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O 8

Oxygen (O)

nonmetal
Periodo: 2 Grupo: 16 Bloque: p

Gas

Peso atómico estándar

15,999 u [15,99903, 15,99977]

Configuración electrónica

[He] 2s2 2p4

Punto de fusión

-218,79 °C

Punto de ebullición

-182,95 °C

Densidad

1,429 kg/m³

Estados de oxidación

−2, −1, 0, +1, +2

Electronegatividad (Pauling)

3,44

Energía de ionización (1.ª)

13,618055 eV

Año de descubrimiento

1771

Radio atómico

60 pm

Detalles

Origen del nombre Greek: oxys and genes, (acid former).
País de descubrimiento England/Sweden
Descubridores Joseph Priestly, Carl Wilhelm Scheele

Oxygen is a reactive nonmetal and chalcogen that occurs mainly as the diatomic gas O₂ and, less commonly, as ozone O₃. It is essential to aerobic respiration and is a major constituent of water, silicate minerals, carbonates, and many biological molecules. Its high electronegativity and ability to form strong bonds make oxidation chemistry central to combustion, corrosion, metabolism, and industrial processing.

The gas is colorless, odorless, and tasteless. The liquid and solid forms are a pale blue color and are strongly paramagnetic.

The name derives from the Greek oxys for "acid" and genes for "forming" because the French chemist Antoine-Laurent Lavoisier once thought that oxygen was integral to all acids.

Oxygen was discovered independently by the Swedish pharmacist and chemist Carl-Wilhelm Scheele in 1771, and the English clergyman and chemist Joseph Priestley in 1774. Scheele's Chemical Treatise on Air and Fire was delayed in publication until 1777, so Priestley is credited with the discovery because he published first.

Oxygen had been produced by several chemists prior to its discovery in 1774, but they failed to recognize it as a distinct element. Joseph Priestley and Carl Wilhelm Scheele both independently discovered oxygen, but Priestly is usually given credit for the discovery. They were both able to produce oxygen by heating mercuric oxide (HgO). Priestley called the gas produced in his experiments 'dephlogisticated air' and Scheele called his 'fire air'. The name oxygen was created by Antoine Lavoisier who incorrectly believed that oxygen was necessary to form all acids. Oxygen is the third most abundant element in the universe and makes up nearly 21% of the earth's atmosphere. Oxygen accounts for nearly half of the mass of the earth's crust, two thirds of the mass of the human body and nine tenths of the mass of water. Large amounts of oxygen can be extracted from liquefied air through a process known as fractional distillation. Oxygen can also be produced through the electrolysis of water or by heating potassium chlorate (KClO3).

From the Greek word oxys, acid, and genes, forming. The behavior of oxygen and nitrogen as components of air led to the advancement of the phlogiston theory of combustion, which captured the minds of chemists for a century.

Joseph Priestley is generally credited with its discovery, although Scheele also discovered it independently.

Its atomic weight was used as a standard of comparison for each of the other elements until 1961 when the International Union of Pure and Applied Chemistry adopted carbon 12 as the new basis.

Imágenes

Propiedades

Químicas

Electronegatividad (Pauling)
3,44 Comparar Electronegatividad (Pauling) de todos los elementos →
Electronegatividad (Allen)
3,61
Afinidad electrónica
1,4611 eV
Energía de ionización (1.ª)
13,618055 eV Comparar Energía de ionización (1.ª) de todos los elementos →
Energía de ionización (2.ª)
35,121241 eV Comparar Energía de ionización (2.ª) de todos los elementos →
Energía de ionización (3.ª)
54,935729 eV Comparar Energía de ionización (3.ª) de todos los elementos →
Energía de ionización (4.ª)
77,413766 eV Comparar Energía de ionización (4.ª) de todos los elementos →
Energía de ionización (5.ª)
113,899392 eV Comparar Energía de ionización (5.ª) de todos los elementos →
Estados de oxidación
−2, −1, 0, +1, +2 Comparar Estados de oxidación de todos los elementos →
Electrones de valencia
6 Comparar Electrones de valencia de todos los elementos →
Configuración electrónica
[He] 2s2 2p4

Termodinámicas

Punto triple (temperatura)
-218,7916 °C
Punto triple (presión)
146,3 Pa
Punto crítico (temperatura)
-118,569 °C
Punto crítico (presión)
5,043e+6 Pa
Calor de fusión
0,00460175 eV Comparar Calor de fusión de todos los elementos →
Calor de vaporización
0,07068456 eV Comparar Calor de vaporización de todos los elementos →
Calor de atomización
2,582474 eV
Entalpía de atomización
2,583085 eV

Nucleares

Protones
8 Comparar Protones de todos los elementos →
Neutrones
8 Comparar Neutrones de todos los elementos →
Isótopos conocidos
18 Comparar Isótopos conocidos de todos los elementos →
Isótopos estables
3 Comparar Isótopos estables de todos los elementos →
Isótopo más estable
O-16
Año de descubrimiento
1771

Abundancia

Abundancia (corteza terrestre)
4,61e+5 mg/kg Comparar Abundancia (corteza terrestre) de todos los elementos →
Abundancia (océano)
8,57 × 105 mg/L Comparar Abundancia (océano) de todos los elementos →

Estructura cristalina

Constante de red a
683 pm

Estructura electrónica

Electrones por capa
2, 6 Comparar Electrones por capa de todos los elementos →

Identificadores

Número CAS
7782-44-7 Comparar Número CAS de todos los elementos →
Símbolo del término
3P2
InChI
InChI=1S/O
Clave InChI
QVGXLLKOCUKJST-UHFFFAOYSA-N

Configuración electrónica Medido

Carga del ion
Protones 8
Electrones 8
Carga Neutro
Configuración O: 2s² 2p⁴
Configuración electrónica
Medido
[He] 2s² 2p⁴
1s² 2s² 2p⁴
Diagrama de orbitales
1s
2/2
2s
2/2
2p
4/6 2↑
Total de electrones: 8 Desapareados: 2 ?

Modelo atómico

Protones 8
Neutrones 8
Electrones 8
Número másico 16
Estabilidad Estable

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

25 / 50 (50 50 con intensidad)
Medido
Emisión Visible: 380–750 nm

Distribución isotópica

1699,7570%180,2050%170,0380%Número másicoAbundancia natural (%)
Número másicoMasa atómica (u)Abundancia naturalPeriodo de semidesintegración
16 Estable15,99491461957 ± 0,0000000001799,7570%Estable
17 Estable16,9991317565 ± 0,000000000690,0380%Estable
18 Estable17,99915961286 ± 0,000000000760,2050%Estable
Medido

Fase / Estado

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

Motivo: 207,9 °C por encima del punto de ebullición (-182,95 °C)

Punto de fusión -218,79 °C
Punto de ebullición -182,95 °C
Por encima del punto de ebullición en 207,9 °C
0 K Temperatura actual: 25 °C 6000 K
Secuencia de fases

Esquemático, no a escala

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

Puntos de transición de fase

Punto de fusión Bibliografía
-218,79 °C
Punto de ebullición Bibliografía
-182,95 °C
Fase actual Calculado
Gas

Energías de transición

Calor de fusión Bibliografía
0,00460175 eV

Energía necesaria para fundir 1 mol en el punto de fusión

Calor de vaporización Bibliografía
0,07068456 eV

Energía necesaria para vaporizar 1 mol en el punto de ebullición

Densidad

Densidad de referencia Bibliografía
1,429 kg/m³

En condiciones estándar

Densidad actual Estimado
0,65396019 kg/m³

Estimada mediante la ley de los gases ideales a la T actual

Avanzado

Punto triple Bibliografía
-218,7916 °C
Punto crítico Bibliografía
-118,569 °C

Espectros atómicos

Líneas disponibles ?

IonCargaTotal de líneasProbabilidades de transiciónDesignaciones de los niveles
O I 0910854907
O II +116308761630
O III +21005974974
O IV +3152515211523
O V +4391385385
O VI +5157126157
O VII +6189188189
O VIII +7137137137
Líneas disponibles en el NIST →

Niveles disponibles ?

IonCargaNiveles
O I 0614
O II +1287
O III +2188
O IV +3219
O V +4172
O VI +5148
O VII +6149
O VIII +7149
Niveles disponibles en el NIST →
8 O 15.9994

Oxygen — Visualizador de orbitales atómicos

[He]2s22p4
Niveles de energía 2 6
Estados de oxidación -2, -1, 0, +1, +2
HOMO 2p n=2 · l=1 · m=-1
Oxygen — Vista previa del visualizador de orbitales atómicos
Three.js solo se carga cuando se solicita
8 O 15.9994

Oxygen — Visualizador de estructuras cristalinas

Primitive Cubic · Pearson cP1
Experimental
Pearson cP1
N.º de coord. 6
Empaquetamiento 52.000%
Sin estructura cristalina en condiciones estándar — gas a 298 K y 1 atm
Estructura de la fase sólida a 293 K
Oxygen — Vista previa del visualizador de estructuras cristalinas
Three.js solo se carga cuando se solicita

Radios iónicos

CargaCoordinaciónEspínRadio
-22N/D135 pm
-23N/D136 pm
-24N/D138 pm
-26N/D140 pm
-28N/D142 pm

Compuestos

O
15,999 u
O-2
15,999 u
O-
15,999 u
O-2
17,999 u
O-2
15,003 u

Isótopos (3)

Oxygen has nine isotopes. Natural oxygen is a mixture of three isotopes.

Número másicoMasa atómica (u)Abundancia naturalPeriodo de semidesintegraciónModo de desintegración
16 Estable15,99491461957 ± 0,0000000001799,7570% ± 0,0160%Estable
stable
17 Estable16,9991317565 ± 0,000000000690,0380% ± 0,0010%Estable
stable
18 Estable17,99915961286 ± 0,000000000760,2050% ± 0,0140%Estable
stable
16 Estable
Masa atómica (u) 15,99491461957 ± 0,00000000017
Abundancia natural 99,7570% ± 0,0160%
Periodo de semidesintegración Estable
Modo de desintegración
stable
17 Estable
Masa atómica (u) 16,9991317565 ± 0,00000000069
Abundancia natural 0,0380% ± 0,0010%
Periodo de semidesintegración Estable
Modo de desintegración
stable
18 Estable
Masa atómica (u) 17,99915961286 ± 0,00000000076
Abundancia natural 0,2050% ± 0,0140%
Periodo de semidesintegración Estable
Modo de desintegración
stable

Líneas espectrales

Se muestran 50 de 1013. De forma predeterminada, solo se muestran las líneas espectrales con intensidad medida.

Longitud de onda (nm)IntensidadEstado de ionizaciónTipoTransiciónExactitudFuente
615.8187 nm490O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D*MedidaNIST
615.6778 nm450O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D*MedidaNIST
700.223 nm450O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).4d 3D*MedidaNIST
725.4448 nm450O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S*MedidaNIST
615.5971 nm400O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D*MedidaNIST
645.5977 nm400O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S*MedidaNIST
725.4154 nm400O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S*MedidaNIST
645.4444 nm360O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S*MedidaNIST
700.1922 nm360O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).4d 3D*MedidaNIST
645.3602 nm320O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S*MedidaNIST
725.4531 nm320O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S*MedidaNIST
715.6701 nm210O Iemission2s2.2p3.(2D*).3s 1D* → 2s2.2p3.(2D*).3p 1DMedidaNIST
396.1573 nm200O IIIemission2s2.2p.(2P*).3p 1D → 2s2.2p.(2P*).3d 1F*MedidaNIST
533.0741 nm190O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5d 5D*MedidaNIST
604.6438 nm190O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S*MedidaNIST
394.72949 nm185O Iemission2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5PMedidaNIST
394.74813 nm160O Iemission2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5PMedidaNIST
532.9681 nm160O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5d 5D*MedidaNIST
604.6233 nm160O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S*MedidaNIST
394.75862 nm140O Iemission2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5PMedidaNIST
543.6862 nm135O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S*MedidaNIST
559.789 nm130O Vemission1s2.2s.3p 3P* → 1s2.2s.3d 3DMedidaNIST
650.024 nm130O Vemission1s2.2p.(2P*<3/2>).3p 3D → 1s2.2p.(2P*<3/2>).3d 3F*MedidaNIST
382.34136 nm120O Iemission2s2.2p3.(2D*).3s 3D* → 2s2.2p3.(2P*).3p 3DMedidaNIST
557.7339 nm120O Iemission2s2.2p4 1D → 2s2.2p4 1SMedidaNIST
543.5775 nm110O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S*MedidaNIST
559.2252 nm110O IIIemission2s2.2p.(2P*).3s 1P* → 2s2.2p.(2P*).3p 1PMedidaNIST
604.6495 nm110O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S*MedidaNIST
395.46067 nm100O Iemission2s2.2p3.(4S*).3p 3P → 2s2.2p3.(2P*).3s 3P*MedidaNIST
412.396 nm100O Vemission1s2.2p.(2P*<3/2>).3s 3P* → 1s2.2p.(2P*<3/2>).3p 3DMedidaNIST
436.8258 nm100O Iemission2s2.2p3.(4S*).3s 3S* → 2s2.2p3.(4S*).4p 3PMedidaNIST
543.5178 nm90O Iemission2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S*MedidaNIST
423.3274 nm80O Iemission2s2.2p3.(4S*).4p 3P → 2s2.2p3.(2D*<3/2>).3d 3P*MedidaNIST
441.4899 nm27O IIemission2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2D*MedidaNIST
672.1388 nm26O IIemission2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2S*MedidaNIST
441.6975 nm25O IIemission2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2D*MedidaNIST
397.3256 nm24O IIemission2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2P*MedidaNIST
407.58617 nm24O IIemission2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4FMedidaNIST
464.91347 nm24O IIemission2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D*MedidaNIST
664.1031 nm24O IIemission2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2S*MedidaNIST
407.21525 nm23O IIemission2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4FMedidaNIST
434.9426 nm23O IIemission2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4P*MedidaNIST
411.92165 nm22O IIemission2s2.2p2.(3P).3p 4P* → 2s2.2p2.(3P).3d 4DMedidaNIST
459.0974 nm22O IIemission2s2.2p2.(1D).3s 2D → 2s2.2p2.(1D).3p 2F*MedidaNIST
464.18103 nm22O IIemission2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D*MedidaNIST
689.5102 nm22O IIemission2s2.2p2.(3P).3d 4F → 2s2.2p2.(3P).4p 4D*MedidaNIST
406.98819 nm21O IIemission2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4FMedidaNIST
435.126 nm21O IIemission2s2.2p2.(1D).3s 2D → 2s2.2p2.(1D).3p 2D*MedidaNIST
466.16324 nm21O IIemission2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D*MedidaNIST
470.5346 nm21O IIemission2s2.2p2.(3P).3p 2D* → 2s2.2p2.(3P).3d 2FMedidaNIST

Propiedades ampliadas

Radios covalentes (ampliados)

Radio covalente (Pyykkö)
63 pm
Radio covalente (Pyykkö, enlace doble)
57 pm
Radio covalente (Pyykkö, enlace triple)
53 pm
Radio covalente (Bragg)
65 pm

Radios de van der Waals

Bondi
152 pm
Batsanov
155 pm
Alvarez
150 pm
UFF
350 pm
MM3
182 pm
Dreiding
340,46 pm
Rowland–Taylor
158 pm

Radios atómicos y metálicos

Radio atómico (Rahm)
171 pm

Escalas de numeración

Mendeleev
99
Pettifor
101
Glawe
97

Escalas de electronegatividad

Ghosh
0
Gunnarsson–Lundqvist
8
Robles–Bartolotti
6

Polarizabilidad y dispersión

Polarizabilidad dipolar
5,3 a.u.
Polarizabilidad dipolar (incert.)
0,2 a.u.
C₆
15,6 Ha·Bohr6
C₆ (Gould–Bučko)
16,7 Ha·Bohr6

Afinidad química

Afinidad protónica
485,2 kJ/mol
Basicidad en fase gaseosa
459,6 kJ/mol

Transiciones de fase y alótropos

Punto de fusión54,36 K
Punto de ebullición90,19 K
Punto crítico (temperatura)154,58 K
Punto crítico (presión)5,04 MPa
Punto triple (temperatura)54,36 K
Punto triple (presión)0,15 kPa

Categorías de estados de oxidación

−2 main
+1 extended
−1 extended
+2 extended
0 extended

Datos de referencia avanzados

Constantes de apantallamiento (3)
nOrbitalσ
1s0,3421
2p3,5468
2s3,5084
Detalle de los radios cristalinos (5)
CargaCNEspínrcrystal (pm)Origen
-2II121
-2III122
-2IV124
-2VI126
-2VIII128
Modos de desintegración de los isótopos (22)
IsótopoModoIntensidad
112p100%
122p100%
13B+100%
13B+p10,9%
14B+100%
15B+100%
19B-100%
20B-100%
21B-100%
21B-n—
Factores de dispersión de rayos X (502)
Energía (eV)f₁f₂
10—0,70328
10,1617—0,70723
10,3261—0,70738
10,4931—0,70753
10,6628—0,70768
10,8353—0,70783
11,0106—0,70798
11,1886—0,70813
11,3696—0,70828
11,5535—0,70843

Datos adicionales

Sources

Sources of this element.

Oxygen is the third most abundant element found in the sun, and it plays a part in the carbon-nitrogen cycle, the process once thought to give the sun and stars their energy. Oxygen under excited conditions is responsible for the bright red and yellow-green colors of the Aurora Borealis.

A gaseous element, oxygen forms 21% of the atmosphere by volume and is obtained by liquefaction and fractional distillation. The atmosphere of Mars contains about 0.15% oxygen. The element and its compounds make up 49.2%, by weight, of the earth's crust. About two thirds of the human body and nine tenths of water is oxygen.

In the laboratory it can be prepared by the electrolysis of water or by heating potassium chlorate with manganese dioxide as a catalyst.

Referencias (1)

Isotopes in Forensic Science and Anthropology

Information on the use of this element's isotopes in forensic science and anthropology.

Measurements of relative 18O abundances have been used to determine the breeding grounds of many species of migrant songbirds. These species of songbirds only grow their feathers before migration, and they grow them on or close to their breeding grounds. Therefore, the isotopic composition of a bird’s feathers correlates to the isotopic signature of the growing season’s precipitation [19] K. A. Hobson. Oecologia120, 314 (1999)., [20] K. A. Hobson, L. I. Wassenaar. Oecologia.109, 142 (1996)..

Measurements of relative 18O abundances of human hair or nail samples collected at archeological sites have been used to determine the geographic region in which a subject lived based on the oxygen isotopic composition of the water they drank (Fig. IUPAC.8.3). This is possible because hair stores a daily record of oxygen isotopic composition of intake water, which correlates to local meteoric water [92] D. M. O’Brien, M. J. Woller. Rapid Commun. Mass Spectrom.21, 2422 (2007)..

Referencias (7)
  • [14] W. Dansgaard. Tellus16, 436 (1964).
  • [15] I. D. Clark, P. Fritz. Environmental Isotopes in Hydrogeology, p. 328, Lewis Publishers, New York (1997).
  • [19] K. A. Hobson. Oecologia120, 314 (1999).
  • [20] K. A. Hobson, L. I. Wassenaar. Oecologia.109, 142 (1996).
  • [92] D. M. O’Brien, M. J. Woller. Rapid Commun. Mass Spectrom.21, 2422 (2007).
  • [93] I. Fraser, W. Meier-Augenstein, R. M. Kalin. Rapid Commun. Mass Spectrom.20, 1109 (2006).
  • [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703

Referencias

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

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)
Oxygen

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
Oxygen

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
Oxygen

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
Oxygen

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
Oxygen

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

9 PubChem Elements
Oxygen

The element property data was retrieved from publications.

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