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He 2

Helium (He)

noble-gas
Période: 1 Groupe: 18 Bloc: s

Gas

Masse atomique relative standard

4,002602 u

Configuration électronique

1s2

Point de fusion

-272,2 °C

Point d’ébullition

-268,93 °C

Masse volumique

0,1785 kg/m³

États d’oxydation

0

Électronégativité (Pauling)

N/D

Énergie d’ionisation (1re)

24,587389 eV

Année de découverte

1868

Rayon atomique

120 pm

Détails

Origine du nom Greek: hêlios (sun).
Pays de découverte Scotland/Sweden
Découvreurs Sir William Ramsey, Nils Langet, P.T.Cleve

Helium is a noble gas and the second element in the periodic table. It is chemically inert under ordinary conditions because its 1s electron shell is filled, and it exists as monatomic He rather than as a molecule. Its low density, very low boiling point, high thermal conductivity, and nonflammability make it technologically important. On Earth it is uncommon in the atmosphere but can accumulate in some natural gas reservoirs through radioactive decay of uranium and thorium.

Helium has the lowest melting point of any element and is widely used in cryogenic research because its boiling point is close to absolute zero. Also, the element is vital in the study of super conductivity.

Using liquid helium, Kurti, co-workers and others have succeeded in obtaining temperatures of a few microkelvins by the adiabatic demagnetization of copper nuclei.

Helium has other peculiar properties: It is the only liquid that cannot be solidified by lowering the temperature. It remains liquid down to absolute zero at ordinary pressures, but will readily solidify by increasing the pressure. Solid 3He and 4He are unusual in that both can be changed in volume by more than 30% by applying pressure.

The specific heat of helium gas is unusually high. The density of helium vapor at the normal boiling point is also very high, with the vapor expanding greatly when heated to room temperature. Containers filled with helium gas at 5 to 10 K should be treated as though they contained liquid helium due to the large increase in pressure resulting from warming the gas to room temperature.

While helium normally has a 0 valence, it seems to have a weak tendency to combine with certain other elements. Means of preparing helium difluoride have been studied, and species such as HeNe and the molecular ions He+ and He++ have been investigated.

The name derives from the Greek helios for "sun". The element was discovered by spectroscopy during a solar eclipse in the sun's chromosphere by the French astronomer Pierre-Jules-Cesar Janssen in 1868. It was independently discovered and named helium by the English astronomer Joseph Norman Lockyer.

Helium was thought to be only a solar constituent until it was later found to be identical to the helium in the uranium ore cleveite by the Scottish chemist William Ramsay in 1895. The Swedish chemists Per Theodore Cleve and Nils Abraham Langet independently found helium in cleveite at about the same time.

Helium, the second most abundant element in the universe, was discovered on the sun before it was found on the earth. Pierre-Jules-César Janssen, a French astronomer, noticed a yellow line in the sun's spectrum while studying a total solar eclipse in 1868. Sir Norman Lockyer, an English astronomer, realized that this line, with a wavelength of 587.49 nanometers, could not be produced by any element known at the time. It was hypothesized that a new element on the sun was responsible for this mysterious yellow emission. This unknown element was named helium by Lockyer. The hunt to find helium on earth ended in 1895. Sir William Ramsay, a Scottish chemist, conducted an experiment with a mineral containing uranium called clevite. He exposed the clevite to mineral acids and collected the gases that were produced. He then sent a sample of these gases to two scientists, Lockyer and Sir William Crookes, who were able to identify the helium within it. Two Swedish chemists, Nils Langlet and Per Theodor Cleve, independently found helium in clevite at about the same time as Ramsay.

Helium makes up about 0.0005% of the earth's atmosphere. This trace amount of helium is not gravitationally bound to the earth and is constantly lost to space. The earth's atmospheric helium is replaced by the decay of radioactive elements in the earth's crust. Alpha decay, one type of radioactive decay, produces particles called alpha particles. An alpha particle can become a helium atom once it captures two electrons from its surroundings. This newly formed helium can eventually work its way to the atmosphere through cracks in the crust.

From the Greek word helios, the sun. Janssen obtained the first evidence of helium during the solar eclipse of 1868 when he detected a new line in the solar spectrum. Lockyer and Frankland suggested the name helium for the new element. In 1895 Ramsay discovered helium in the uranium mineral cleveite while it was independently discovered in cleveite by the Swedish chemists Cleve and Langlet at about the same time. Rutherford and Royds in 1907 demonstrated that alpha particles are helium nuclei.

Images

Propriétés

Propriétés chimiques

Électronégativité (Allen)
4,16
Affinité électronique
-0,5 eV (valeur négative — l'atome ne devrait pas lier d'électron supplémentaire)
Énergie d’ionisation (1re)
24,587389 eV Comparer : Énergie d’ionisation (1re) de tous les éléments →
Énergie d’ionisation (2e)
54,417953 eV Comparer : Énergie d’ionisation (2e) de tous les éléments →
États d’oxydation
0 Comparer : États d’oxydation de tous les éléments →
Électrons de valence
2 Comparer : Électrons de valence de tous les éléments →
Configuration électronique
1s2

Propriétés thermodynamiques

Point triple (température)
-270,973 °C
Point triple (pression)
5043 Pa
Point critique (température)
-267,955 °C
Point critique (pression)
2,2746e+5 Pa
Enthalpie de fusion
1,430274e-4 eV Comparer : Enthalpie de fusion de tous les éléments →
Enthalpie de vaporisation
8,291444e-4 eV Comparer : Enthalpie de vaporisation de tous les éléments →
Enthalpie d’atomisation
0 eV

Propriétés nucléaires

Protons
2 Comparer : Protons de tous les éléments →
Neutrons
2 Comparer : Neutrons de tous les éléments →
Isotopes connus
8 Comparer : Isotopes connus de tous les éléments →
Isotopes stables
2 Comparer : Isotopes stables de tous les éléments →
Isotope le plus stable
He-4
Année de découverte
1868

Abondance

Abondance (croûte terrestre)
0,008 mg/kg Comparer : Abondance (croûte terrestre) de tous les éléments →
Abondance (océan)
7 × 10−6 mg/L Comparer : Abondance (océan) de tous les éléments →

Structure cristalline

Paramètre de maille a
357 pm

Structure électronique

Électrons par couche
2 Comparer : Électrons par couche de tous les éléments →

Identifiants

Numéro CAS
7440-59-7 Comparer : Numéro CAS de tous les éléments →
Symbole de terme
1S0
InChI
InChI=1S/He
Clé InChI
SWQJXJOGLNCZEY-UHFFFAOYSA-N

Configuration électronique Mesuré

Charge ionique
Protons 2
Électrons 2
Charge Neutre
Configuration He: 1s²
Configuration électronique
Mesuré
1s²
1s²
Diagramme d’orbitales
1s
2/2
Nombre total d’électrons: 2 Non appariés: 0

Modèle atomique

Protons 2
Neutrons 2
Électrons 2
Nombre de masse 4
Stabilité Stable

Les isotopes diffèrent par leur nombre de neutrons, leur masse et leur stabilité — pas par la configuration électronique de l’atome neutre.

Modèle atomique schématique, non à l’échelle.

Empreinte atomique

Spectre d’émission / d’absorption

25 / 108 (22 22 avec intensité)
Mesuré
Émission Visible : 380–750 nm

Distribution isotopique

499,9999%30,0001%Nombre de masseAbondance naturelle (%)
Nombre de masseMasse atomique (u)Abondance naturelleDemi-vie
3 Stable3,0160293201 ± 0,00000000250,0001%Stable
4 Stable4,00260325413 ± 0,0000000000699,9999%Stable
Mesuré

Phase / État

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

Explication: 293,9 °C au-dessus du point d’ébullition (-268,93 °C)

Point de fusion -272,2 °C
Point d’ébullition -268,93 °C
Écart au-dessus du point d’ébullition 293,9 °C
0 K Température actuelle: 25 °C 6000 K
Échelle des phases

Schématique, non à l’échelle

Solide
Liquide
Gaz
Fusion
Ébullition
25°C
Solide
Liquide
Gaz
Actuel

Points de transition de phase

Point de fusion Littérature scientifique
-272,2 °C
Point d’ébullition Littérature scientifique
-268,93 °C
Phase actuelle Calculé
Gaz

Énergies de transition

Enthalpie de fusion Littérature scientifique
1,430274e-4 eV

Énergie nécessaire pour faire fondre 1 mol au point de fusion

Enthalpie de vaporisation Littérature scientifique
8,291444e-4 eV

Énergie nécessaire pour vaporiser 1 mol au point d’ébullition

Masse volumique

Masse volumique de référence Littérature scientifique
0,1785 kg/m³

Dans les conditions standard

Masse volumique actuelle Estimé
0,16360253 kg/m³

Estimée par la loi des gaz parfaits à la température actuelle

Données avancées

Point triple Littérature scientifique
-270,973 °C
Point critique Littérature scientifique
-267,955 °C

Spectres atomiques

Raies répertoriées ?

IonChargeNombre total de raiesProbabilités de transitionDésignations des niveaux
3He I Isotope0228902289
He I 0230022892300
He II +1140140140
3He II Isotope+1140140140
Raies répertoriées par le NIST →

Niveaux répertoriés ?

IonChargeNiveaux
3He I Isotope0188
He I 0843
He II +1149
3He II Isotope+1149
Niveaux répertoriés par le NIST →
2 He 4.002602

Helium — Visualiseur d’orbitales atomiques

1s2
Niveaux d’énergie 2
États d’oxydation 0
HOMO 1s n=1 · l=0 · m=0
Helium — Aperçu du visualiseur d’orbitales atomiques
Three.js se charge uniquement à la demande
2 He 4.002602

Helium — Visualiseur de structure cristalline

Hexagonal primitif · Pearson hP2
Expérimental
Pearson hP2
N° de coord. 12
Compacité 74.048%
Aucune structure cristalline dans les conditions standard — gaz à 298 K, 1 atm
Structure de la phase solide à 293 K
Helium — Aperçu du visualiseur de structure cristalline
Three.js se charge uniquement à la demande

Composés

He
4,003 u
He
3,016 u
He
8,034 u
He
6,019 u
He
4,003 u

Isotopes (2)

Seven isotopes of helium are known: Liquid helium (He-4) exists in two forms: He-4I and He-4II, with a sharp transition point at 2.174K. He-4I (above this temperature) is a normal liquid, but He-4II (below it) is unlike any other known substance. It expands on cooling, its conductivity for heat is enormous, and neither its heat conduction nor viscosity obeys normal rules.

Nombre de masseMasse atomique (u)Abondance naturelleDemi-vieMode de désintégration
3 Stable3,0160293201 ± 0,00000000250,0001% ± 0,0000%Stable
stable
4 Stable4,00260325413 ± 0,0000000000699,9999% ± 0,0000%Stable
stable
3 Stable
Masse atomique (u) 3,0160293201 ± 0,0000000025
Abondance naturelle 0,0001% ± 0,0000%
Demi-vie Stable
Mode de désintégration
stable
4 Stable
Masse atomique (u) 4,00260325413 ± 0,00000000006
Abondance naturelle 99,9999% ± 0,0000%
Demi-vie Stable
Mode de désintégration
stable

Raies spectrales

Longueur d’onde (nm)IntensitéDegré d’ionisationTypeTransitionPrécisionSource
381.9601975 nmN/DHe Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
381.9602773 nmN/DHe Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
381.9602828 nmN/DHe Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
381.9613129 nmN/DHe Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
381.9613927 nmN/DHe Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
381.975731 nm1He Iemission1s.2p 3P* → 1s.6d 3DMesuréeNIST
383.3548713 nm0He Iemission1s.2p 1P* → 1s.10d 1DMesuréeNIST
383.8100125 nmN/DHe Iemission1s.2p 1P* → 1s.10s 1SMesuréeNIST
386.7472343 nmN/DHe Iemission1s.2p 3P* → 1s.6s 3SMesuréeNIST
386.7483778 nmN/DHe Iemission1s.2p 3P* → 1s.6s 3SMesuréeNIST
386.7631595 nm1He Iemission1s.2p 3P* → 1s.6s 3SMesuréeNIST
387.1786406 nm1He Iemission1s.2p 1P* → 1s.9d 1DMesuréeNIST
387.8176858 nmN/DHe Iemission1s.2p 1P* → 1s.9s 1SMesuréeNIST
388.8604644 nmN/DHe Iemission1s.2s 3S → 1s.3p 3P*MesuréeNIST
388.864559 nmN/DHe Iemission1s.2s 3S → 1s.3p 3P*MesuréeNIST
388.8648915 nmN/DHe Iemission1s.2s 3S → 1s.3p 3P*MesuréeNIST
392.6544387 nm1He Iemission1s.2p 1P* → 1s.8d 1DMesuréeNIST
393.5945223 nm0He Iemission1s.2p 1P* → 1s.8s 1SMesuréeNIST
396.4728829 nm20He Iemission1s.2s 1S → 1s.4p 1P*MesuréeNIST
397.2015454 nmN/DHe Iemission1s.2s 1S → 1s.4d 1DMesuréeNIST
400.9256516 nm1He Iemission1s.2p 1P* → 1s.7d 1DMesuréeNIST
402.3979795 nm1He Iemission1s.2p 1P* → 1s.7s 1SMesuréeNIST
402.6184368 nmN/DHe Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
402.6185901 nmN/DHe Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
402.6186005 nmN/DHe Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
402.619676 nmN/DHe Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
402.6198294 nmN/DHe Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
402.6356959 nm5He Iemission1s.2p 3P* → 1s.5d 3DMesuréeNIST
412.0810765 nmN/DHe Iemission1s.2p 3P* → 1s.5s 3SMesuréeNIST
412.0823747 nmN/DHe Iemission1s.2p 3P* → 1s.5s 3SMesuréeNIST
412.0991564 nm2He Iemission1s.2p 3P* → 1s.5s 3SMesuréeNIST
414.1332157 nmN/DHe Iemission1s.2p 1P* → 1s.6p 1P*MesuréeNIST
414.3759059 nm3He Iemission1s.2p 1P* → 1s.6d 1DMesuréeNIST
416.8971512 nm1He Iemission1s.2p 1P* → 1s.6s 1SMesuréeNIST
438.3278555 nmN/DHe Iemission1s.2p 1P* → 1s.5p 1P*MesuréeNIST
438.7929143 nm10He Iemission1s.2p 1P* → 1s.5d 1DMesuréeNIST
443.7553428 nm3He Iemission1s.2p 1P* → 1s.5s 1SMesuréeNIST
447.1470373 nmN/DHe Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
447.1474077 nmN/DHe Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
447.1474317 nmN/DHe Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
447.1485658 nmN/DHe Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
447.1489362 nmN/DHe Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
447.1683251 nm25He Iemission1s.2p 3P* → 1s.4d 3DMesuréeNIST
468.537685 nmN/DHe IIemission3p 2P* → 4d 2DMesuréeNIST
468.5407226 nmN/DHe IIemission3s 2S → 4p 2P*MesuréeNIST
468.5524404 nmN/DHe IIemission3p 2P* → 4s 2SMesuréeNIST
468.5568006 nmN/DHe IIemission3s 2S → 4p 2P*MesuréeNIST
468.570385 nmN/DHe IIemission3d 2D → 4f 2F*MesuréeNIST
468.570438 nmN/DHe IIemission3p 2P* → 4d 2DMesuréeNIST
468.575708 nmN/DHe IIemission3d 2D → 4p 2P*MesuréeNIST
468.5757975 nmN/DHe IIemission3p 2P* → 4d 2DMesuréeNIST
468.5804092 nmN/DHe IIemission3d 2D → 4f 2F*MesuréeNIST
468.583089 nmN/DHe IIemission3d 2D → 4f 2F*MesuréeNIST
468.5884123 nmN/DHe IIemission3d 2D → 4p 2P*MesuréeNIST
468.5905553 nmN/DHe IIemission3p 2P* → 4s 2SMesuréeNIST
468.5917885 nmN/DHe IIemission3d 2D → 4p 2P*MesuréeNIST
471.3139173 nmN/DHe Iemission1s.2p 3P* → 1s.4s 3SMesuréeNIST
471.3156155 nmN/DHe Iemission1s.2p 3P* → 1s.4s 3SMesuréeNIST
471.3375684 nm4He Iemission1s.2p 3P* → 1s.4s 3SMesuréeNIST
491.074748 nmN/DHe Iemission1s.2p 1P* → 1s.4p 1P*MesuréeNIST
492.0612726 nmN/DHe Iemission1s.2p 1P* → 1s.4f 1F*MesuréeNIST
492.1931036 nm20He Iemission1s.2p 1P* → 1s.4d 1DMesuréeNIST
501.567801 nm100He Iemission1s.2s 1S → 1s.3p 1P*MesuréeNIST
504.208749 nmN/DHe Iemission1s.2s 1S → 1s.3d 1DMesuréeNIST
504.773857 nm10He Iemission1s.2p 1P* → 1s.4s 1SMesuréeNIST
587.443388 nmN/DHe Iemission1s.2p 3P* → 1s.3d 1DMesuréeNIST
587.446026 nmN/DHe Iemission1s.2p 3P* → 1s.3d 1DMesuréeNIST
587.559871 nmN/DHe Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
587.561397 nmN/DHe Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
587.561484 nmN/DHe Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
587.56251 nmN/DHe Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
587.564036 nmN/DHe Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
587.596628 nm100He Iemission1s.2p 3P* → 1s.3d 3DMesuréeNIST
655.976872 nmN/DHe IIemission4p 2P* → 6d 2DMesuréeNIST
655.979395 nmN/DHe IIemission4s 2S → 6p 2P*MesuréeNIST
655.98544 nmN/DHe IIemission4p 2P* → 6s 2SMesuréeNIST
655.988733 nmN/DHe IIemission4s 2S → 6p 2P*MesuréeNIST
656.005227 nmN/DHe IIemission4d 2D → 6f 2F*MesuréeNIST
656.005274 nmN/DHe IIemission4p 2P* → 6d 2DMesuréeNIST
656.008318 nmN/DHe IIemission4d 2D → 6p 2P*MesuréeNIST
656.008387 nmN/DHe IIemission4p 2P* → 6d 2DMesuréeNIST
656.01416 nmN/DHe IIemission4f 2F* → 6g 2GMesuréeNIST
656.014176 nmN/DHe IIemission4d 2D → 6f 2F*MesuréeNIST
656.015708 nmN/DHe IIemission4f 2F* → 6d 2DMesuréeNIST
656.015732 nmN/DHe IIemission4d 2D → 6f 2F*MesuréeNIST
656.016955 nmN/DHe IIemission4p 2P* → 6s 2SMesuréeNIST
656.017657 nmN/DHe IIemission4d 2D → 6p 2P*MesuréeNIST
656.018478 nmN/DHe IIemission4f 2F* → 6g 2GMesuréeNIST
656.01882 nmN/DHe IIemission4f 2F* → 6d 2DMesuréeNIST
656.018823 nmN/DHe IIemission4d 2D → 6p 2P*MesuréeNIST
656.019412 nmN/DHe IIemission4f 2F* → 6g 2GMesuréeNIST
656.02096 nmN/DHe IIemission4f 2F* → 6d 2DMesuréeNIST
663.190187 nmN/DHe Iemission1s.2p 1P* → 1s.3p 1P*MesuréeNIST
667.815174 nm100He Iemission1s.2p 1P* → 1s.3d 1DMesuréeNIST
667.967687 nmN/DHe Iemission1s.2p 1P* → 1s.3d 3DMesuréeNIST
706.517716 nmN/DHe Iemission1s.2p 3P* → 1s.3s 3SMesuréeNIST
706.521532 nmN/DHe Iemission1s.2p 3P* → 1s.3s 3SMesuréeNIST
706.570863 nm30He Iemission1s.2p 3P* → 1s.3s 3SMesuréeNIST
716.055563 nmN/DHe Iemission1s.3s 3S → 1s.10p 3P*MesuréeNIST
716.055907 nmN/DHe Iemission1s.3s 3S → 1s.10p 3P*MesuréeNIST
716.055935 nmN/DHe Iemission1s.3s 3S → 1s.10p 3P*MesuréeNIST
728.13508 nm50He Iemission1s.2p 1P* → 1s.3s 1SMesuréeNIST
729.803204 nmN/DHe Iemission1s.3s 3S → 1s.9p 3P*MesuréeNIST
729.803696 nmN/DHe Iemission1s.3s 3S → 1s.9p 3P*MesuréeNIST
729.803736 nmN/DHe Iemission1s.3s 3S → 1s.9p 3P*MesuréeNIST
749.984714 nmN/DHe Iemission1s.3s 3S → 1s.8p 3P*MesuréeNIST
749.985457 nmN/DHe Iemission1s.3s 3S → 1s.8p 3P*MesuréeNIST
749.985518 nmN/DHe Iemission1s.3s 3S → 1s.8p 3P*MesuréeNIST

Propriétés étendues

Rayons covalents (données étendues)

Rayon covalent (Pyykkö)
46 pm

Rayons de van der Waals

Bondi
140 pm
Alvarez
143 pm
UFF
236,2 pm
MM3
153 pm

Rayons atomiques et métalliques

Rayon atomique (Rahm)
134 pm
Rayon métallique (C12)
122 pm

Échelles de numérotation

Mendeleev
112
Pettifor
1
Glawe
1

Échelles d’électronégativité

Ghosh
0
Gunnarsson–Lundqvist
8
Robles–Bartolotti
8

Polarisabilité et dispersion

Polarisabilité dipolaire
1,3838 a.u.
Polarisabilité dipolaire (incertitude)
0 a.u.
C₆
1,42 Ha·Bohr6
C₆ (Gould–Bučko)
1,47 Ha·Bohr6

Affinité chimique

Affinité protonique
177,8 kJ/mol
Basicité en phase gazeuse
148,5 kJ/mol

Risque d’approvisionnement et économie

Concentration de la production
22
Risque relatif d’approvisionnement
7
Répartition des réserves
21
Stabilité politique (principal producteur)
57
Stabilité politique (principal détenteur de réserves)
57

Propriétés des gaz nobles

Masse volumique (25 °C) 0,164 g/L
Réactions

Transitions de phase et allotropes

Point d’ébullition4,22 K
Point critique (température)5,19 K
Point critique (pression)0,23 MPa
Point triple (température)2,18 K
Point triple (pression)5,04 kPa

Données de référence avancées

Constantes d’écran (1)
nOrbitaleσ
1s0,3125
Modes de désintégration des isotopes (9)
IsotopeModeIntensité
5n100%
6B-100%
6B-d0%
7n100%
8B-100%
8B-n16%
8B-t0,9%
9n100%
102n100%
Facteurs de diffusion des rayons X (501)
Énergie (eV)f₁f₂
10—0
10,1617—0
10,3261—0
10,4931—0
10,6628—0
10,8353—0
11,0106—0
11,1886—0
11,3696—0
11,5535—0

Données complémentaires

Sources

Sources of this element.

Except for hydrogen, helium is the most abundant element found in the universe. Helium is extracted from natural gas. In fact, all natural gas contains at least trace quantities of helium.

It has been detected spectroscopically in great abundance, especially in the hotter stars, and it is an important component in both the proton-proton reaction and the carbon cycle, which account for the energy of the sun and stars.

The helium content of the atmosphere is about 1 part in 200,000. While it is present in various radioactive minerals as a decay product, the bulk of the Free World's supply is obtained from wells in Texas, Oklahoma, and Kansas. Outside the United States, the only known helium extraction plants, in 1984 were in Eastern Europe (Poland), the USSR, and a few in India.

Références (1)

Références

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

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)
Helium

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.

Note sur la licence: 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
Helium

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/

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

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
Helium

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
Helium

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

9 PubChem Elements
Helium

The element property data was retrieved from publications.

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