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Th 90

Thorium (Th)

actinide
Periyot: 7 Blok: f

Solid

Standart Atom Ağırlığı

232,0377 u

Elektron dizilimi

[Rn] 7s2 6d2

Erime noktası

1749,85 °C

Kaynama noktası

4787,85 °C

Yoğunluk

1,172e+4 kg/m³

Yükseltgenme basamakları

−1, +1, +2, +3, +4

Elektronegatiflik (Pauling)

1,3

İyonlaşma enerjisi (1.)

6,3067 eV

Keşif yılı

1828

Atom yarıçapı

180 pm

Ayrıntılar

Adının kökeni Named for Thor, Norse god of thunder.
Keşfedildiği ülke Sweden
Keşfedenler Jöns Berzelius

Thorium is a naturally occurring actinide metal with atomic number 90. It is weakly radioactive and is found mainly as ²³²Th, an isotope with a very long half-life. Chemically it is dominated by the +4 oxidation state and often resembles the tetravalent lanthanides more than uranium or plutonium. Its main technological interest is as a fertile nuclear material that can be converted to fissile ²³³U in reactors.

When pure, thorium is a silvery-white metal that is air-stable and retains its luster for several months. When contaminated with the oxide, thorium slowly tarnishes in air, becoming gray and finally black. The physical properties of thorium are greatly influenced by the degree of contamination with the oxide. The purest specimens often contain several tenths of a percent of the oxide. High-purity thorium has been made. Pure thorium is soft, very ductile, and can be cold-rolled, swaged, and drawn. Thorium is dimorphic, changing at 1400°C from a cubic to a body-centered cubic structure. Thorium oxide has a melting point of 3300°C, which is the highest of all oxides. Only a few elements, such as tungsten, and a few compounds, such as tantalum carbide, have higher melting points. Thorium is slowly attacked by water, but does not dissolve readily in most common acids, except hydrochloric. Powdered thorium metal is often pyrophoric and should be handled carefully. When heated in air, thorium turnings ignite and burn brilliantly with a white light.

The name derives from Thor, the Scandinavian god of thunder. It was discovered in the mineral thorite (ThSiO4) by the Swedish chemist Jöns Jacob Berzelius in 1828. Thorium was first isolated by the chemists D. Lely, Jr. and L. Hamburger in 1914.

Thorium was discovered by Jöns Jacob Berzelius, a Swedish chemist, in 1828. He discovered it in a sample of a mineral that was given to him by the Reverend Has Morten Thrane Esmark, who suspected that it contained an unknown substance. Esmark's mineral is now known as thorite (ThSiO4). Thorium makes up about 0.0007% of the earth's crust and is primarily obtained from thorite, thorianite (ThO2) and monazite ((Ce, La, Th, Nd, Y)PO4).

Morten Esmark found a black mineral on Løvøya island, Norway and gave a sample to his father Jens Esmark, a noted mineralogist. The elder Esmark was not able to identify it and sent a sample to Swedish chemist Jöns Jakob Berzelius for examination in 1828. In 1829 Berzelius determined that it contained a new element, which he named thorium after Thor, the Norse god of thunder. The metal had no practical uses until 1885 when Carl Auer von Welsbach invented the gas mantle. Thorium was first observed to be radioactive in 1898, independently, by Polish-French physicist Marie Curie and German chemist Gerhard Carl Schmidt. Between 1900 and 1903, Ernest Rutherford and Frederick Soddy showed how thorium decayed at a fixed rate over time into a series of other elements. This observation led to the identification of half-life as one of the outcomes of the alpha particle experiments that led to their disintegration theory of radioactivity. The crystal bar process (or "iodide process") was discovered by Anton Eduard van Arkel and Jan Hendrik de Boer in 1925 to produce high-purity metallic thorium. Because of health concerns, the thorium in classic lantern mantles has been replaced by rare-earth elements that also produce intense light without the radioactivity.

Görseller

Özellikler

Termodinamik

Erime ısısı
0,16696896 eV Tüm elementlerin Erime ısısı değerlerini karşılaştır →
Buharlaşma ısısı
5,327253 eV Tüm elementlerin Buharlaşma ısısı değerlerini karşılaştır →
Süblimleşme ısısı
5,938747 eV
Atomlaşma ısısı
5,938747 eV
Atomlaşma entalpisi
6,239312 eV

Kristal Yapı

Örgü sabiti a
508 pm

Elektronik Yapı

Kabuk başına elektron sayısı
2, 8, 18, 32, 18, 10, 2 Tüm elementlerin Kabuk başına elektron sayısı değerlerini karşılaştır →

Tanımlayıcılar

CAS numarası
7440-29-1 Tüm elementlerin CAS numarası değerlerini karşılaştır →
Terim simgesi
3F2
InChI
InChI=1S/Th
InChI Anahtarı
ZSLUVFAKFWKJRC-UHFFFAOYSA-N

Elektron Dizilimi Ölçülmüş

İyon yükü
Protonlar 90
Elektronlar 90
Yük Nötr
Dizilim Th: 6d² 7s²
Elektron dizilimi
Ölçülmüş
[Rn] 6d² 7s²
1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p⁶ 6d² 7s²
Orbital diyagramı
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
10/10
5p
6/6
6s
2/2
4f
14/14
5d
10/10
6p
6/6
7s
2/2
6d
2/10 2↑
Toplam elektron sayısı: 90 Eşleşmemiş: 2 ?

Atom modeli

Protonlar 90
Nötronlar 127
Elektronlar 90
Kütle numarası 217
Kararlılık Radyoaktif

İzotoplar nötron sayısını, kütleyi ve kararlılığı değiştirir; nötr bir atomun elektron dizilimini değiştirmez.

Şematik atom modeli, ölçekli değildir.

Atomik Parmak İzi

Emisyon / Soğurma Spektrumu

25 / 50 (50 50 çizginin şiddet verisi var)
Ölçülmüş
Emisyon Görünür: 380–750 nm

İzotop Dağılımı

Kararlı izotop yok.

Kütle numarasıAtom kütlesi (u)Doğal bollukYarı ömür
223 Radyoaktif223,0208119 ± 0,0000099Mevcut değil600 ms
217 Radyoaktif217,013117 ± 0,000022Mevcut değil248 us
213 Radyoaktif213,013009 ± 0,000076Mevcut değil144 ms
218 Radyoaktif218,013276 ± 0,000011Mevcut değil122 ns
214 Radyoaktif214,0115 ± 0,000017Mevcut değil87 ms
Ölçülmüş

Faz / Hâl

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

Neden: erime noktasının (1749,85 °C) 1724,8 °C altında

Erime noktası 1749,85 °C
Kaynama noktası 4787,85 °C
Erime noktasının altında 1724,8 °C
0 K Mevcut sıcaklık: 25 °C 6000 K
Faz çizelgesi

Şematik, ölçekli değil

Katı
Sıvı
Gaz
Erime
Kaynama
25°C
Katı
Sıvı
Gaz
Mevcut

Faz geçiş noktaları

Erime noktası Literatür
1749,85 °C
Kaynama noktası Literatür
4787,85 °C
Mevcut faz Hesaplanmış
Katı

Geçiş enerjileri

Erime ısısı Literatür
0,16696896 eV

Erime noktasında 1 mol maddeyi eritmek için gereken enerji

Buharlaşma ısısı Literatür
5,327253 eV

Kaynama noktasında 1 mol maddeyi buharlaştırmak için gereken enerji

Süblimleşme ısısı Literatür
5,938747 eV

Süblimleşme noktasında 1 mol maddeyi süblimleştirmek için gereken enerji

Yoğunluk

Referans yoğunluk Literatür
1,172e+4 kg/m³

Standart koşullarda

Mevcut yoğunluk Hesaplanmış
1,172e+4 kg/m³

Standart koşullarda

Atomik Spektrumlar

90 kayıttan 10 tanesi gösteriliyor. İyon yüküne göre sıralandı (artan).

Spektral Çizgi Kayıtları ?

İyonYükToplam çizgi sayısıGeçiş olasılıklarıDüzey gösterimleri
Th I 013387013387
Th II +1650206502
Th III +22270227
Th IV +32700
NIST Spektral Çizgi Kayıtları →

Enerji Düzeyi Kayıtları ?

İyonYükDüzeyler
Th I 0788
Th II +1517
Th III +2176
Th IV +32
Th V +42
Th VI +52
Th VII +62
Th VIII +72
Th IX +82
Th X +92
NIST Enerji Düzeyi Kayıtları →
90 Th 232.0377

Thorium — Atomik Orbital Görselleştiricisi

[Rn]7s26d2
Enerji düzeyleri 2 8 18 32 18 10 2
Yükseltgenme basamakları -1, +1, +2, +3, +4
HOMO 6d n=6 · l=2 · m=-2
Thorium — Atomik Orbital Görselleştiricisi Ön İzlemesi
Three.js yalnızca istek üzerine yüklenir
90 Th 232.0377

Thorium — Kristal Yapı Görselleştiricisi

Face-Centered Cubic · Pearson cF4
Deneysel
Pearson cF4
Koord. No. 12
Paketlenme 74.000%
Thorium — Kristal Yapı Görselleştiricisi Ön İzlemesi
Three.js yalnızca istek üzerine yüklenir

İyon Yarıçapları

YükKoordinasyonSpinYarıçap
+39Mevcut değil120.9 pm
+46Mevcut değil94 pm
+48Mevcut değil105 pm
+49Mevcut değil109.00000000000001 pm
+410Mevcut değil112.99999999999999 pm
+411Mevcut değil118 pm
+412Mevcut değil121 pm

Bileşikler

Th
232,038 u
Th
230,033 u
Th
228,029 u
Th
227,028 u
Th+4
232,038 u
Th
234,044 u
Th
226,025 u
Th
229,032 u
Th
238,056 u
Th
231,036 u
Th
239,061 u
Th
232,038 u
Th+2
232,038 u
Th+4
227,028 u

İzotoplar (5)

Twenty-seven thorium radioisotopes have been characterized, with a range in atomic weight from 210 to 236. All are unstable with the most stable being 232Th with a half-life of 14.05 billion years. Thorium-232 represents all but a trace of naturally occurring thorium. It is an alpha emitter and goes through six alpha and four beta decay steps before becoming the stable isotope 208Pb. 232Th is sufficiently radioactive to expose a photographic plate in a few hours. Other isotopes of thorium are short-lived intermediates in the decay chains of higher elements, and only found in trace amounts. The longer-lived of these trace isotopes include: 230Th with a half-life of 75,380 years which is a daughter product of 238U decay; 229Th with a half-life of 7340 years and 228Th with a half-life of 1.92 years. All of the remaining radioactive isotopes have half-lives that are less than thirty days and the majority of these have half-lives less than ten minutes. Much of the internal heat the earth produces has been attributed to thorium and uranium.

Kütle numarasıAtom kütlesi (u)Doğal bollukYarı ömürBozunma türü
223 Radyoaktif223,0208119 ± 0,0000099Mevcut değil600 ms
α =100%
217 Radyoaktif217,013117 ± 0,000022Mevcut değil248 us
α =100%
213 Radyoaktif213,013009 ± 0,000076Mevcut değil144 ms
α ≈100%β+ ?
218 Radyoaktif218,013276 ± 0,000011Mevcut değil122 ns
α =100%
214 Radyoaktif214,0115 ± 0,000017Mevcut değil87 ms
α ≈100%β+ ?
223 Radyoaktif
Atom kütlesi (u) 223,0208119 ± 0,0000099
Doğal bolluk Mevcut değil
Yarı ömür 600 ms
Bozunma türü
α =100%
217 Radyoaktif
Atom kütlesi (u) 217,013117 ± 0,000022
Doğal bolluk Mevcut değil
Yarı ömür 248 us
Bozunma türü
α =100%
213 Radyoaktif
Atom kütlesi (u) 213,013009 ± 0,000076
Doğal bolluk Mevcut değil
Yarı ömür 144 ms
Bozunma türü
α ≈100%β+ ?
218 Radyoaktif
Atom kütlesi (u) 218,013276 ± 0,000011
Doğal bolluk Mevcut değil
Yarı ömür 122 ns
Bozunma türü
α =100%
214 Radyoaktif
Atom kütlesi (u) 214,0115 ± 0,000017
Doğal bolluk Mevcut değil
Yarı ömür 87 ms
Bozunma türü
α ≈100%β+ ?

Spektral Çizgiler

9955 kayıttan 50 tanesi gösteriliyor. Varsayılan olarak yalnızca şiddeti ölçülmüş spektral çizgiler gösterilir.

Dalga boyu (nm)Şiddetİyonlaşma aşamasıTürGeçişDoğrulukKaynak
576.055056 nm53000Th Iemission6d2.7s2 3F → 5f.6d.7s2 3D*ÖlçülmüşNIST
645.728238 nm44000Th Iemission5f.6d.7s2 3H* → 5f.6d.7s.7p 5IÖlçülmüşNIST
395.039509 nm42000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
618.262159 nm38000Th Iemission6d2.7s2 3F → 6d.7s2.7p 3P*ÖlçülmüşNIST
658.390575 nm32000Th Iemission6d2.7s2 3F → 6d.7s2.7p 3F*ÖlçülmüşNIST
572.018265 nm31000Th Iemission6d2.7s2 → 5f.6d.7s2 3D*ÖlçülmüşNIST
698.965521 nm31000Th Iemission5f.6d.7s2 3H* → 5f.6d.7s.7p 5IÖlçülmüşNIST
716.889496 nm30000Th Iemission6d2.7s2 3F → 6d.7s2.7p 3F*ÖlçülmüşNIST
449.3333668 nm28000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
658.853947 nm26000Th Iemission6d2.7s2 3P → 6d.7s2.7p 3P*ÖlçülmüşNIST
691.12262 nm25000Th Iemission6d2.7s2 3F → 6d2.7s.7p 5G*ÖlçülmüşNIST
380.307494 nm24000Th Iemission6d2.7s2 3F → 6d2.7s.7p 3D*ÖlçülmüşNIST
403.6047645 nm24000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
659.148431 nm21000Th Iemission6d2.7s2 3F → 6d2.7s.7p 5G*ÖlçülmüşNIST
401.912876 nm20000Th IIemission6d.7s2 2D → 6d.7s.(3D).7p *ÖlçülmüşNIST
558.702644 nm20000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
411.2754309 nm18000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
470.398977 nm18000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
580.414105 nm18000Th Iemission6d2.7s2 3F → 6d2.7s.7p 5F*ÖlçülmüşNIST
616.982198 nm18000Th Iemission6d2.7s2 3F → 5f.6d.7s2 3D*ÖlçülmüşNIST
597.366467 nm17000Th Iemission6d2.7s2 → 6d.7s2.7p 3P*ÖlçülmüşNIST
653.134169 nm17000Th Iemission6d3.(4F).7s 5F → 6d2.7s.7p 5P*ÖlçülmüşNIST
383.969505 nm16000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
421.092303 nm16000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
515.86042 nm16000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
620.349239 nm16000Th Iemission6d2.7s2 3F → 6d2.7s.7p 5F*ÖlçülmüşNIST
666.22685 nm16000Th Iemission6d3.(4F).7s 5F → 6d2.7s.7p 5P*ÖlçülmüşNIST
394.8030341 nm15000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
403.0842224 nm15000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
410.0341193 nm15000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
467.366094 nm15000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
506.797381 nm15000Th Iemission5f.6d.7s2 3H*ÖlçülmüşNIST
523.115956 nm15000Th Iemission6d2.7s2 3P → 6d2.7s.7p 5P*ÖlçülmüşNIST
634.285945 nm15000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
382.838452 nm14000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
472.3438197 nm14000Th Iemission6d2.7s2 3F → 5f.6d.7s2 3D*ÖlçülmüşNIST
553.926178 nm14000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
694.361046 nm14000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
720.80062 nm14000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
425.0314489 nm13000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
489.495493 nm13000Th Iemission6d2.7s2 3F → 6d.7s2.7p 3P*ÖlçülmüşNIST
387.382217 nm12000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
423.5463454 nm12000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
480.81337 nm12000Th Iemission6d2.7s2 3F → *ÖlçülmüşNIST
541.748576 nm12000Th Iemission6d2.7s2 → *ÖlçülmüşNIST
599.412865 nm12000Th Iemission6d2.7s2 3P → 6d.7s2.7p 3P*ÖlçülmüşNIST
659.393903 nm12000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
708.416896 nm12000Th Iemission6d3.(4F).7s 5F → *ÖlçülmüşNIST
738.550045 nm12000Th Iemission6d2.7s2 → 6d2.7s.7p 5F*ÖlçülmüşNIST
392.440084 nm11000Th Iemission6d2.7s2 → *ÖlçülmüşNIST

Genişletilmiş Özellikler

Kovalent Yarıçaplar (Genişletilmiş)

Kovalent yarıçap (Pyykkö)
175 pm
Kovalent yarıçap (Pyykkö, çift bağ)
143 pm
Kovalent yarıçap (Pyykkö, üçlü bağ)
136 pm

Van der Waals Yarıçapları

Batsanov
240 pm
Alvarez
293 pm
UFF
339,6 pm
MM3
274 pm

Atom ve Metalik Yarıçaplar

Atom yarıçapı (Rahm)
288 pm

Numaralandırma Ölçekleri

Mendeleev
16
Pettifor
47
Glawe
34

Elektronegatiflik Ölçekleri

Ghosh
0
Miedema
3

Kutuplanabilirlik ve Dispersiyon

Dipol kutuplanabilirliği
217 a.u.
Dipol kutuplanabilirliği (belirsizlik)
54 a.u.

Miedema Parametreleri

Miedema molar hacmi
19,8 cm3/mol
Miedema elektron yoğunluğu
2

Tedarik Riski ve Ekonomi

Üretim yoğunlaşması
80
Göreli tedarik riski
8
Rezerv dağılımı
31
Siyasi istikrar (en büyük üretici)
11
Siyasi istikrar (en büyük rezerv sahibi)
57

Faz Geçişleri ve Allotroplar

Erime noktası2023,15 K
Kaynama noktası5058,15 K

Yükseltgenme Basamağı Kategorileri

−1 extended
+1 extended
+2 extended
+3 extended
+4 main

İleri Düzey Referans Verileri

Kristal Yarıçaplarının Ayrıntıları (7)
YükCNSpinrcrystal (pm)Köken
4VI108calculated,
4VIII119from r^3 vs V plots, calculated,
4IX123
4X127estimated,
4XI132calculated,
4XII135calculated,
3IX—134,9
İzotop Bozunma Türleri (52)
İzotopModŞiddet
208A100%
209A—
209B+—
210A100%
210B+—
211A100%
211B+—
212A100%
212B+—
213A100%
X Işını Saçılma Faktörleri (516)
Enerji (eV)f₁f₂
10—3,14769
10,1617—3,1007
10,3261—3,05442
10,4931—3,00883
10,6628—2,96392
10,8353—2,91968
11,0106—2,87611
11,1886—2,83318
11,3696—2,79089
11,5535—2,74024

Ek Veriler

Sources

Sources of this element.

Thorium-232 is a primordial nuclide, having existed in its current form for over 4.5 billion years, a half-life is comparable to the age of the Universe and thus predating the formation of the Earth. Thorium was forged in the cores of dying stars through the r-process and scattered across the galaxy by supernovas. Thorium is found in small amounts in most rocks and soils. Soil commonly contains an average of around 6 parts per million (ppm) of thorium. Thorium occurs in several minerals including thorite (ThSiO4), thorianite (ThO2 + UO2) and monazite. Thorianite is a rare mineral and may contain up to about 12% thorium oxide. Monazite contains 2.5% thorium, allanite has 0.1 to 2% thorium and zircon can have up to 0.4% thorium.[66] Thorium-containing minerals occur on all continents. Thorium is now thought to be about three times as abundant as uranium and about as abundant as lead or molybdenum. Thorium is recovered commercially from the mineral monazite, which contains from 3 to 9% ThO2 along with rare-earth minerals.

Kaynaklar (1)

Production

Production of this element (from raw materials or other compounds containing the element).

Production

Several methods are available for producing thorium metal; it can be obtained by reducing thorium oxide with calcium, by electrolysis of anhydrous thorium chloride in a fused mixture of sodium and potassium chlorides, by calcium reduction of thorium tetrachloride mixed with anhydrous zinc chloride, and by reduction of thorium tetrachloride with an alkali metal.

Kaynaklar (1)

Kaynaklar

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

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)
Thorium

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.

Lisans notu: 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
Thorium

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/

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

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
Thorium

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
Thorium

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

9 PubChem Elements
Thorium

The element property data was retrieved from publications.

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