Oganesson (Og)
noble-gasExpected to be a Gas
Peso atómico estándar
[294]Configuración electrónica
[Rn] 7s2 7p6 5f14 6d10 (Predicho)Punto de fusión
N/DPunto de ebullición
-243,15 °CDensidad
7000 kg/m³Estados de oxidación
−1, 0, +1, +2, +4, +6Electronegatividad (Pauling)
N/DEnergía de ionización (1.ª)
N/DAño de descubrimiento
2006Radio atómico
N/DDetalles
Oganesson is a synthetic element at the end of period 7 and is placed in group 18 with the noble gases. It has been made only atom by atom in heavy-ion fusion experiments, with the best-established isotope, ²⁹⁴Og, decaying in about a millisecond. Its chemistry has not been observed directly. Relativistic calculations suggest that it may be far less inert than lighter noble gases.
Oganesson does not occur naturally in the Earth’s crust. The name oganesson and symbol Og are the accepted ones for element 118. The name is in line with the tradition of honoring a scientist and recognizes Prof. Yuri Oganessian (Fig. IUPAC.118.1; born 1933) for his pioneering contribution to trans-actinoid element research. His many achievements include the discovery of super-heavy elements and significant advances in the nuclear physics of super-heavy nuclei, including experimental evidence for the “island of stability.”
In 2005, experiments were performed in Dubna’s U-400 cyclotron, where 48Ca bombarded a spinning target of 249Cf at nearly 3×104 km/s to produce oganesson. With the success of creating oganesson, scientists from Livermore and Joint Institute for Nuclear Research (JINR) are starting experiments to create element 120 by bombarding a 244Pu target with a beam of 58Fe [680], [681], [682], [683]. Oganesson has no known isotopic applications aside from scientific research.
On October 16, 2006, scientists working at the Joint Institute for Nuclear Research in Dubna, Russia, along with scientists from the U.S. Department of Energy's Lawrence Livermore National Laboratory, announced the creation of oganesson. They produced oganesson by bombarding atoms of californium-249 with ions of calcium-48. This produced oganesson-294, an isotope with a half-life of about 0.89 milliseconds (0.00089 seconds), and three free neutrons. The californium target was irradiated with a total of 1.6*1019 calcium ions over the course of 1080 hours, resulting in the production of three atoms of oganesson. Oganesson's most stable isotope, oganesson-294, has a half-life of about 0.89 milliseconds. It decays into livermorium-290 through alpha decay.
On Novemer 28th, 2016, element 118 was named Oganesson with the symbol (Og). The name was proposed by the Joint Institute for Nuclear Research, Dubna (Russia) and Lawrence Livermore National Laboratory (USA). It honors Professor Yuri Oganessian (born 1933) for his pioneering contributions to transactinoid elements research.
No macroscopic sample of oganesson has ever existed, so its appearance, density, melting point, and boiling point are not experimentally known. Predictions often treat it as a condensed, highly polarizable substance under ordinary conditions, but this remains theoretical.
Oganesson has no practical, commercial, medical, or industrial use. Its value is confined to nuclear research, where a few atoms can test models of superheavy nuclei, alpha decay, spontaneous fission, and the limits of the periodic table. The element cannot be stored or accumulated in useful quantities because its known nuclei decay almost immediately after formation.
Since only a few atoms of oganesson have ever been produced, it currently has no uses outside of basic scientific research.
No compound of oganesson has been experimentally prepared or characterized. Its possible chemistry is inferred from relativistic quantum calculations, which predict unusually strong spin-orbit effects and high polarizability for a group 18 element. Hypothetical species such as oganesson difluoride (OgF₂), oganesson tetrafluoride (OgF₄), and oxides have been discussed, but their stability, structures, and oxidation states are not established by experiment.
See more information at the Oganesson compound page.
The immediate hazard of oganesson is radiological rather than chemical. Known atoms decay by alpha emission and through radioactive daughter nuclei on extremely short timescales. Because only a few atoms are produced in shielded accelerator targets, ordinary chemical exposure is not a realistic scenario. Target materials and reaction products require standard controls for radioactive heavy-element experiments.
Oganesson has no confirmed natural occurrence and no known environmental cycle. Any atoms made in laboratories decay long before they could disperse as a chemical contaminant. Environmental considerations are therefore associated with accelerator operations, irradiated targets, and radioactive residues, not with persistent oganesson itself.
Oganesson has no commodity market, no industrial supply chain, and no recoverable stock. It is produced only in specialized nuclear laboratories by bombarding rare actinide targets, notably californium-249 (²⁴⁹Cf), with calcium-48 (⁴⁸Ca) ions. Production depends on scarce target isotopes, long accelerator runs, and detection of individual decay chains. Substitution and recycling are not meaningful concepts for the element itself.
Made by bombarding californium-249 with calcium-48.
Oganesson is not expected to be a persistent cosmic element because its known nuclei are far too unstable. Superheavy nuclei may be formed transiently in extreme nucleosynthetic environments, but no natural or extraterrestrial oganesson has been confirmed. Its relevance to astrophysics is mainly through theoretical work on nuclear stability at very high atomic number.
- Oganesson is the heaviest element with an officially approved name.
- Its placement under radon does not mean its chemistry is known to resemble radon closely.
- The name honors nuclear physicist Yuri Oganessian.
- Individual oganesson atoms are identified through correlated decay chains, not by weighing or isolating the element.
- Relativistic effects are expected to be central to any real oganesson chemistry.
Imágenes
Propiedades
Físicas
- Densidad
- 7000 kg/m³ Comparar Densidad de todos los elementos →
- Fase en CNPT
- Gas Comparar Fase en CNPT de todos los elementos →
- Punto de ebullición
- -243,15 °C Comparar Punto de ebullición de todos los elementos →
Químicas
- Afinidad electrónica
- 0,056 eV
- Estados de oxidación
- −1, 0, +1, +2, +4, +6 Comparar Estados de oxidación de todos los elementos →
- Electrones de valencia
- 8 Comparar Electrones de valencia de todos los elementos →
- Configuración electrónica
- [Rn] 7s2 7p6 5f14 6d10 (Predicho)
Termodinámicas
N/D
Nucleares
- Protones
- 118 Comparar Protones de todos los elementos →
- Neutrones
- 175 Comparar Neutrones de todos los elementos →
- Isótopos conocidos
- 2 Comparar Isótopos conocidos de todos los elementos →
- Isótopos estables
- 0 Comparar Isótopos estables de todos los elementos →
- Número másico (isótopo más estable)
- 294
- Isótopo más estable
- Og-293
- Año de descubrimiento
- 2006
Abundancia
N/D
Estructura cristalina
N/D
Estructura electrónica
- Electrones por capa
- 14, 10, 8 Comparar Electrones por capa de todos los elementos →
Identificadores
- Número CAS
- 54144-19-3 Comparar Número CAS de todos los elementos →
- InChI
- InChI=1S/Og
- Clave InChI
- GOANEQIZDYDFCO-UHFFFAOYSA-N
Configuración electrónica Predicho
——No hay datos disponibles sobre la configuración electrónica de este ion.
Modelo atómico
Los isótopos cambian el número de neutrones, la masa y la estabilidad, pero no la configuración electrónica de un átomo neutro.
N/D
Modelo atómico esquemático, no a escala.
Huella atómica
Espectro de emisión / absorción
Distribución isotópica
No hay isótopos estables.
| Número másico | Masa atómica (u) | Abundancia natural | Periodo de semidesintegración |
|---|---|---|---|
| 293 Radiactivo | 293,21356 ± 0,00078 | N/D | 1 ms |
| 294 Radiactivo | 294,21392 ± 0,00071 | N/D | 0.7 ms |
Fase / Estado
Motivo: 268,1 °C por encima del punto de ebullición (-243,15 °C)
Esquemático, no a escala
Puntos de transición de fase
Densidad
En condiciones estándar
Estimada mediante la ley de los gases ideales a la T actual
No hay datos disponibles sobre la estructura cristalina de la fase sólida
Isótopos (2)
| Número másico | Masa atómica (u) | Abundancia natural | Periodo de semidesintegración | Modo de desintegración | |
|---|---|---|---|---|---|
| 293 Radiactivo | 293,21356 ± 0,00078 | N/D | 1 ms | α ? | |
| 294 Radiactivo | 294,21392 ± 0,00071 | N/D | 0.7 ms | α ≈100%SF ? |
Propiedades ampliadas
Radios covalentes (ampliados)
- Radio covalente (Pyykkö)
- 157 pm
Escalas de numeración
- Mendeleev
- 118
Polarizabilidad y dispersión
- Polarizabilidad dipolar
- 58 a.u.
- Polarizabilidad dipolar (incert.)
- 6 a.u.
Propiedades de los gases nobles
Categorías de estados de oxidación
Datos de referencia avanzados
Modos de desintegración de los isótopos (3)
| Isótopo | Modo | Intensidad |
|---|---|---|
| 293 | A | — |
| 294 | A | 100% |
| 294 | SF | — |
Datos adicionales
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
Not Applicable
Referencias (1)
- [5] Oganesson https://education.jlab.org/itselemental/ele118.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
Not Applicable
Referencias (1)
- [5] Oganesson https://education.jlab.org/itselemental/ele118.html
Referencias
(8)
Data deposited in or computed by PubChem
The half-life and atomic mass data was provided by the Atomic Mass Data Center at the International Atomic Energy Agency.
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.
The information are cited from Pure Appl. Chem. 2018; 90(12): 1833-2092, https://doi.org/10.1515/pac-2015-0703.
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/
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.
The periodic table contains NIST's critically-evaluated data on atomic properties of the elements.
This section provides all form of data related to element Oganesson.
