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Y 39

Yttrium (Y)

transition-metal
Periode: 5 Gruppe: 3 Block: d

Solid

Standardatomgewicht

88,90584 u

Elektronenkonfiguration

[Kr] 5s2 4d1

Schmelzpunkt

1521,85 °C

Siedepunkt

3344,85 °C

Dichte

4470 kg/m³

Oxidationszustände

0, +1, +2, +3

Elektronegativität (Pauling)

1,22

Ionisierungsenergie (1.)

6,21726 eV

Entdeckungsjahr

1794

Atomradius

180 pm

Details

Namensherkunft From the Swedish village, Ytterby, where one of its minerals was first found.
Entdeckungsland Finland
Entdecker Johann Gadolin

Yttrium is a silvery transition metal grouped with the rare-earth elements because it commonly occurs with lanthanides and forms predominantly trivalent cations. Its chemistry is close to the heavier lanthanides, especially holmium and erbium, rather than to scandium. Although not itself a lanthanide, yttrium is a key component of phosphors, ceramics, lasers, and high-temperature oxide materials.

Yttrium has a silver-metallic luster and is relatively stable in air. Turnings of the metal, however, ignite in air if their temperature exceeds 400°C. Finely divided yttrium is very unstable in air.

The name derives from the Swedish village of Ytterby where the mineral gadolinite was found. In 1794, the Finnish chemist Johan Gadolin discovered yttrium in the mineral ytterbite, which was later renamed gadolinite for Gadolin. Gadolin originally called the element ytterbium after ytterbite. The name was subsequently shortened to yttrium, and later another element was given the name ytterbium.

Yttrium was discovered by Johan Gadolin, a Finnish chemist, while analyzing the composition of the mineral gadolinite ((Ce, La, Nd, Y)2FeBe2Si2O10) in 1789. Gadolinite, which was named for Johan Gadolin, was discovered several years earlier in a quarry near the town of Ytterby, Sweden. Today, yttrium is primarily obtained through an ion exchange process from monazite sand ((Ce, La, Th, Nd, Y)PO4), a material rich in rare earth elements.

Namded after Ytterby, a village in Sweden near Vauxholm. Yttria earth containing yttrium was discovered by Gadolin in 1794. Ytterby is the site of a quarry which yielded many unusual minerals containing rare earths and other elements. This small town, near Stockholm, bears the honor of giving names to erbium, terbium, and ytterbium as well as yttrium.

In 1843 Mosander showed that yttira could be resolved into the oxides (or earths) of three elements. The name yttria was reserved for the most basic one; the others were named erbia and terbia.

Bilder

Eigenschaften

Physikalisch

Atomradius (empirisch)
180 pm Vergleiche Atomradius (empirisch) aller Elemente →
Kovalenzradius
190 pm Vergleiche Kovalenzradius aller Elemente →
Van-der-Waals-Radius
219 pm Vergleiche Van-der-Waals-Radius aller Elemente →
Metallradius
162 pm Vergleiche Metallradius aller Elemente →
Dichte
4470 kg/m³ Vergleiche Dichte aller Elemente →
Molares Volumen
0,0198 L/mol
Aggregatzustand bei Standardbedingungen
Fest Vergleiche Aggregatzustand bei Standardbedingungen aller Elemente →
Schmelzpunkt
1521,85 °C Vergleiche Schmelzpunkt aller Elemente →
Siedepunkt
3344,85 °C Vergleiche Siedepunkt aller Elemente →
Spezifische Wärmekapazität
0,298 J/(g·K) Vergleiche Spezifische Wärmekapazität aller Elemente →
Molare Wärmekapazität
26,53 J/(mol·K) Vergleiche Molare Wärmekapazität aller Elemente →
Kristallstruktur
Hexagonal dichtest gepackt Vergleiche Kristallstruktur aller Elemente →

Chemisch

Elektronegativität (Pauling)
1,22 Vergleiche Elektronegativität (Pauling) aller Elemente →
Elektronegativität (Allen)
1,12
Elektronenaffinität
0,307 eV
Ionisierungsenergie (1.)
6,21726 eV Vergleiche Ionisierungsenergie (1.) aller Elemente →
Ionisierungsenergie (2.)
12,223642 eV Vergleiche Ionisierungsenergie (2.) aller Elemente →
Ionisierungsenergie (3.)
20,524481 eV Vergleiche Ionisierungsenergie (3.) aller Elemente →
Ionisierungsenergie (4.)
60,607409 eV Vergleiche Ionisierungsenergie (4.) aller Elemente →
Ionisierungsenergie (5.)
75,350259 eV Vergleiche Ionisierungsenergie (5.) aller Elemente →
Oxidationszustände
0, +1, +2, +3 Vergleiche Oxidationszustände aller Elemente →
Valenzelektronen
3 Vergleiche Valenzelektronen aller Elemente →
Elektronenkonfiguration
[Kr] 5s2 4d1

Thermodynamisch

Schmelzwärme
0,11836037 eV Vergleiche Schmelzwärme aller Elemente →
Verdampfungswärme
3,762243 eV Vergleiche Verdampfungswärme aller Elemente →
Sublimationswärme
4,394465 eV
Atomisierungswärme
4,394465 eV
Atomisierungsenthalpie
4,40172 eV

Nuklear

Protonen
39 Vergleiche Protonen aller Elemente →
Neutronen
50 Vergleiche Neutronen aller Elemente →
Bekannte Isotope
35 Vergleiche Bekannte Isotope aller Elemente →
Stabile Isotope
1 Vergleiche Stabile Isotope aller Elemente →
Stabilstes Isotop
Y-89
Entdeckungsjahr
1794

Häufigkeit

Häufigkeit (Erdkruste)
33 mg/kg Vergleiche Häufigkeit (Erdkruste) aller Elemente →
Häufigkeit (Ozean)
1,3 × 10−5 mg/L Vergleiche Häufigkeit (Ozean) aller Elemente →

Kristallstruktur

Gitterkonstante a
365 pm

Elektronische Struktur

Elektronen pro Schale
2, 8, 18, 9, 2 Vergleiche Elektronen pro Schale aller Elemente →

Identifikatoren

CAS-Nummer
7440-65-5 Vergleiche CAS-Nummer aller Elemente →
Termsymbol
2D3/2
InChI
InChI=1S/Y
InChI-Key
VWQVUPCCIRVNHF-UHFFFAOYSA-N

Elektronenkonfiguration Gemessen

Ionenladung
Protonen 39
Elektronen 39
Ladung Neutral
Konfiguration Y: 4d¹ 5s²
Elektronenkonfiguration
Gemessen
[Kr] 4d¹ 5s²
1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹ 5s²
Orbitaldiagramm
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
1/10 1↑
Gesamtelektronen: 39 Ungepaart: 1 ?

Atommodell

Protonen 39
Neutronen 50
Elektronen 39
Massenzahl 89
Stabilität Stabil

Isotope ändern die Neutronenzahl, Masse und Stabilität — nicht die Elektronenkonfiguration eines neutralen Atoms.

Schematisches Atommodell, nicht maßstabsgetreu.

Atomarer Fingerabdruck

Emissions- / Absorptionsspektrum

25 / 50 (50 50 mit Intensität)
Gemessen
Emission Sichtbar: 380–750 nm

Isotopenverteilung

Monoisotopisches Element
Einziges natürlich vorkommendes Isotop: 89 — 100,0000%
89100,0000%MassenzahlNatürliche Häufigkeit (%)
MassenzahlAtommasse (u)Natürliche HäufigkeitHalbwertszeit
89 Stabil88,9058403 ± 0,0000024100,0000%Stabil
Gemessen

Phase / Zustand

1 atm / 101.325 kPa
Fest 25 °C (298,15 K)

Grund: 1496,8 °C unter Schmelzpunkt (1521,85 °C)

Schmelzpunkt 1521,85 °C
Siedepunkt 3344,85 °C
Unter Schmelzpunkt um 1496,8 °C
0 K Aktuelle Temperatur: 25 °C 6000 K
Phasenzeitlinie

Schematisch, nicht maßstabsgetreu

Fest
Flüssig
Gas
Schmelzen
Sieden
25°C
Fest
Flüssig
Gas
Aktuell

Phasenübergangspunkte

Schmelzpunkt Literatur
1521,85 °C
Siedepunkt Literatur
3344,85 °C
Aktuelle Phase Berechnet
Fest

Übergangsenergien

Schmelzwärme Literatur
0,11836037 eV

Energie benötigt, um 1 mol am Schmelzpunkt zu schmelzen

Verdampfungswärme Literatur
3,762243 eV

Energie benötigt, um 1 mol am Siedepunkt zu verdampfen

Sublimationswärme Literatur
4,394465 eV

Energie benötigt, um 1 mol am Sublimationspunkt zu sublimieren

Dichte

Referenzdichte Literatur
4470 kg/m³

Bei Standardbedingungen

Aktuelle Dichte Berechnet
4470 kg/m³

Bei Standardbedingungen

Atomspektren

10 von 39 angezeigt. Sortiert nach Ionenladung (aufsteigend).

Liniendaten ?

IonLadungGesamtlinienÜbergangswahrscheinlichkeitenNiveau-Bezeichnungen
Y I 0361189351
Y II +111666116
Y III +211300
Y IV +32500
Y V +4632632632
Y VII +6168168168
Y VIII +7707070
NIST Liniendaten →

Niveaudaten ?

IonLadungNiveaus
Y I 0194
Y II +1249
Y III +251
Y IV +3130
Y V +4114
Y VI +52
Y VII +657
Y VIII +733
Y IX +82
Y X +92
NIST Niveaudaten →
39 Y 88.90584

Yttrium — Atomorbital-Visualisierer

[Kr]5s24d1
Energieniveaus 2 8 18 9 2
Oxidationszustände 0, +1, +2, +3
HOMO 4d n=4 · l=2 · m=-2
Yttrium — Atomorbital-Visualisierer Vorschau
Three.js lädt nur auf Anfrage
39 Y 88.90584

Yttrium — Kristallstruktur-Visualisierer

Primitiv Hexagonal · Pearson hP2
Experimentell
Pearson hP2
Koordinationszahl 12
Packungsdichte 75.071%
Yttrium — Kristallstruktur-Visualisierer Vorschau
Three.js lädt nur auf Anfrage

Ionenradien

LadungKoordinationSpinRadius
+36N/A90 pm
+37N/A96 pm
+38N/A101.89999999999999 pm
+39N/A107.5 pm

Verbindungen

Y
88,906 u
Y
89,907 u
Y+3
88,906 u
Y
90,907 u
Y
87,909 u
Y
85,915 u
Y
86,911 u
Y
88,906 u
Y
92,910 u
Y
91,909 u
Y
94,913 u
Y
93,912 u
Y+3
89,907 u
Y+3
88,906 u
Y
98,924 u
Y+3
85,915 u

Isotope (1)

Natural yttrium contains one isotope, 89Y. Nineteen other unstable isotopes have been characterized.

MassenzahlAtommasse (u)Natürliche HäufigkeitHalbwertszeitZerfallsart
89 Stabil88,9058403 ± 0,0000024100,0000%Stabil
stable
89 Stabil
Atommasse (u) 88,9058403 ± 0,0000024
Natürliche Häufigkeit 100,0000%
Halbwertszeit Stabil
Zerfallsart
stable

Spektrallinien

50 von 266 angezeigt. Standardmäßig werden nur Spektrallinien mit gemessener Intensität angezeigt.

Wellenlänge (nm)IntensitätIonenstufeTypÜbergangGenauigkeitQuelle
410.23691 nm9900Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2F*GemessenNIST
407.735998 nm9400Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2F*GemessenNIST
412.829876 nm8900Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2D*GemessenNIST
414.28358 nm7500Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2D*GemessenNIST
404.76281 nm2400Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p y 2P*GemessenNIST
416.750671 nm2400Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2F*GemessenNIST
423.5934 nm2200Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2D*GemessenNIST
408.37033 nm2000Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p y 2P*GemessenNIST
417.41339 nm2000Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p y 2P*GemessenNIST
464.368813 nm2000Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2F*GemessenNIST
467.48486 nm2000Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2F*GemessenNIST
619.17183 nm1200Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2D*GemessenNIST
643.50036 nm1000Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2D*GemessenNIST
403.982219 nm940Y Iemission4d.5s2 a 2D → 4d.5s.(1D).5p y 2D*GemessenNIST
452.72342 nm890Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
483.9861 nm770Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F*GemessenNIST
552.75472 nm740Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G*GemessenNIST
546.6464 nm710Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G*GemessenNIST
558.18694 nm620Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G*GemessenNIST
563.01301 nm560Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G*GemessenNIST
484.56655 nm550Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F*GemessenNIST
450.59441 nm500Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
452.77815 nm440Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
476.09753 nm410Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2F*GemessenNIST
485.26766 nm410Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F*GemessenNIST
485.98428 nm330Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F*GemessenNIST
425.11994 nm300Y Iemission4d.5s.(3D).5p z 4F* → 4d.5s.(3D).5d e 4GGemessenNIST
448.74634 nm300Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
550.3466 nm300Y Iemission4d2.(3F).5s a 2F → 4d2.(3F).5p x 2F*GemessenNIST
622.25784 nm300Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 2D*GemessenNIST
543.82242 nm190Y Iemission4d2.(3F).5s a 2F → 4d2.(3F).5p x 2D*GemessenNIST
546.62434 nm190Y Iemission4d.5s.(3D).5p z 4F* → 4d.5s.(3D).6s e 4DGemessenNIST
679.37029 nm190Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 4F*GemessenNIST
524.08001 nm181Y Iemission4d2.(1G).5s a 2G → 4d2.(1G).5p z 2H*GemessenNIST
447.69471 nm180Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p x 2F*GemessenNIST
469.67994 nm180Y Iemission4d2.(1D).5s b 2D → 4d2.(1D).5p w 2F*GemessenNIST
479.92999 nm180Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F*GemessenNIST
513.51993 nm180Y Iemission4d2.(1G).5s a 2G → 4d2.(1G).5p z 2H*GemessenNIST
557.74153 nm180Y Iemission4d2.(3F).5s a 2F → 4d2.(3F).5p z 2G*GemessenNIST
447.57178 nm170Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
472.8516 nm170Y Iemission5s2.5p z 2P* → 5s2.6s e 2SGemessenNIST
478.68762 nm170Y Iemission4d2.(3P).5s a 4P → 4d2.(3P).5p x 4D*GemessenNIST
421.77985 nm160Y Iemission5s2.5p z 2P* → 5s2.(2D).5d e 2DGemessenNIST
447.74436 nm160Y Iemission4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D*GemessenNIST
475.2787 nm160Y Iemission4d2.(3F).5s a 2F → 4d2.(3P).5p x 4D*GemessenNIST
570.67133 nm160Y Iemission4d.5s.(3D).5p z 4F* → 4d.5s.(3D).6s e 4DGemessenNIST
492.18769 nm150Y Iemission5s2.5p z 2P* → 5s2.6s e 2SGemessenNIST
613.84349 nm150Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 4D*GemessenNIST
668.75669 nm150Y Iemission4d.5s2 a 2D → 4d.5s.(3D).5p z 4F*GemessenNIST
465.37837 nm140Y Iemission4d2.(1D).5s b 2D → 4d2.(3P).5p y 4P*GemessenNIST

Erweiterte Eigenschaften

Kovalente Radien (Erweitert)

Kovalenzradius (Pyykkö)
163 pm
Kovalenzradius (Pyykkö, doppelt)
130 pm
Kovalenzradius (Pyykkö, dreifach)
124 pm

Van-der-Waals-Radien

Batsanov
240 pm
Alvarez
275 pm
UFF
334,5 pm
MM3
271 pm

Atom- & Metallische Radien

Atomradius (Rahm)
274 pm
Metallradius (C12)
180 pm

Nummerierungsskalen

Mendeleev
12
Pettifor
19
Glawe
21

Elektronegativitätsskalen

Ghosh
0
Miedema
3
Gunnarsson–Lundqvist
3
Robles–Bartolotti
3

Polarisierbarkeit & Dispersion

Dipolpolarisierbarkeit
162 a.u.
Dipolpolarisierbarkeit (Uns.)
12 a.u.
C₆ (Gould–Bučko)
2600 Ha·Bohr6

Chemische Affinität

Protonenaffinität
967 kJ/mol
Gasbasizität
945,9 kJ/mol

Miedema-Parameter

Miedema-Molvolumen
19,9 cm3/mol
Miedema-Elektronendichte
2

Lieferrisiko & Wirtschaftlichkeit

Produktionskonzentration
97
Relatives Lieferrisiko
10
Reservenverteilung
50
Politische Stabilität (Top-Produzent)
24
Politische Stabilität (Top-Reserven)
24

Phasenübergänge & Allotrope

Schmelzpunkt1795,15 K
Siedepunkt3618,15 K

Oxidationszustands-Kategorien

+2 extended
+1 extended
+3 main
0 extended

Erweiterte Referenzdaten

Abschirmkonstanten (10)
nOrbitalσ
1s0,8244
2p3,9968
2s10,3778
3d13,6029
3p15,9075
3s15,4485
4d23,0416
4p26,2544
4s24,7364
5s32,744
Kristallradien-Details (4)
LadungCNSpinrcrystal (pm)Herkunft
3VI104from r^3 vs V plots,
3VII110
3VIII115,9from r^3 vs V plots,
3IX121,5from r^3 vs V plots,
Isotopenzerfallsarten (60)
IsotopModusIntensität
75B+—
75B+p—
75p—
76B+—
76p—
76B+p—
77B+100%
77B+p—
77p—
78B+100%
Röntgenstreufaktoren (619)
Energie (eV)f₁f₂
10—2,26036
10,1617—2,25621
10,3261—2,25207
10,4931—2,24793
10,6628—2,2438
10,8353—2,23968
11,0105—2,23344
11,1886—2,21122
11,3696—2,18921
11,5535—2,16742

Zusätzliche Daten

Sources

Sources of this element.

Yttrium occurs in nearly all of the rare-earth minerals. Analysis of lunar rock samples obtained during the Apollo missions show a relatively high yttrium content.

It is recovered commercially from monazite sand, which contains about 3%, and from bastnasite, which contains about 0.2%. Wohler obtained the impure element in 1828 by reduction of the anhydrous chloride with potassium. The metal is now produced commercially by reduction of the fluoride with calcium metal. It can also be prepared by other techniques.

Referenzen (1)

Referenzen

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

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)
Yttrium

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.

Lizenzhinweis: 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
Yttrium

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/

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

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
Yttrium

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
Yttrium

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

9 PubChem Elements
Yttrium

The element property data was retrieved from publications.

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Daten verifiziert:

Inhalt wurde gegen aktuelle wissenschaftliche Daten geprüft.