Lutetium (Lu)
lanthanideSolid
Masse atomique relative standard
174,9668 uConfiguration électronique
[Xe] 6s2 4f14 5d1Point de fusion
1662,85 °CPoint d’ébullition
3401,85 °CMasse volumique
9840 kg/m³États d’oxydation
0, +1, +2, +3Électronégativité (Pauling)
1,27Énergie d’ionisation (1re)
5,425871 eVAnnée de découverte
1907Rayon atomique
175 pmDétails
Lutetium is a dense, silvery lanthanide and the last element of the 4f series. In chemistry it is almost exclusively trivalent, with a filled 4f shell in Lu³⁺ and a relatively small ionic radius compared with other lanthanides. It occurs with the rare-earth elements in minerals such as monazite and xenotime, but is one of the least abundant lanthanides. Its main technological value lies in specialized scintillators, catalysts, and medical radioisotopes rather than in bulk structural use.
Lutetium occurs in very small amounts in nearly all minerals containing yttrium, and is present in monazite to the extent of about 0.003%, which is a commercial source. The pure metal has been isolated only in recent years and is one of the most difficult to prepare. It can be prepared by the reduction of anhydrous LuCl3 or LuF3 by an alkali or alkaline earth metal. The metal is silvery white and relatively stable in air. 176Lu occurs naturally (2.6%) with 175Lu (97.4%). It is radioactive with a half-life of about 3 x 1010 years.
The name derives from Lutetia, the ancient name for the city of Paris. The discovery of lutetium is credited to the French chemist Georges Urbain in 1907 although it had been separated earlier and independently by the Austrian chemist Carl Auer (Baron von Welsbach) from an ytterbium sample.
Von Welsbach had named the element cassiopeium after the constellation Cassiopeia. However, because Urbain published his results before Auer, his name for the element was adopted by IUPAC in 1949.
The mineral gadolinite ((Ce, La, Nd, Y)2FeBe2Si2O10), discovered in a quarry near the town of Ytterby, Sweden, has been the source of a great number of rare earth elements. In 1843, Carl Gustaf Mosander, a Swedish chemist, was able to separate gadolinite into three materials, which he named yttria, erbia and terbia. As might be expected considering the similarities between their names and properties, scientists soon confused erbia and terbia and, by 1877, had reversed their names. What Mosander called erbia is now called terbia and visa versa. In 1878 Jean Charles Galissard de Marignac, a Swiss chemist, discovered that erbia was itself composed of two components. One component was named ytterbia by Marignac while the other component retained the name erbia. Marignac believed that ytterbia was a compound of a new element, which he named ytterbium. Other chemists produced and experimented with ytterbium in an attempt to determine some of it's properties. Unfortunately, different scientists obtained different results from the same experiments. While some scientists believed that these inconsistent results were caused by poor procedures or faulty equipment, Georges Urbain, a French chemist, believed that ytterbium wasn't an element at all, but a mixture of two elements. In 1907, Urbain was able to separate ytterbium into two elements. Urbain named one of the elements neoytterbium (new ytterbium) and the other element lutecium. Carl Auer von Welsbach, an Austrian chemist working independently of Urbain, reached the same conclusions at nearly the same time. Welsbach chose the names albebaranium and cassiopium for these elements. Urbain was eventually credited with the discovery of the elements and won the right to name them, although chemists later changed the name neoytterbium back to ytterbium and changed the spelling of lutecium to lutetium. Today, lutetium is primarily obtained through an ion exchange process from monazite sand ((Ce, La, Th, Nd, Y)PO4), a material rich in rare earth elements.
Lutetia is the ancient name for Paris. In 1907, Urbain described a process by which Marignac's ytterbium (1879) could be separated into the two elements, ytterbium (neoytterbium) and lutetium. These elements were identical with "aldebaranium" and "cassiopeium," independently discovered at this time. The spelling of the element was changed from lutecium to lutetium in 1949.
Pure lutetium is a bright silvery metal that tarnishes slowly in air. It is relatively hard and dense for a lanthanide, and can be cut or machined as a reactive metal under suitable conditions. Macroscopic metal is available, but usually only in small quantities because separation is costly.
The largest practical uses of lutetium are specialized. Lutetium oxyorthosilicate, Lu₂SiO₅, and related cerium-doped crystals are important scintillators in positron emission tomography and other radiation detectors. Lutetium compounds are used as catalysts or catalyst supports in some petroleum refining and organic reactions. The radioisotope ¹⁷⁷Lu is used in targeted radiopharmaceutical therapy, where its beta emission and accompanying gamma rays are useful for treatment and imaging dosimetry. Metallic lutetium itself has few direct applications.
Lutetium is one of the most difficult elements to prepare and has no large scale practical uses, although some of its radioactive isotopes can be used as a catalyst in the cracking of petroleum products and a catalyst in some hydrogenation and polymerization processes.
Stable lutetium nuclides, which emit pure beta radiation after thermal neutron activation, can be used as catalysts in cracking, alkylation, hydrogenation, and polymerization. Virtually no other commercial uses have been found yet for lutetium.
Isotopes in Biology
176Lu (with a half-life of 3.73×1010 years) is used in labeling experiments to quantify absolute protein abundance (absolute quantities of proteins in a cell) and examine the extent of synthesis of proteins under specific biological conditions [500] C. Rappel, D. Schaumloöffel. Anal. Chem.81, 385 (2009).. 175Lu has been used as a yield tracer in inductively coupled plasma mass spectrometry (ICP-MS) determination of plutonium in urine [500] C. Rappel, D. Schaumloöffel. Anal. Chem.81, 385 (2009)..
Isotopes in Medicine
177Lu (with a half-life of 160 h) has potential for use as an isotope for radioimmunotherapy for the treatment of small, soft tumors and for imaging purposes (Fig. IUPAC.71.1) [501] N. H. Bander, M. I. Milowsky, D. M. Nanus, L. Kostakoglu, S. Vallabhajosula, S. J. Goldsmith. J. Clin. Oncol.23, 4591 (2005)..
Lutetium chemistry is dominated by the +3 oxidation state. Common compounds include lutetium oxide, Lu₂O₃, a refractory sesquioxide; lutetium chloride, LuCl₃; lutetium fluoride, LuF₃; and lutetium nitrate, Lu(NO₃)₃. Lu³⁺ forms colorless or weakly colored salts because the 4f shell is filled and gives little visible absorption. Organometallic and coordination compounds are known, including cyclopentadienyl complexes, but they are mainly used in research or as specialized catalysts. Stable lower oxidation states are not characteristic under ordinary conditions.
See more information at the Lutetium compound page.
Lutetium metal dust can present fire and irritation hazards typical of reactive rare-earth metals. Soluble lutetium salts should be handled as toxic laboratory chemicals, although lutetium has no known biological role and its ordinary compounds are not among the most acutely hazardous rare-earth salts. The main isotope-specific hazard is radiological: ¹⁷⁷Lu and other radioactive isotopes require shielding, contamination control, and regulated handling. Stable natural lutetium is not significantly radioactive for practical purposes, despite containing long-lived ¹⁷⁶Lu.
While lutetium, like other rare-earth metals, is thought to have a low toxicity rating, it should be handled with care until more information is available.
Lutetium is dispersed in the crust with other heavy rare-earth elements and is concentrated only weakly by normal geological processes. It is released from minerals mainly through weathering or mining and processing of rare-earth ores. In natural waters Lu³⁺ is strongly complexed, adsorbed to particles, or incorporated into sediments, so dissolved concentrations are very low. It has no recognized biological function, and ecological effects are chiefly a concern near rare-earth mining, refining, or waste streams.
Lutetium is obtained as a minor component during separation of mixed rare-earth concentrates, especially from xenotime, ion-adsorption clays, and some monazite-derived streams. Its supply is constrained less by absolute geological scarcity than by the difficulty of separating adjacent lanthanides with very similar chemistry and by the limited volume of heavy rare-earth processing. Demand is modest but high-value, led by scintillator materials, research chemicals, catalysts, and medical isotope production chains. Recycling is limited and mostly tied to recovery from specialized crystals or process residues rather than broad consumer products.
Found with ytterbium in gadolinite and xenotime. Usually obtained from monazite sand which is ofter 50% rare earth by weight and 0.003% lutetium.
Lutetium is a rare heavy element in cosmic terms. Its stable isotope ¹⁷⁵Lu and long-lived ¹⁷⁶Lu are produced by neutron-capture processes in evolved stars and supernova-related environments, with details depending on s-process and r-process histories. In planetary materials it follows lithophile rare-earth behavior and is useful in isotope geochemistry, especially through the ¹⁷⁶Lu–¹⁷⁶Hf decay system.
- Lutetium was the last naturally occurring lanthanide to be identified as a separate element.
- The name derives from Lutetia, the Latin name for Paris.
- Lu³⁺ is the smallest common trivalent lanthanide ion.
- Natural lutetium is mostly ¹⁷⁵Lu, with a small fraction of long-lived ¹⁷⁶Lu.
- The ¹⁷⁶Lu–¹⁷⁶Hf system is used to date rocks and study mantle evolution.
- Lutetium is often placed under yttrium in periodic tables, but its group placement has been historically debated.
Images
Propriétés
Propriétés physiques
- Rayon atomique (empirique)
- 175 pm Comparer : Rayon atomique (empirique) de tous les éléments →
- Rayon covalent
- 187 pm Comparer : Rayon covalent de tous les éléments →
- Rayon de van der Waals
- 221 pm Comparer : Rayon de van der Waals de tous les éléments →
- Masse volumique
- 9840 kg/m³ Comparer : Masse volumique de tous les éléments →
- Volume molaire
- 0,0178 L/mol
- Phase aux CNTP
- Solide Comparer : Phase aux CNTP de tous les éléments →
- Point de fusion
- 1662,85 °C Comparer : Point de fusion de tous les éléments →
- Point d’ébullition
- 3401,85 °C Comparer : Point d’ébullition de tous les éléments →
- Capacité thermique massique
- 0,154 J/(g·K) Comparer : Capacité thermique massique de tous les éléments →
- Capacité thermique molaire
- 26,86 J/(mol·K) Comparer : Capacité thermique molaire de tous les éléments →
- Structure cristalline
- Hexagonal compact Comparer : Structure cristalline de tous les éléments →
Propriétés chimiques
- Électronégativité (Pauling)
- 1,27 Comparer : Électronégativité (Pauling) de tous les éléments →
- Électronégativité (Allen)
- 1,09
- Affinité électronique
- 0,346 eV
- Énergie d’ionisation (1re)
- 5,425871 eV Comparer : Énergie d’ionisation (1re) de tous les éléments →
- Énergie d’ionisation (2e)
- 14,130049 eV Comparer : Énergie d’ionisation (2e) de tous les éléments →
- Énergie d’ionisation (3e)
- 20,959472 eV Comparer : Énergie d’ionisation (3e) de tous les éléments →
- Énergie d’ionisation (4e)
- 45,249156 eV Comparer : Énergie d’ionisation (4e) de tous les éléments →
- Énergie d’ionisation (5e)
- 66,80023 eV Comparer : Énergie d’ionisation (5e) de tous les éléments →
- États d’oxydation
- 0, +1, +2, +3 Comparer : États d’oxydation de tous les éléments →
- Électrons de valence
- 3 Comparer : Électrons de valence de tous les éléments →
- Configuration électronique
- [Xe] 6s2 4f14 5d1
Propriétés thermodynamiques
- Enthalpie de fusion
- 0,18759393 eV Comparer : Enthalpie de fusion de tous les éléments →
- Enthalpie de vaporisation
- 3,679328 eV Comparer : Enthalpie de vaporisation de tous les éléments →
- Enthalpie de sublimation
- 4,435923 eV
- Enthalpie d’atomisation
- 4,435923 eV
- Enthalpie d’atomisation
- 4,431777 eV
Propriétés nucléaires
- Protons
- 71 Comparer : Protons de tous les éléments →
- Neutrons
- 104 Comparer : Neutrons de tous les éléments →
- Isotopes connus
- 39 Comparer : Isotopes connus de tous les éléments →
- Isotopes stables
- 1 Comparer : Isotopes stables de tous les éléments →
- Isotope le plus stable
- Lu-175
- Année de découverte
- 1907
Abondance
- Abondance (croûte terrestre)
- 0,8 mg/kg Comparer : Abondance (croûte terrestre) de tous les éléments →
- Abondance (océan)
- 1,5 × 10−7 mg/L Comparer : Abondance (océan) de tous les éléments →
Structure cristalline
- Paramètre de maille a
- 351 pm
Structure électronique
- Électrons par couche
- 2, 8, 18, 32, 9, 2 Comparer : Électrons par couche de tous les éléments →
Identifiants
- Numéro CAS
- 7439-94-3 Comparer : Numéro CAS de tous les éléments →
- Symbole de terme
- 2D3/2
- InChI
- InChI=1S/Lu
- Clé InChI
- OHSVLFRHMCKCQY-UHFFFAOYSA-N
Configuration électronique Mesuré
Lu: 4f¹⁴ 5d¹ 6s²[Xe] 4f¹⁴ 5d¹ 6s²1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹ 6s²Modèle atomique
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
Distribution isotopique
| Nombre de masse | Masse atomique (u) | Abondance naturelle | Demi-vie |
|---|---|---|---|
| 175 Stable | 174,9407752 ± 0,000002 | 97,4010% | Stable |
Phase / État
Explication: 1637,8 °C en dessous du point de fusion (1662,85 °C)
Schématique, non à l’échelle
Points de transition de phase
Énergies de transition
Énergie nécessaire pour faire fondre 1 mol au point de fusion
Énergie nécessaire pour vaporiser 1 mol au point d’ébullition
Énergie nécessaire pour sublimer 1 mol au point de sublimation
Masse volumique
Dans les conditions standard
Dans les conditions standard
Spectres atomiques
Affichage de 10 sur 71. Tri par charge ionique croissante.
Raies répertoriées ?
| Ion | Charge | Nombre total de raies | Probabilités de transition | Désignations des niveaux |
|---|---|---|---|---|
| Lu I | 0 | 133 | 44 | 108 |
| Lu II | +1 | 79 | 9 | 17 |
| Lu III | +2 | 64 | 0 | 0 |
| Lu IV | +3 | 100 | 0 | 0 |
| Lu V | +4 | 64 | 0 | 0 |
Niveaux répertoriés ?
| Ion | Charge | Niveaux |
|---|---|---|
| Lu I | 0 | 234 |
| Lu II | +1 | 40 |
| Lu III | +2 | 29 |
| Lu IV | +3 | 62 |
| Lu V | +4 | 40 |
| Lu VI | +5 | 2 |
| Lu VII | +6 | 2 |
| Lu VIII | +7 | 2 |
| Lu IX | +8 | 2 |
| Lu X | +9 | 2 |
Rayons ioniques
| Charge | Coordinence | Spin | Rayon |
|---|---|---|---|
| +3 | 6 | N/D | 86.1 pm |
| +3 | 8 | N/D | 97.7 pm |
| +3 | 9 | N/D | 103.2 pm |
Composés
Isotopes (1)
| Nombre de masse | Masse atomique (u) | Abondance naturelle | Demi-vie | Mode de désintégration | |
|---|---|---|---|---|---|
| 175 Stable | 174,9407752 ± 0,000002 | 97,4010% ± 0,0130% | Stable | stable |
Propriétés étendues
Rayons covalents (données étendues)
- Rayon covalent (Pyykkö)
- 162 pm
- Rayon covalent (Pyykkö, liaison double)
- 131 pm
- Rayon covalent (Pyykkö, liaison triple)
- 131 pm
Rayons de van der Waals
- Alvarez
- 274 pm
- UFF
- 364 pm
- MM3
- 265 pm
Rayons atomiques et métalliques
- Rayon atomique (Rahm)
- 270 pm
Échelles de numérotation
- Mendeleev
- 41
- Pettifor
- 21
- Glawe
- 19
Échelles d’électronégativité
- Ghosh
- 0
- Miedema
- 3
- Gunnarsson–Lundqvist
- 3
- Robles–Bartolotti
- 2
Polarisabilité et dispersion
- Polarisabilité dipolaire
- 137 a.u.
- Polarisabilité dipolaire (incertitude)
- 7 a.u.
- C₆ (Gould–Bučko)
- 2020 Ha·Bohr6
Affinité chimique
- Affinité protonique
- 992 kJ/mol
- Basicité en phase gazeuse
- 970,6 kJ/mol
Paramètres de Miedema
- Volume molaire de Miedema
- 17,77 cm3/mol
- Densité électronique de Miedema
- 2
Risque d’approvisionnement et économie
- Concentration de la production
- 97
- Risque relatif d’approvisionnement
- 10
- Répartition des réserves
- 50
- Stabilité politique (principal producteur)
- 24
- Stabilité politique (principal détenteur de réserves)
- 24
Transitions de phase et allotropes
| Point de fusion | 1936,15 K |
| Point d’ébullition | 3675,15 K |
Catégories d’états d’oxydation
Données de référence avancées
Constantes d’écran (14)
| n | Orbitale | σ |
|---|---|---|
| 1 | s | 1,3805 |
| 2 | p | 4,389 |
| 2 | s | 18,5502 |
| 3 | d | 13,5812 |
| 3 | p | 20,8337 |
| 3 | s | 21,4655 |
| 4 | d | 35,7108 |
| 4 | f | 40,0688 |
| 4 | p | 33,8096 |
| 4 | s | 32,7308 |
Détail des rayons cristallins (3)
| Charge | CN | Spin | rcrystal (pm) | Origine |
|---|---|---|---|---|
| 3 | VI | 100,1 | from r^3 vs V plots, | |
| 3 | VIII | 111,7 | from r^3 vs V plots, | |
| 3 | IX | 117,2 | from r^3 vs V plots, |
Modes de désintégration des isotopes (53)
| Isotope | Mode | Intensité |
|---|---|---|
| 150 | p | 100% |
| 150 | B+ | — |
| 151 | p | — |
| 151 | B+ | — |
| 152 | B+ | 100% |
| 152 | B+p | 15% |
| 153 | A | — |
| 153 | B+ | — |
| 153 | p | 0% |
| 154 | B+ | — |
Facteurs de diffusion des rayons X (514)
| Énergie (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1,67493 |
| 10,1617 | — | 1,63824 |
| 10,3261 | — | 1,60236 |
| 10,4931 | — | 1,56726 |
| 10,6628 | — | 1,53293 |
| 10,8353 | — | 1,49935 |
| 11,0106 | — | 1,46651 |
| 11,1886 | — | 1,43538 |
| 11,3696 | — | 1,42424 |
| 11,5535 | — | 1,41319 |
Données complémentaires
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
8×10-1 milligrams per kilogram
Références (1)
- [5] Lutetium https://education.jlab.org/itselemental/ele071.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1.5×10-7 milligrams per liter
Références (1)
- [5] Lutetium https://education.jlab.org/itselemental/ele071.html
Références
(9)
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. 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
This section provides all form of data related to element Lutetium.
The element property data was retrieved from publications.

