temperature. Hydrochloric and nitric acids dissolve uranium, but non-oxidizing acids other than hydrochloric acid attack the element very slowly. When finely divided, it can react with cold water. In air, uranium metal oxidizes and becomes coated with a dark layer of uranium oxide. Uranium forms a variety of alloys and compounds with the most important oxidation states being uranium(IV) and uranium(VI), and their two corresponding oxides are, respectively, uranium dioxide, UO2 and uranium trioxide, UO3. Besides the oxides, other Important uranium compounds include fluorides, chlorides, bromides, iodides, carbonates, hydrides, carbides, nitrides, phosphates, etc. At room temperatures, uranium hexafluoride, UF6, has a high vapor pressure, making it useful in the gaseous diffusion process used to separate the rare U-235 from the common U-238 isotope. Uranium hydrides, nitrides and carbides are relatively inertsemimetallic compounds that are minimally soluble in acids and have been used as stable fuel pellets in nuclear power reactor technology.

Uranium exists in aqueous solutions in the +3, +4, +5, and +6 oxidation states. Oxidation state +6 as the UO22+ ion (yellow in color) is the most stable state in solution. Uranium in the +5 state as the UO2+ ion is colorless, quite unstable and disproportionates (reacts with itself) to form the +6 and +4 states. The +4 state (green) is reasonably stable in solution, but the +3 state (dark green or dark red depending on the illumination source - daylight vs fluorescent light) is unstable and easily oxidizes to +4. The +4 state in near-neutral pH solutions readily hydrolyzes to form black oxy-hydroxide precipitates.

The name derives from the planet Uranus, which in Roman mythology was "Father Heaven". The German chemist Martin-Heinrich Klaproth discovered the element in 1789, following William Hershel's discovery of the planet in 1781. The metallic uranium was first isolated by the French chemist Eugène-Melchior Peligot in 1841.

Uranium was discovered by Martin Heinrich Klaproth, a German chemist, in the mineral pitchblende (primarily a mix of uranium oxides) in 1789. Although Klaproth, as well as the rest of the scientific community, believed that the substance he extracted from pitchblende was pure uranium, it was actually uranium dioxide (UO2). After noticing that 'pure' uranium reacted oddly with uranium tetrachloride (UCl4), Eugène-Melchoir Péligot, a French chemist isolated pure uranium by heating uranium dioxide with potassium in a platinum crucible. Radioactivity was first discovered in 1896 when Antoine Henri Becquerel, a French physicist, detected it from a sample of uranium. Today, uranium is obtained from uranium ores such as pitchblende, uraninite (UO2), carnotite (K2(UO2)2VO4·1-3H2O) and autunite (Ca(UO2)2(PO4)2·10H2O) as well as from phosphate rock (Ca3(PO4)2), lignite (brown coal) and monazite sand ((Ce, La, Th, Nd, Y)PO4). Since there is little demand for uranium metal, uranium is usually sold in the form of sodium diuranate (Na2U2O7·6H2O), also known as yellow cake, or triuranium octoxide (U3O8).

The use of uranium in its natural oxide form dates back to 79 A.D. when it was used as a yellow coloring agent in ceramic glazes. Yellow glass with 1% uranium oxide was found in an ancient Roman villa near Naples, Italy. In the late Middle Ages, pitchblende was extracted from the silver mines and was used as a coloring agent in the glassmaking industry. The identification of uranium as an element is generally credited to Martin H. Klaproth. While experimenting with pitchblende in 1789, he concluded that it contained a new element, which he named after the newly discovered planet Uranus (named after the Greek god of the sky or heaven). What Klaproth actually identified was not the pure element but uranium oxide. The pure metal was first isolated in 1841 by Eugène-Melchior Péligot, who reduced anhydrous uranium tetrachloride with potassium metal.

In 1896 Antoine H. Becquerel discovered that uranium exhibited invisible light or rays; it was radioactivity. In 1934 research by Enrico Fermi and others eventually led to the use of uranium fission in the first nuclear weapon used in war and later in the peaceful use of uranium as fuel in nuclear power production. An ensuing arms race during the Cold War between the United States and the Soviet Union produced tens of thousands of nuclear weapons that used uranium metal and uranium-derived plutonium-239. The security of those weapons and their fissile material following the breakup of the Soviet Union in 1991 is an ongoing concern.

In 1972 French physicist Francis Perrin discovered ancient and no longer active prehistoric natural nuclear fission reactors in uranium ore deposits at the Oklo mine in Gabon, West Africa, collectively known as the Oklo Fossil Reactors. The ore deposit is 1.7 billion years old; at that time, uranium-235 constituted about 3% of the total uranium on Earth (0.72% today). This is high enough to permit a sustained nuclear fission chain reaction to occur, provided other supporting geologic conditions exist.

Imagens

Propriedades

Química

Eletronegatividade (Pauling)
1,38 Comparar Eletronegatividade (Pauling) de todos os elementos →
Afinidade eletrônica
0,3 eV
Energia de ionização (1ª)
6,19405 eV Comparar Energia de ionização (1ª) de todos os elementos →
Energia de ionização (2ª)
11,60004 eV Comparar Energia de ionização (2ª) de todos os elementos →
Energia de ionização (3ª)
19,800068 eV Comparar Energia de ionização (3ª) de todos os elementos →
Energia de ionização (4ª)
36,700126 eV Comparar Energia de ionização (4ª) de todos os elementos →
Energia de ionização (5ª)
46,000158 eV Comparar Energia de ionização (5ª) de todos os elementos →
Estados de oxidação
−1, +1, +2, +3, +4, +5, +6 Comparar Estados de oxidação de todos os elementos →
Elétrons de valência
3 Comparar Elétrons de valência de todos os elementos →
Configuração eletrônica
[Rn] 7s2 5f3 6d1

Termodinâmica

Calor de fusão
0,14561849 eV Comparar Calor de fusão de todos os elementos →
Calor de vaporização
4,321915 eV Comparar Calor de vaporização de todos os elementos →
Calor de sublimação
5,524175 eV
Calor de atomização
5,524175 eV
Entalpia de atomização
5,524175 eV

Nuclear

Prótons
92 Comparar Prótons de todos os elementos →
Nêutrons
146 Comparar Nêutrons de todos os elementos →
Isótopos conhecidos
29 Comparar Isótopos conhecidos de todos os elementos →
Isótopos estáveis
0 Comparar Isótopos estáveis de todos os elementos →
Isótopo mais estável
U-238
Ano da descoberta
1789

Abundância

Abundância (crosta terrestre)
2,7 mg/kg Comparar Abundância (crosta terrestre) de todos os elementos →
Abundância (oceano)
0,003 mg/L Comparar Abundância (oceano) de todos os elementos →

Estrutura cristalina

Constante de rede a
285 pm

Estrutura eletrônica

Elétrons por camada
2, 8, 18, 32, 21, 9, 2 Comparar Elétrons por camada de todos os elementos →

Identificadores

Número CAS
7440-61-1 Comparar Número CAS de todos os elementos →
Símbolo de termo
5L°6
InChI
InChI=1S/U
Chave InChI
JFALSRSLKYAFGM-UHFFFAOYSA-N

Configuração eletrônica Medido

Carga do íon
Prótons 92
Elétrons 92
Carga Neutro
Configuração U: 5f³ 6d¹ 7s²
Configuração eletrônica
Medido
[Rn] 5f³ 6d¹ 7s²
1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p⁶ 5f³ 6d¹ 7s²
Diagrama de orbitais
1s
2/2
2s
2/2
2p
6/6
3s
2/2
3p
6/6
4s
2/2
3d
10/10
4p
6/6
5s
2/2
4d
10/10
5p
6/6
6s
2/2
4f
14/14
5d
10/10
6p
6/6
7s
2/2
5f
3/14 3↑
6d
1/10 1↑
Total de elétrons: 92 Desemparelhados: 4 ?

Modelo atômico

Prótons 92
Nêutrons 129
Elétrons 92
Número de massa 221
Estabilidade Radioativo

Os isótopos alteram o número de nêutrons, a massa e a estabilidade — não a configuração eletrônica de um átomo neutro.

Modelo atômico esquemático, sem escala.

Assinatura atômica

Espectro de emissão / absorção

0 / 0 (0 0 com intensidade)
Medido
Emissão Visível: 380–750 nm

Distribuição isotópica

Sem isótopos estáveis.

Número de massaMassa atômica (u)Abundância naturalMeia-vida
217 Radioativo217,02466 ± 0,00011N/D850 us
235 Radioativo235,0439301 ± 0,00000190,7204%704 My
221 Radioativo221,02628 ± 0,00011N/D660 ns
224 Radioativo224,027605 ± 0,000027N/D396 us
218 Radioativo218,023523 ± 0,00002N/D354 us
Medido

Fase / Estado

1 atm / 101,325 kPa
Sólido 25 °C (298,15 K)

Motivo: 1109,8 °C abaixo do ponto de fusão (1134,85 °C)

Ponto de fusão 1134,85 °C
Ponto de ebulição 4130,85 °C
Abaixo do ponto de fusão em 1109,8 °C
0 K Temperatura atual: 25 °C 6000 K
Linha do tempo das fases

Esquemático, sem escala

Sólido
Líquido
Gás
Fusão
Ebulição
25°C
Sólido
Líquido
Gás
Atual

Pontos de transição de fase

Ponto de fusão Literatura
1134,85 °C
Ponto de ebulição Literatura
4130,85 °C
Fase atual Calculado
Sólido

Energias de transição

Calor de fusão Literatura
0,14561849 eV

Energia necessária para fundir 1 mol no ponto de fusão

Calor de vaporização Literatura
4,321915 eV

Energia necessária para vaporizar 1 mol no ponto de ebulição

Calor de sublimação Literatura
5,524175 eV

Energia necessária para sublimar 1 mol no ponto de sublimação

Densidade

Densidade de referência Literatura
1,895e+4 kg/m³

Em condições padrão

Densidade atual Calculado
1,895e+4 kg/m³

Em condições padrão

Espectros atômicos

Mostrando 10 de 92. Ordenado por carga do íon (ordem crescente).

Dados de linhas disponíveis ?

ÍonCargaTotal de linhasProbabilidades de transiçãoDesignações dos níveis
U I 0216570
U II +125800
Dados de linhas disponíveis no NIST →

Dados de níveis disponíveis ?

ÍonCargaNíveis
U I 02
U II +12
U III +22
U IV +32
U V +42
U VI +52
U VII +62
U VIII +72
U IX +82
U X +92
Dados de níveis disponíveis no NIST →
92 U 238.02891

Uranium — Visualizador de orbitais atômicos

[Rn]7s25f36d1
Níveis de energia 2 8 18 32 21 9 2
Estados de oxidação -1, +1, +2, +3, +4, +5, +6
HOMO 6d n=6 · l=2 · m=-2
Uranium — Prévia do visualizador de orbitais atômicos
O Three.js é carregado apenas quando solicitado
92 U 238.02891

Uranium — Visualizador de estruturas cristalinas

Orthorhombic · Pearson N/A
Experimental
Pearson N/A
Uranium — Prévia do visualizador de estruturas cristalinas
O Three.js é carregado apenas quando solicitado

Raios iônicos

Mostrando 10 de 14.

CargaCoordenaçãoSpinRaio
+36N/D102.49999999999999 pm
+39N/D118.9 pm
+46N/D89 pm
+47N/D95 pm
+48N/D100 pm
+49N/D105 pm
+412N/D117 pm
+56N/D76 pm
+57N/D84 pm
+62N/D45 pm

Compostos

U
238,029 u
U
234,041 u
U
233,040 u
U
235,044 u
U
236,046 u
U
232,037 u
U
230,034 u
U+4
238,029 u
U
239,054 u
U
237,049 u
U
240,057 u
U
231,036 u
U+2
238,029 u
U+3
238,029 u
U
238,051 u

Isótopos (5)

Uranium is weakly radioactive because all naturally occurring (or primordial) isotopes of uranium (238U, 235U and 234U) are unstable, with half-lives varying between 159,200 years and 4.5 billion years. There are 27 known isotopes of uranium ranging in atomic weights 217–219, 222–240 and 242, with half-lives of from billions of years to a few nanoseconds. Naturally occurring uranium consists of three major isotopes: 238U (99.28% abundance), 235U (0.71%), and 234U (0.0054%). (The US DOE has adopted the value of 0.711 as being their official percentage of 235U in natural uranium.) All three isotopes are radioactive, with small probabilities of undergoing spontaneous fission but preferentially decaying by alpha emission. The half-life of uranium-238 is about 4.47 billion years and that of uranium-235 is 704 million years, making them useful in dating the age of the Earth. It also suggests that half of the uranium that existed from the formation of the Earth has decayed to other radioactive elements and eventually to stable elements. Much of the internal heat of the earth is thought to be attributable to the decay of uranium and thorium radio-isotopes.

Número de massaMassa atômica (u)Abundância naturalMeia-vidaModo de decaimento
217 Radioativo217,02466 ± 0,00011N/D850 us
α ≈100%β- ?
235 Radioativo235,0439301 ± 0,00000190,7204% ± 0,0006%704 My
IS =0.7204±0.6%α =100%SF =7e-9±0.2%
221 Radioativo221,02628 ± 0,00011N/D660 ns
α ≈100%β+ ?
224 Radioativo224,027605 ± 0,000027N/D396 us
α =100%β+ ?
218 Radioativo218,023523 ± 0,00002N/D354 us
α =100%
217 Radioativo
Massa atômica (u) 217,02466 ± 0,00011
Abundância natural N/D
Meia-vida 850 us
Modo de decaimento
α ≈100%β- ?
235 Radioativo
Massa atômica (u) 235,0439301 ± 0,0000019
Abundância natural 0,7204% ± 0,0006%
Meia-vida 704 My
Modo de decaimento
IS =0.7204±0.6%α =100% +4
221 Radioativo
Massa atômica (u) 221,02628 ± 0,00011
Abundância natural N/D
Meia-vida 660 ns
Modo de decaimento
α ≈100%β+ ?
224 Radioativo
Massa atômica (u) 224,027605 ± 0,000027
Abundância natural N/D
Meia-vida 396 us
Modo de decaimento
α =100%β+ ?
218 Radioativo
Massa atômica (u) 218,023523 ± 0,00002
Abundância natural N/D
Meia-vida 354 us
Modo de decaimento
α =100%

Propriedades ampliadas

Raios covalentes (dados ampliados)

Raio covalente (Pyykkö)
170 pm
Raio covalente (Pyykkö, ligação dupla)
134 pm
Raio covalente (Pyykkö, ligação tripla)
118 pm

Raios de van der Waals

Batsanov
230 pm
Alvarez
271 pm
UFF
339,5 pm
MM3
252 pm

Raios atômicos e metálicos

Raio atômico (Rahm)
283 pm

Escalas de numeração

Mendeleev
20
Pettifor
45
Glawe
36

Escalas de eletronegatividade

Ghosh
0
Miedema
4

Polarizabilidade e dispersão

Polarizabilidade dipolar
129 a.u.
Polarizabilidade dipolar (incerteza)
17 a.u.

Afinidade química

Afinidade protônica
995,2 kJ/mol
Basicidade em fase gasosa
973,2 kJ/mol

Parâmetros de Miedema

Volume molar de Miedema
13,15 cm3/mol
Densidade eletrônica de Miedema
3

Risco de abastecimento e economia

Concentração da produção
33
Risco relativo de abastecimento
6
Distribuição das reservas
31
Estabilidade política (maior produtor)
62
Estabilidade política (detentor das maiores reservas)
75

Transições de fase e alótropos

Ponto de fusão1408,15 K
Ponto de ebulição4404,15 K

Categorias de estados de oxidação

+3 extended
+1 extended
+6 main
+2 extended
−1 extended
+4 extended
+5 extended

Dados de referência avançados

Detalhes dos raios cristalinos (14)
CargaCNSpinrcrystal (pm)Origem
3VI116,5from r^3 vs V plots,
4VI103
4VII109estimated,
4VIII114from r^3 vs V plots,
4IX119
4XII131estimated,
5VI90
5VII98estimated,
6II59
6IV66
Modos de decaimento dos isótopos (60)
IsótopoModoIntensidade
215A—
215B+—
216A100%
217A100%
217B-—
218A100%
219A100%
219B+—
220A—
220B+—
Fatores de espalhamento de raios X (514)
Energia (eV)f₁f₂
10—1,627
10,1617—1,61282
10,3261—1,59877
10,4931—1,58416
10,6628—1,56547
10,8353—1,547
11,0106—1,52874
11,1886—1,5107
11,3696—1,49287
11,5535—1,47526

Dados adicionais

Sources

Sources of this element.

Uranium is the heaviest naturally-occurring element available in large quantities. The heavier “transuranic” elements are either man-made or they exist only as trace quantities in uranium ore deposits as activation products. Uranium occurs naturally in low concentrations of a few parts per million in soil, rock and water, and is commercially extracted from uranium-bearing minerals. Uranium, not as rare as once thought, is now considered to be more plentiful than mercury, antimony, silver, or cadmium, and is about as abundant as molybdenum or arsenic. It occurs in numerous natural minerals such as pitchblende, uraninite, carnotite, autunite, uranophane, and tobernite. It is also found in phosphate rocks, lignite, monazite sands, and is recovered commercially from these sources. The United States Department of Energy purchases uranium in the form of acceptable U3O8 concentrates. This incentive program has greatly increased the known uranium reserves.

Referências (1)

Referências

(9)
2 Atomic Mass Data Center (AMDC), International Atomic Energy Agency (IAEA)
U

The half-life and atomic mass data was provided by the Atomic Mass Data Center at the International Atomic Energy Agency.

3 IUPAC Commission on Isotopic Abundances and Atomic Weights (CIAAW)
Uranium

Element data are cited from the Atomic weights of the elements (an IUPAC Technical Report). The IUPAC periodic table of elements can be found at https://iupac.org/what-we-do/periodic-table-of-elements/. Additional information can be found within IUPAC publication doi:10.1515/pac-2015-0703 Copyright © 2020 International Union of Pure and Applied Chemistry.

4 IUPAC Periodic Table of the Elements and Isotopes (IPTEI)

The information are cited from Pure Appl. Chem. 2018; 90(12): 1833-2092, https://doi.org/10.1515/pac-2015-0703.

Nota sobre a licença: Copyright (c) 2020 International Union of Pure and Applied Chemistry. The International Union of Pure and Applied Chemistry (IUPAC) contribution within Pubchem is provided under a CC-BY-NC-ND 4.0 license, unless otherwise stated.
5 Jefferson Lab, U.S. Department of Energy
Uranium

Thomas Jefferson National Accelerator Facility (Jefferson Lab) is one of 17 national laboratories funded by the U.S. Department of Energy. The lab's primary mission is to conduct basic research of the atom's nucleus using the lab's unique particle accelerator, known as the Continuous Electron Beam Accelerator Facility (CEBAF). For more information visit https://www.jlab.org/

Nota sobre a licença: Please see citation and linking information: https://education.jlab.org/faq/index.html
6 Los Alamos National Laboratory, U.S. Department of Energy
Uranium

The periodic table at the LANL (Los Alamos National Laboratory) contains basic element information together with the history, source, properties, use, handling and more. The provenance data may be found from the link under the source name.

7 NIST Physical Measurement Laboratory
Uranium

The periodic table contains NIST's critically-evaluated data on atomic properties of the elements. The provenance data that include data for atomic spectroscopy, X-ray and gamma ray, radiation dosimetry, nuclear physics, and condensed matter physics may be found from the link under the source name. Ref: https://www.nist.gov/pml/atomic-spectra-database

8 PubChem Elements
Uranium

This section provides all form of data related to element Uranium.

9 PubChem Elements
Uranium

The element property data was retrieved from publications.

Última atualização:

Dados verificados:

O conteúdo é revisado com base nos dados científicos mais recentes.