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Pa 91

Protactinium (Pa)

actinide
Periodo: 7 Bloque: f

Solid

Peso atómico estándar

231,03588 u

Configuración electrónica

[Rn] 7s2 5f2 6d1

Punto de fusión

1571,85 °C

Punto de ebullición

N/D

Densidad

1,537e+4 kg/m³

Estados de oxidación

+2, +3, +4, +5

Electronegatividad (Pauling)

1,5

Energía de ionización (1.ª)

5,89 eV

Año de descubrimiento

1913

Radio atómico

180 pm

Detalles

Origen del nombre Greek: proto and actinium (parent of actinium); it forms actinium when it radioactively decays.
País de descubrimiento England/France
Descubridores Fredrich Soddy, John Cranston, Otto Hahn, Lise Meitner

Protactinium is a dense, silvery actinide metal with atomic number 91. It lies between thorium and uranium and is chemically notable for the stability of the +5 oxidation state, although +4 compounds are also known. All isotopes are radioactive. Natural protactinium occurs only in trace amounts, chiefly as ²³¹Pa in the ²³⁵U decay series and as short-lived products in other decay chains, so it has little technological role outside nuclear and geochemical research.

Protactinium metal is a dense, silvery-gray material with a bright metallic luster which it retains for some time in air but it does readily react with oxygen, water vapor and inorganic acids to form various compounds. In solid compounds protactinium is most stable in the oxidation state +5, but it also exists in the +4, +3 and +2 oxidation states. In solution the +5 state rapidly hydrolyzes by combining with hydroxide ions to form soluble or insoluble hydroxy-oxide solids which have a tendency to stick to the surfaces of vessels in which it is contained. A number of protactinium compounds are known, some of which are colored. The element is superconductive below 1.4K.

The name derives from the Greek protos (first) for preceding the element actinium, because its most common isotope (231Pa) decays to 227Ac by loss of an alpha particle.

In 1913 the German chemists K. Fajans and O. H. Gohring identified the first isotope of protactinium, 234Pa, and proposed the name brevium because of that isotope's short half-life of 6.7 h. 231Pa, with a longer half-life of 3.25(1)×104 a, was identified in 1918 by the German chemist O. Hahn and the Austrian physicist L. Meitner; and, independently in Britain, by F. Soddy and J. A. Cranston.

Protactinium was first identified by Kasimir Fajans and O.H. Göhring in 1913 while studying uranium's decay chain. The particular isotope they found, protactinium-234m, has a half-life of about 1.17 minutes. They named the element brevium, meaning brief, and then continued with their studies. Protactinium's existence was confirmed in 1918 when another isotope, protactinium-231, was independently discovered and studied by two groups of scientists, Otto Hahn and Lise Meitner of Germany and Frederick Soddy and John Cranston of Great Britain. Protactinium was first isolated by Aristid V. Grosse in 1934. Protactinium is a rare, poisonous and expensive element that is present in uranium ores in very small amounts. In 1961, the Great Britain Atomic Energy Authority was able to produce 125 grams of 99.9% pure protactinium, although they had to process about 55,000 kilograms of ore and spend about $500,000 to get it.

Protactinium's most stable isotope, protactinium-231, has a half-life of about 32,760 years. It decays into actinium-227 through alpha decay.

The name "protactinium" comes from adding the Greek protos meaning first, before the word "actinium." In 1871, Dmitri Mendeleevpredicted the existence of an element between thorium and uranium. In 1900, William Crookes isolated protactinium from uraniu. It was an intensely radioactive material, however, he could not characterize it as a new chemical element and thus named it uranium-X. In 1913 the first isotope of element 91, 234Pa, was discovered by K. Fajans and O.H. Gohring. It was a very short-lived member of the naturally occurring 238U decay series and as such they named it "brevium." In 1917/18, two groups of scientists, Otto Hahn and Lise Meitner of Germany and Frederick Soddy and John Cranston of Great Britain, independently discovered another isotope of protactinium, 231Pa having much longer half-life of about 32,000 years. The name was changed to proto-actinium as being more consistent with the longer-lived characteristics of the most abundant isotope. In 1927, Grosse prepared 2 mg of a white powder, which was shown to be Pa2O5. In 1934 he isolated the element from 0.1 g of pure Pa2O5 by two methods, one of which was by converting the oxide to an iodide and "cracking" it in a high vacuum by an electrically heated filament by the reaction: 2PaI5 > 2Pa + 5I2. In 1949, the name protoactinium was shortened by the IUPAC who officially named it protactinium and confirmed Hahn and Meitner as co-discoverers. The new name meant "parent of actinium" and reflected the fact that actinium is a decay product of the radioactive decay of protactinium.

Imágenes

Propiedades

Químicas

Electronegatividad (Pauling)
1,5 Comparar Electronegatividad (Pauling) de todos los elementos →
Afinidad electrónica
0,123 eV
Energía de ionización (1.ª)
5,89 eV Comparar Energía de ionización (1.ª) de todos los elementos →
Energía de ionización (2.ª)
11,900041 eV Comparar Energía de ionización (2.ª) de todos los elementos →
Energía de ionización (3.ª)
18,600064 eV Comparar Energía de ionización (3.ª) de todos los elementos →
Energía de ionización (4.ª)
30,900106 eV Comparar Energía de ionización (4.ª) de todos los elementos →
Energía de ionización (5.ª)
44,300152 eV Comparar Energía de ionización (5.ª) de todos los elementos →
Estados de oxidación
+2, +3, +4, +5 Comparar Estados de oxidación de todos los elementos →
Electrones de valencia
3 Comparar Electrones de valencia de todos los elementos →
Configuración electrónica
[Rn] 7s2 5f2 6d1

Termodinámicas

Calor de fusión
0,15546458 eV Comparar Calor de fusión de todos los elementos →
Calor de vaporización
4,974867 eV Comparar Calor de vaporización de todos los elementos →
Calor de sublimación
6,291133 eV
Calor de atomización
6,291133 eV
Entalpía de atomización
5,835104 eV

Nucleares

Protones
91 Comparar Protones de todos los elementos →
Neutrones
140 Comparar Neutrones de todos los elementos →
Isótopos conocidos
31 Comparar Isótopos conocidos de todos los elementos →
Isótopos estables
0 Comparar Isótopos estables de todos los elementos →
Isótopo más estable
Pa-231
Año de descubrimiento
1913

Abundancia

Abundancia (corteza terrestre)
1,4e-6 mg/kg Comparar Abundancia (corteza terrestre) de todos los elementos →
Abundancia (océano)
5 × 10−11 mg/L Comparar Abundancia (océano) de todos los elementos →

Estructura cristalina

Constante de red a
392 pm

Estructura electrónica

Electrones por capa
2, 8, 18, 32, 20, 9, 2 Comparar Electrones por capa de todos los elementos →

Identificadores

Número CAS
7440-13-3 Comparar Número CAS de todos los elementos →
Símbolo del término
4K11/2
InChI
InChI=1S/Pa
Clave InChI
XLROVYAPLOFLNU-UHFFFAOYSA-N

Configuración electrónica Medido

Carga del ion
Protones 91
Electrones 91
Carga Neutro
Configuración Pa: 5f² 6d¹ 7s²
Configuración electrónica
Medido
[Rn] 5f² 6d¹ 7s²
1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p⁶ 5f² 6d¹ 7s²
Diagrama de orbitales
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
2/14 2↑
6d
1/10 1↑
Total de electrones: 91 Desapareados: 3 ?

Modelo atómico

Protones 91
Neutrones 128
Electrones 91
Número másico 219
Estabilidad Radiactivo

Los isótopos cambian el número de neutrones, la masa y la estabilidad, pero no la configuración electrónica de un átomo neutro.

Modelo atómico esquemático, no a escala.

Huella atómica

Espectro de emisión / absorción

0 / 0 (0 0 con intensidad)
Medido
Emisión Visible: 380–750 nm

Distribución isotópica

No hay isótopos estables.

Número másicoMasa atómica (u)Abundancia naturalPeriodo de semidesintegración
224 Radiactivo224,0256176 ± 0,0000082N/D844 ms
218 Radiactivo218,020059 ± 0,00002N/D108 us
216 Radiactivo216,019109 ± 0,000057N/D105 ms
219 Radiactivo219,019904 ± 0,000055N/D56 ns
227 Radiactivo227,0288054 ± 0,000008N/D38.3 minutos
Medido

Fase / Estado

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

Motivo: 1546,8 °C por debajo del punto de fusión (1571,85 °C)

Punto de fusión 1571,85 °C
0 K Temperatura actual: 25 °C 6000 K
Secuencia de fases

Esquemático, no a escala

Sólido
Líquido + Gas
Fusión
25°C
Sólido
Líquido
Gas
Actual

Puntos de transición de fase

Punto de fusión Bibliografía
1571,85 °C
Fase actual Calculado
Sólido

Energías de transición

Calor de fusión Bibliografía
0,15546458 eV

Energía necesaria para fundir 1 mol en el punto de fusión

Calor de vaporización Bibliografía
4,974867 eV

Energía necesaria para vaporizar 1 mol en el punto de ebullición

Calor de sublimación Bibliografía
6,291133 eV

Energía necesaria para sublimar 1 mol en el punto de sublimación

Densidad

Densidad de referencia Bibliografía
1,537e+4 kg/m³

En condiciones estándar

Densidad actual Calculado
1,537e+4 kg/m³

En condiciones estándar

Espectros atómicos

Se muestran 10 de 91. Ordenado por carga del ion (ascendente).

Líneas disponibles ?

IonCargaTotal de líneasProbabilidades de transiciónDesignaciones de los niveles
Pa I 05500
Pa II +13300
Líneas disponibles en el NIST →

Niveles disponibles ?

IonCargaNiveles
Pa I 02
Pa II +12
Pa III +22
Pa IV +32
Pa V +42
Pa VI +52
Pa VII +62
Pa VIII +72
Pa IX +82
Pa X +92
Niveles disponibles en el NIST →
91 Pa 231.03588

Protactinium — Visualizador de orbitales atómicos

[Rn]7s25f26d1
Niveles de energía 2 8 18 32 20 9 2
Estados de oxidación +2, +3, +4, +5
HOMO 6d n=6 · l=2 · m=-2
Protactinium — Vista previa del visualizador de orbitales atómicos
Three.js solo se carga cuando se solicita
91 Pa 231.03588

Protactinium — Visualizador de estructuras cristalinas

Tetragonal · Pearson N/A
Experimental
Pearson N/A
Protactinium — Vista previa del visualizador de estructuras cristalinas
Three.js solo se carga cuando se solicita

Radios iónicos

CargaCoordinaciónEspínRadio
+36N/D104 pm
+39N/D119.9 pm
+46N/D90 pm
+48N/D101 pm
+56N/D78 pm
+58N/D91 pm
+59N/D95 pm

Compuestos

Pa
231,036 u
Pa
231,036 u
Pa
234,043 u
Pa
233,040 u
Pa
230,035 u
Pa
232,039 u
Pa
228,031 u
Pa
227,029 u

Isótopos (5)

Twenty-nine radioisotopes of protactinium have been discovered. Nearly all naturally occurring protactinium is 231Pa with a half-life of 32,700 years. It is an alpha emitter and is formed by the decay of uranium-235, whereas the beta radiating protactinium-234 with a half-life of 6.74 hours is produced as a result of uranium-238 decay. Nearly all uranium-238 (99.8%) decays first to the 234mPa isomer and then to 234Pa. Smaller trace amounts of the short-lived nuclear isomer protactinium-234m occur in the decay chain of uranium-238. Protactinium-233 results from the decay of thorium-233 as part of the chain of events used to produce uranium-233 by neutron irradiation of thorium-232.

Número másicoMasa atómica (u)Abundancia naturalPeriodo de semidesintegraciónModo de desintegración
224 Radiactivo224,0256176 ± 0,0000082N/D844 ms
α ≈100%β+ ?
218 Radiactivo218,020059 ± 0,00002N/D108 us
α =100%
216 Radiactivo216,019109 ± 0,000057N/D105 ms
α ≈100%β+ ?
219 Radiactivo219,019904 ± 0,000055N/D56 ns
α =100%β+ ?
227 Radiactivo227,0288054 ± 0,000008N/D38.3 minutos
α =85±0.2%ε =15±0.2%
224 Radiactivo
Masa atómica (u) 224,0256176 ± 0,0000082
Abundancia natural N/D
Periodo de semidesintegración 844 ms
Modo de desintegración
α ≈100%β+ ?
218 Radiactivo
Masa atómica (u) 218,020059 ± 0,00002
Abundancia natural N/D
Periodo de semidesintegración 108 us
Modo de desintegración
α =100%
216 Radiactivo
Masa atómica (u) 216,019109 ± 0,000057
Abundancia natural N/D
Periodo de semidesintegración 105 ms
Modo de desintegración
α ≈100%β+ ?
219 Radiactivo
Masa atómica (u) 219,019904 ± 0,000055
Abundancia natural N/D
Periodo de semidesintegración 56 ns
Modo de desintegración
α =100%β+ ?
227 Radiactivo
Masa atómica (u) 227,0288054 ± 0,000008
Abundancia natural N/D
Periodo de semidesintegración 38.3 minutos
Modo de desintegración
α =85±0.2%ε =15±0.2%

Propiedades ampliadas

Radios covalentes (ampliados)

Radio covalente (Pyykkö)
169 pm
Radio covalente (Pyykkö, enlace doble)
138 pm
Radio covalente (Pyykkö, enlace triple)
129 pm

Radios de van der Waals

Alvarez
288 pm
UFF
342,4 pm
MM3
264 pm

Radios atómicos y metálicos

Radio atómico (Rahm)
285 pm

Escalas de numeración

Mendeleev
18
Pettifor
46
Glawe
35

Escalas de electronegatividad

Ghosh
0

Polarizabilidad y dispersión

Polarizabilidad dipolar
154 a.u.
Polarizabilidad dipolar (incert.)
20 a.u.

Transiciones de fase y alótropos

Punto de fusión1845,15 K

Categorías de estados de oxidación

+3 extended
+2 extended
+4 extended
+5 main

Datos de referencia avanzados

Detalle de los radios cristalinos (7)
CargaCNEspínrcrystal (pm)Origen
3VI118estimated,
4VI104from r^3 vs V plots,
4VIII115
5VI92
5VIII105
5IX109
3IX—133,9
Modos de desintegración de los isótopos (51)
IsótopoModoIntensidad
211A100%
211B+—
211p—
212A100%
213A100%
214A100%
215A100%
216A100%
216B+—
217A100%
Factores de dispersión de rayos X (516)
Energía (eV)f₁f₂
10—1,75788
10,1617—1,76101
10,3261—1,76414
10,4931—1,76728
10,6628—1,73466
10,8353—1,69295
11,0106—1,65224
11,1886—1,61457
11,3696—1,58512
11,5535—1,5562

Datos adicionales

Sources

Sources of this element.

Protactinium is one of the rarest and most expensive naturally occurring elements. The average concentrations of protactinium in the Earth's crust is typically on the order of a few parts per trillion, but may reach up to a few parts per million in some uraninite ore deposits. The element occurs in pitchblende to the extent of about 1 part 231Pa to 10 million parts of ore. Ores from Zaire have about 3 ppm. In 1959 and 1961, it was announced that the Great Britain Atomic Energy Authority extracted by a 12-stage process 125 g of 99.9% protactinium, the world's only stock of the metal for many years following. The extraction was made from 60 tons of waste material at a cost of about $500,000.

Referencias (1)

Referencias

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

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)
Protactinium

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 la licencia: 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
Protactinium

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 la licencia: Please see citation and linking information: https://education.jlab.org/faq/index.html
6 Los Alamos National Laboratory, U.S. Department of Energy
Protactinium

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
Protactinium

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
Protactinium

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

9 PubChem Elements
Protactinium

The element property data was retrieved from publications.

Última actualización:

Datos verificados:

El contenido se revisa conforme a los datos científicos más recientes.