Iodine (I)
halogenSolid
Bobot Atom Standar
126,90447 uKonfigurasi elektron
[Kr] 5s2 4d10 5p5Titik lebur
113,7 °CTitik didih
184,4 °CMassa jenis
4930 kg/m³Bilangan oksidasi
−1, +1, +2, +3, +4, +5, +6, +7Keelektronegatifan (Pauling)
2,66Energi ionisasi (ke-1)
10,451236 eVTahun penemuan
1811Jari-jari atom
140 pmDetail
Iodine is a heavy halogen and the least abundant stable halogen in Earth’s crust. The element occurs naturally as iodide and iodate rather than as free I₂. It is chemically less electronegative and less strongly oxidizing than bromine or chlorine, and it forms a wide range of covalent, ionic, and polyiodide species. Iodine is an essential trace element for vertebrates because thyroid hormones contain iodine atoms.
Iodine is a bluish-black, lustrous solid, volatizing at ordinary temperatures into a blue-violet gas with an irritating odor; it forms compounds with many elements, but is less active than the other halogens, which displace it from iodides. Iodine exhibits some metallic-like properties. It dissolves readily in chloroform, carbon tetrachloride, or carbon disulfide to form beautiful purple solutions. It is only slightly soluble in water.
The name derives from the Greek iodes for "violet" because of its violet vapours. Iodine was discovered in seaweed by the French chemist Bernard Courtois in 1811, and named by the French chemist Louis-Joseph Gay-Lussac, when he proved it was an element in 1814.
Iodine was discovered by the French chemist Barnard Courtois in 1811. Courtois was extracting sodium and potassium compounds from seaweed ash. Once these compounds were removed, he added sulfuric acid (H2SO4) to further process the ash. He accidentally added too much acid and a violet colored cloud erupted from the mass. The gas condensed on metal objects in the room, creating solid iodine. Today, iodine is chiefly obtained from deposits of sodium iodate (NaIO3) and sodium periodate (NaIO4) in Chile and Bolivia. Trace amounts of iodine are required by the human body. Iodine is part of thyroxin, a hormone produced by the thyroid gland that controls the body's rate of physical and mental development. A lack of iodine can also cause a goiter, a swelling of the thyroid gland. Iodine is added to salt (iodized salt) to prevent these diseases.
From the Greek word iodes, violet. Discovered by Courtois in 1811, Iodine, a halogen, occurs sparingly in the form of iodides in sea water from which it is assimilated by seaweeds, Chilean saltpeter, nitrate-bearing earth (known as caliche), brines from old sea deposits, and in brackish waters from oil and salt wells.
Pure iodine is a dark gray to purple-black crystalline solid at ordinary temperature. It has a metallic-looking luster and a distinctive sharp odor. It sublimes readily to a violet vapor, and the vapor recondenses as shiny crystals on cooler surfaces.
The largest uses of iodine are in compounds rather than in elemental I₂. Iodinated contrast agents are important in X-ray and computed-tomography imaging. Iodine compounds are used in antiseptics, disinfectants, animal feed supplements, and pharmaceuticals. Silver iodide, AgI, has been used in cloud-seeding and photographic materials. Iodine chemistry is also used in polarizing films for liquid-crystal displays and in analytical titrations based on iodine and iodide equilibria.
Iodine is used as a test for starch and turns a deep blue when it comes in contact with it. Potassium iodide (KI) is used to make photographic film and, when mixed with iodine in alcohol, as an antiseptic for external wounds. A radioactive isotope of iodine, iodine-131, is used to treat some diseases of the thyroid gland.
Care should be taken in handling and using iodine. It can burn the skin and damage the eyes and mucous membranes. Pure iodine is poisonous if ingested.
Iodine compounds are important in organic chemistry and very useful in medicine. Iodides, and thyroxine which contains iodine, are used internally in medicine, and as a solution of KI and iodine in alcohol is used for external wounds. Potassium iodide finds use in photography. The deep blue color with starch solution is characteristic of the free element.
Isotopes in Forensic Science and Anthropology
131I (with a half-life of about 8 days) and 129I are both fission products; 129I is a long-lived fission product with a half-life of 1.7×107 years that can be helpful in the detection of the movement of radiation after a radioactive event, such as occurred at the Japanese reactors at Fukushima. In nuclear reactors and weapons tests, uranium and plutonium undergo fission processes in which one of the fission products is the long-lived isotope 129I. This isotope has been used as a groundwater tracer to determine evidence of nuclear fission, and it can also be tracked in rainwater as evidence of a fission event in the air (weapons explosion; Fig. IUPAC.53.1) [390] D. Elmore, H. E. Gove, R. Ferraro, L. R. Kilius, H. W. Lee, K. H. Chang, R. P. Beukens, A. E. Litherland, C. J. Russo, K. H. Purser, M. T. Murrell, R. C. Finkel. Nature286, 138 (1980)., [391] G. Snyder, U. Fehn. Nucl. Instrum. Methods Phys. Res. B223, 579 (2004)., [392] G. Snyder, A. Aldahan, G. Possnert. Geochem. Geophys.11, Q04010 (2010)..
Isotopes in Geochronology
Natural cosmogenic 129I enters groundwater and other terrestrial environments from the atmosphere and then decays to 129Xe. The isotope-amount ratio n(129I)/n(127I) can be used as a clock to estimate time since cosmogenic 129I entered the system. The amount of product 129Xe in such cases is too small to measure; however, excess quantities of 129Xe can be found in meteorites and other very old samples that contained extinct primordial 129I. Younger water bodies also can be differentiated from older water bodies by determining the amount of anthropogenic 129I released since the 1960s from sources such as nuclear bomb tests [393] P. H. Santschi, J. E. Moran, S. Oktay, E. Hoehn, P. Sharma. “129Iodine: a new tracer for surface water/groundwater interaction”, in International Symposium on Isotope Techniques in Water Resources Development and Management., [394] G. M. Raisbeck, F. Yiou, Z. Q. Zhou, L. R. Kilius. J. Marine Syst.6, 561 (1995)..
Isotopes in Medicine
125I, which has a half-life of about 59 days, is used encapsulated in radiotherapy to target and treat sites of cancerous tumors [395] V. R. Narra, R. W. Howell, R. S. Harapanhalli, K. S. Sastry, D. V. Rao. J. Nucl. Med.33, 2196 (1992).. 120gI (with a half-life of 1.36 h), where the “g” indicates ground state, and 124I (with a half-life of 100 h) are radioactive isotopes that emit positrons and they are used in quantitative, diagnostic imaging of the body using positron emission tomography (PET) [383] A. Hohn, H. H. Coenen, S. M. Qaim. Appl. Radiat. Isot.49, 1493 (1998)., [384] H. Herzog, S. M. Qaim, L. Tellmann, S. Spellerberg, D. Kruecker, H. H. Coenen. Eur. J. Nucl. Med. Mol. Imaging33, 1249 (2006)., [385] A. Hohn, B. Scholten, H. H. Coenen, S. M. Qaim, Appl. Radiat. Isot.49, 93 (1998)., [387] M. L. Firouzbakht, D. J. Schlyer, R. D. Finn, G. Laguzzi, A. P. Wolf. Nucl. Instr. Methods Phys. Res. B79, 909 (1993)., [388] H. Herzog, L. Tellman, S. M. Qaim, S. Spellerberg, A. Schmid, H. H. Coenen. Appl. Radiat. Isot.56, 673 (2002)., [389] F. T. Lee, C. Hall, A. Rigopoulos, J. Zweit, K. Pathmaraj, G. J. O’Keefe, F. E. Smyth, S. Welt, L. J. Old, A. M. Scott. J. Nucl. Med.42, 764 (2001).. 123I and 131I (with half-lives of 0.55 day and 8 days, respectively) are used with single-photon emission computed spectroscopy (SPECT) for basic three-dimensional imaging [386] T. Kakavand, M. Sadeghi, K. K. Moghaddam, S. S. Bonab, B. Fateh. Iran. J. Radiat. Res.5, 207 (2008)., [395] V. R. Narra, R. W. Howell, R. S. Harapanhalli, K. S. Sastry, D. V. Rao. J. Nucl. Med.33, 2196 (1992).. Radioactive iodine isotopes are produced from radioactive tellurium isotope.
Iodine commonly shows oxidation states −1, 0, +1, +3, +5, and +7. Hydrogen iodide, HI, and iodide salts contain I⁻ and are readily oxidized compared with chloride and bromide analogues. Iodine forms interhalogens such as iodine monochloride, ICl, and iodine pentafluoride, IF₅. Important oxoacids and salts include iodic acid, HIO₃, iodates, and periodates derived from periodic acid, HIO₄ or H₅IO₆. Polyiodides such as triiodide, I₃⁻, give the intense starch-iodine color reaction.
See more information at the Iodine compound page.
Elemental iodine is irritating to skin, eyes, and the respiratory tract, and its vapor can be harmful in poorly ventilated spaces. Concentrated iodide, iodate, or iodine preparations can disturb thyroid function, while trace intake is biologically necessary. Radioisotopes require isotope-specific control; iodine-131 is a beta and gamma emitter that concentrates in the thyroid and is a significant nuclear-medicine and contamination hazard.
Care should be taken in handling and using iodine, as contact with the skin can cause lesions; iodine vapor is intensely irritating to the eyes and mucus membranes. The maximum allowable concentration of iodine in air should not exceed 1 mg/m3 (8-hour time-weighted average - 40-hour).
Iodine is mobile in the environment because iodide, iodate, organoiodine compounds, and volatile iodine species interconvert in seawater, soils, sediments, and the atmosphere. The oceans are the main surface reservoir, and marine biological activity contributes to atmospheric iodine compounds. In soils, retention depends strongly on organic matter, redox conditions, and mineral surfaces. Iodine availability influences deficiency risk in inland food chains.
Commercial iodine is recovered mainly from iodine-rich underground brines and from caliche nitrate deposits, where iodate minerals occur with nitrate salts. Production is geographically concentrated, making supply sensitive to brine chemistry, mining practice, and co-product economics. Demand is driven by medical imaging agents, pharmaceuticals, nutrition, and industrial chemicals. Recycling occurs in some iodinated process streams and contrast-agent manufacture, but dispersed uses are difficult to recover.
Ultrapure iodine can be obtained from the reaction of potassium iodide with copper sulfate. Several other methods of isolating the element are known.
Iodine is a relatively rare element in cosmic material. Its single stable isotope, ¹²⁷I, is produced by neutron-capture processes in previous generations of stars. In the Solar System it is depleted in many rocky materials because iodine is moderately volatile and easily redistributed into fluids or gases. The extinct radionuclide ¹²⁹I is used in cosmochemistry to study early Solar System timing.
- Iodine was discovered from seaweed ash during saltpeter production in the early nineteenth century.
- Starch forms a deep blue complex with polyiodide, not with isolated iodide ion.
- Most naturally occurring iodine is the single stable isotope ¹²⁷I.
- Iodine sublimes noticeably at room temperature, although it also has an ordinary liquid phase above its melting point.
- Iodized salt usually contains iodide or iodate salts, not elemental iodine.
Gambar
Sifat
Fisika
- Jari-jari atom (empiris)
- 140 pm Bandingkan Jari-jari atom (empiris) semua unsur →
- Jari-jari kovalen
- 139 pm Bandingkan Jari-jari kovalen semua unsur →
- Jari-jari van der Waals
- 198 pm Bandingkan Jari-jari van der Waals semua unsur →
- Massa jenis
- 4930 kg/m³ Bandingkan Massa jenis semua unsur →
- Volume molar
- 0,0257 L/mol
- Fase pada STP
- Padat Bandingkan Fase pada STP semua unsur →
- Titik lebur
- 113,7 °C Bandingkan Titik lebur semua unsur →
- Titik didih
- 184,4 °C Bandingkan Titik didih semua unsur →
- Kapasitas kalor spesifik
- 0,214 J/(g·K) Bandingkan Kapasitas kalor spesifik semua unsur →
- Kapasitas kalor molar
- 54,43 J/(mol·K) Bandingkan Kapasitas kalor molar semua unsur →
- Struktur kristal
- Ortorombik Bandingkan Struktur kristal semua unsur →
Kimia
- Keelektronegatifan (Pauling)
- 2,66 Bandingkan Keelektronegatifan (Pauling) semua unsur →
- Keelektronegatifan (Allen)
- 2,359
- Afinitas elektron
- 3,059 eV
- Energi ionisasi (ke-1)
- 10,451236 eV Bandingkan Energi ionisasi (ke-1) semua unsur →
- Energi ionisasi (ke-2)
- 19,131326 eV Bandingkan Energi ionisasi (ke-2) semua unsur →
- Energi ionisasi (ke-3)
- 29,570102 eV Bandingkan Energi ionisasi (ke-3) semua unsur →
- Energi ionisasi (ke-4)
- 40,357139 eV Bandingkan Energi ionisasi (ke-4) semua unsur →
- Energi ionisasi (ke-5)
- 51,520177 eV Bandingkan Energi ionisasi (ke-5) semua unsur →
- Bilangan oksidasi
- −1, +1, +2, +3, +4, +5, +6, +7 Bandingkan Bilangan oksidasi semua unsur →
- Elektron valensi
- 7 Bandingkan Elektron valensi semua unsur →
- Konfigurasi elektron
- [Kr] 5s2 4d10 5p5
Termodinamika
- Titik tripel (suhu)
- 113,6 °C
- Titik tripel (tekanan)
- 1,211e+4 Pa
- Titik kritis (suhu)
- 546 °C
- Kalor peleburan
- 0,16085402 eV Bandingkan Kalor peleburan semua unsur →
- Kalor penguapan
- 0,21661398 eV Bandingkan Kalor penguapan semua unsur →
- Kalor sublimasi
- 0,64714722 eV
- Kalor atomisasi
- 1,566047 eV
- Entalpi atomisasi
- 1,106462 eV
Nuklir
- Proton
- 53 Bandingkan Proton semua unsur →
- Neutron
- 74 Bandingkan Neutron semua unsur →
- Isotop yang diketahui
- 42 Bandingkan Isotop yang diketahui semua unsur →
- Isotop stabil
- 1 Bandingkan Isotop stabil semua unsur →
- Isotop paling stabil
- I-127
- Tahun penemuan
- 1811
Kelimpahan
- Kelimpahan (kerak Bumi)
- 0,45 mg/kg Bandingkan Kelimpahan (kerak Bumi) semua unsur →
- Kelimpahan (samudra)
- 0,06 mg/L Bandingkan Kelimpahan (samudra) semua unsur →
Struktur Kristal
- Konstanta kisi a
- 772 pm
Struktur Elektronik
- Elektron per kulit
- 2, 8, 18, 18, 7 Bandingkan Elektron per kulit semua unsur →
Pengenal
- Nomor CAS
- 7553-56-2 Bandingkan Nomor CAS semua unsur →
- Simbol term
- 2P°3/2
- InChI
- InChI=1S/I
- Kunci InChI
- ZCYVEMRRCGMTRW-UHFFFAOYSA-N
Konfigurasi Elektron Diukur
I: 4d¹⁰ 5s² 5p⁵[Kr] 4d¹⁰ 5s² 5p⁵1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁵Model atom
Isotop mengubah jumlah neutron, massa, dan kestabilan — bukan konfigurasi elektron atom netral.
Model atom skematis, tidak sesuai skala.
Sidik Jari Atom
Spektrum Emisi / Absorpsi
Distribusi Isotop
| Nomor massa | Massa atom (u) | Kelimpahan alami | Waktu paruh |
|---|---|---|---|
| 127 Stabil | 126,9044719 ± 0,0000039 | 100,0000% | Stabil |
Fase / Wujud
Alasan: 88,7 °C di bawah titik lebur (113,7 °C)
Skematis, tidak sesuai skala
Titik transisi fase
Energi transisi
Energi yang diperlukan untuk meleburkan 1 mol pada titik lebur
Energi yang diperlukan untuk menguapkan 1 mol pada titik didih
Energi yang diperlukan untuk menyublimkan 1 mol pada titik sublimasi
Massa jenis
Pada kondisi standar
Pada kondisi standar
Lanjutan
Spektrum Atom
Menampilkan 10 dari 53. Diurutkan berdasarkan muatan ion (menaik).
Data Garis Spektrum ?
| Ion | Muatan | Total garis | Probabilitas transisi | Penamaan tingkat energi |
|---|---|---|---|---|
| I I | 0 | 1432 | 417 | 1432 |
| I II | +1 | 126 | 0 | 122 |
| I III | +2 | 76 | 0 | 0 |
| I IV | +3 | 47 | 0 | 0 |
| I V | +4 | 4 | 0 | 0 |
Data Tingkat Energi ?
| Ion | Muatan | Tingkat energi |
|---|---|---|
| I I | 0 | 229 |
| I II | +1 | 315 |
| I III | +2 | 116 |
| I IV | +3 | 61 |
| I V | +4 | 54 |
| I VI | +5 | 40 |
| I VII | +6 | 25 |
| I VIII | +7 | 36 |
| I IX | +8 | 2 |
| I X | +9 | 2 |
Jari-jari Ion
| Muatan | Koordinasi | Spin | Jari-jari |
|---|---|---|---|
| -1 | 6 | Tidak tersedia | 220.00000000000003 pm |
| +5 | 3 | Tidak tersedia | 44 pm |
| +5 | 6 | Tidak tersedia | 95 pm |
| +7 | 4 | Tidak tersedia | 42 pm |
| +7 | 6 | Tidak tersedia | 53 pm |
Senyawa
Isotop (1)
Thirty isotopes are recognized. Only one stable isotope, 127I is found in nature. The artificial radioisotope 131I, with a half-life of 8 days, has been used in treating the thyroid gland. The most common compounds are the iodides of sodium and potassium (KI) and the iodates (KIO3). Lack of iodine is the cause of goiter.
| Nomor massa | Massa atom (u) | Kelimpahan alami | Waktu paruh | Mode peluruhan | |
|---|---|---|---|---|---|
| 127 Stabil | 126,9044719 ± 0,0000039 | 100,0000% | Stabil | stable |
Garis Spektrum
Menampilkan 50 dari 474. Secara bawaan, hanya garis spektrum dengan intensitas terukur yang ditampilkan.
| Panjang gelombang (nm) | Intensitas | Tahap ionisasi | Jenis | Transisi | Akurasi | Sumber | |
|---|---|---|---|---|---|---|---|
| 511.92792 nm | 120000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<2>).7p 2[1]* | Diukur | NIST | |
| 740.20433 nm | 98000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).7d 2[4] | Diukur | NIST | |
| 661.96418 nm | 88000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).8d 2[4] | Diukur | NIST | |
| 746.89862 nm | 87000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).7d 2[4] | Diukur | NIST | |
| 723.78303 nm | 68000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).5f 2[4]* | Diukur | NIST | |
| 714.20318 nm | 53000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).7d 2[3] | Diukur | NIST | |
| 658.3733 nm | 48000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).6f 2[4]* | Diukur | NIST | |
| 633.78649 nm | 44000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[3] | Diukur | NIST | |
| 619.1891 nm | 36000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).9d 2[4] | Diukur | NIST | |
| 712.20331 nm | 33000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).7d 2[3] | Diukur | NIST | |
| 514.55362 nm | 26000 | I I | emission | 5s2.5p4.(3P<1>).6s 2[1] → 5s2.5p4.(3P<1>).7p 2[1]* | Diukur | NIST | |
| 741.0472 nm | 25000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[4] → 5s2.5p4.(3P<2>).6f 2[5]* | Diukur | NIST | |
| 656.64687 nm | 23000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).8d 2[4] | Diukur | NIST | |
| 633.94468 nm | 22000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[3] | Diukur | NIST | |
| 722.72727 nm | 22000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).5f 2[3]* | Diukur | NIST | |
| 716.47586 nm | 21000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).7d 2[3] | Diukur | NIST | |
| 698.6488 nm | 20000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[4] → 5s2.5p4.(3P<2>).7f 2[5]* | Diukur | NIST | |
| 621.3101 nm | 19000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).9d 2[4] | Diukur | NIST | |
| 608.24072 nm | 18000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<1>).6p 2[2]* | Diukur | NIST | |
| 624.4475 nm | 17000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).7f 2[4]* | Diukur | NIST | |
| 631.31292 nm | 17000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[0] | Diukur | NIST | |
| 589.39929 nm | 16000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<1>).6p 2[1]* | Diukur | NIST | |
| 666.20777 nm | 15000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).8d 2[3] | Diukur | NIST | |
| 712.0036 nm | 15000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).7d 2[1] | Diukur | NIST | |
| 666.10964 nm | 14000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).9s 2[2] | Diukur | NIST | |
| 741.64587 nm | 14000 | I I | emission | 5s2.5p4.(3P<2>).5d 2[1] → 5s2.5p4.(3P<2>).5f 2[2]* | Diukur | NIST | |
| 595.6854 nm | 13000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).9d 2[3] | Diukur | NIST | |
| 598.4862 nm | 13000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).9d 2[2] | Diukur | NIST | |
| 637.16776 nm | 12000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[3] | Diukur | NIST | |
| 486.23094 nm | 11000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<2>).7p 2[3]* | Diukur | NIST | |
| 491.69357 nm | 11000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<2>).7p 2[2]* | Diukur | NIST | |
| 520.41202 nm | 11000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<2>).7p 2[1]* | Diukur | NIST | |
| 629.39502 nm | 11000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<0>).6p 2[1]* | Diukur | NIST | |
| 633.0376 nm | 11000 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[2] | Diukur | NIST | |
| 523.45653 nm | 10000 | I I | emission | 5s2.5p4.(3P<2>).6s 2[2] → 5s2.5p4.(3P<2>).7p 2[3]* | Diukur | NIST | |
| 533.82 nm | 10000 | I II | emission | 5s2.5p3.(2D*).6s 3D* → 5s2.5p3.(2D*).6p 3F | Diukur | NIST | |
| 562.569 nm | 10000 | I II | emission | 5s2.5p3.(4S*).6s 3S* → 5s2.5p3.(4S*).6p 3P | Diukur | NIST | |
| 707.78407 nm | 9700 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).7d 2[1] | Diukur | NIST | |
| 598.4207 nm | 8900 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).9d 2[3] | Diukur | NIST | |
| 742.00062 nm | 8300 | I I | emission | 5s2.5p4.(3P<2>).5d 2[4] → 5s2.5p4.(3P<2>).6f 2[4]* | Diukur | NIST | |
| 596.8258 nm | 7900 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).10d 2[4] | Diukur | NIST | |
| 698.97761 nm | 7800 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).9s 2[2] | Diukur | NIST | |
| 658.05101 nm | 7600 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).6f 2[3]* | Diukur | NIST | |
| 673.20067 nm | 7600 | I I | emission | 5s2.5p4.(3P<2>).5d 2[1] → 5s2.5p4.(3P<2>).6f 2[3]* | Diukur | NIST | |
| 595.4372 nm | 6700 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).9d 2[3] | Diukur | NIST | |
| 741.1195 nm | 6700 | I I | emission | 5s2.5p4.(3P<2>).5d 2[1] → 5s2.5p4.(3P<2>).5f 2[3]* | Diukur | NIST | |
| 656.08006 nm | 6600 | I I | emission | 5s2.5p4.(3P<2>).6p 2[3]* → 5s2.5p4.(3P<2>).8d 2[2] | Diukur | NIST | |
| 723.49797 nm | 6600 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).5f 2[4]* | Diukur | NIST | |
| 633.35136 nm | 6300 | I I | emission | 5s2.5p4.(3P<2>).6p 2[2]* → 5s2.5p4.(3P<2>).8d 2[1] | Diukur | NIST | |
| 723.17992 nm | 6200 | I I | emission | 5s2.5p4.(3P<2>).5d 2[3] → 5s2.5p4.(3P<2>).5f 2[3]* | Diukur | NIST |
Sifat Lanjutan
Jari-jari Kovalen (Lanjutan)
- Jari-jari kovalen (Pyykkö)
- 133 pm
- Jari-jari kovalen (Pyykkö, ikatan rangkap dua)
- 129 pm
- Jari-jari kovalen (Pyykkö, ikatan rangkap tiga)
- 125 pm
- Jari-jari kovalen (Bragg)
- 140 pm
Jari-jari van der Waals
- Bondi
- 198 pm
- Batsanov
- 210 pm
- Alvarez
- 204 pm
- UFF
- 450 pm
- MM3
- 236 pm
- Dreiding
- 415 pm
- Rowland–Taylor
- 203 pm
Jari-jari Atom & Logam
- Jari-jari atom (Rahm)
- 238 pm
- Jari-jari logam (C12)
- 139 pm
Skala Penomoran
- Mendeleev
- 109
- Pettifor
- 97
- Glawe
- 99
Skala Keelektronegatifan
- Ghosh
- 0
- Gunnarsson–Lundqvist
- 7
- Robles–Bartolotti
- 6
Polarizabilitas & Dispersi
- Polarizabilitas dipol
- 32,9 a.u.
- Polarizabilitas dipol (ketidakpastian)
- 1,3 a.u.
- C₆
- 385 Ha·Bohr6
- C₆ (Gould–Bučko)
- 389 Ha·Bohr6
Afinitas Kimia
- Afinitas proton
- 608,2 kJ/mol
- Kebasaan fase gas
- 583,5 kJ/mol
Risiko Pasokan & Ekonomi
- Konsentrasi produksi
- 60
- Risiko pasokan relatif
- 7
- Distribusi cadangan
- 67
- Stabilitas politik (produsen terbesar)
- 68
- Stabilitas politik (pemilik cadangan terbesar)
- 68
Transisi Fase & Alotrop
| Titik lebur | 386,85 K |
| Titik didih | 457,55 K |
| Titik kritis (suhu) | 819,15 K |
| Titik tripel (suhu) | 386,75 K |
| Titik tripel (tekanan) | 12,11 kPa |
Kategori Bilangan Oksidasi
Data Referensi Lanjutan
Konstanta Pemerisaian (11)
| n | Orbital | σ |
|---|---|---|
| 1 | s | 1,0609 |
| 2 | p | 4,1526 |
| 2 | s | 13,933 |
| 3 | d | 14,0993 |
| 3 | p | 18,1586 |
| 3 | s | 18,2126 |
| 4 | d | 32,066 |
| 4 | p | 28,9704 |
| 4 | s | 27,7028 |
| 5 | p | 41,3885 |
Detail Jari-jari Kristal (5)
| Muatan | CN | Spin | rcrystal (pm) | Asal |
|---|---|---|---|---|
| -1 | VI | 206 | Ahrens (1952) ionic radius, | |
| 5 | IIIPY | 58 | ||
| 5 | VI | 109 | ||
| 7 | IV | 56 | ||
| 7 | VI | 67 |
Mode Peluruhan Isotop (82)
| Isotop | Mode | Intensitas |
|---|---|---|
| 106 | A | — |
| 107 | A | — |
| 108 | A | 99,5% |
| 108 | p | 0,5% |
| 108 | B+ | — |
| 108 | B+p | — |
| 109 | p | 100% |
| 109 | A | 0% |
| 110 | B+ | 83% |
| 110 | A | 17% |
Faktor Hamburan Sinar-X (508)
| Energi (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 7,8167 |
| 10,1617 | — | 7,56781 |
| 10,3261 | — | 7,32685 |
| 10,4931 | — | 7,08081 |
| 10,6628 | — | 6,8332 |
| 10,8353 | — | 6,78435 |
| 11,0106 | — | 6,80888 |
| 11,1886 | — | 7,27334 |
| 11,3696 | — | 7,86775 |
| 11,5535 | — | 8,52786 |
Data Tambahan
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
4.5×10-1 milligrams per kilogram
Referensi (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
6×10-2 milligrams per liter
Referensi (1)
Sources
Sources of this element.
Ultrapure iodine can be obtained from the reaction of potassium iodide with copper sulfate. Several other methods of isolating the element are known.
Referensi (1)
- [6] Iodine https://periodic.lanl.gov/53.shtml
Isotopes in Forensic Science and Anthropology
Information on the use of this element's isotopes in forensic science and anthropology.
131I (with a half-life of about 8 days) and 129I are both fission products; 129I is a long-lived fission product with a half-life of 1.7×107 years that can be helpful in the detection of the movement of radiation after a radioactive event, such as occurred at the Japanese reactors at Fukushima. In nuclear reactors and weapons tests, uranium and plutonium undergo fission processes in which one of the fission products is the long-lived isotope 129I. This isotope has been used as a groundwater tracer to determine evidence of nuclear fission, and it can also be tracked in rainwater as evidence of a fission event in the air (weapons explosion; Fig. IUPAC.53.1) [390] D. Elmore, H. E. Gove, R. Ferraro, L. R. Kilius, H. W. Lee, K. H. Chang, R. P. Beukens, A. E. Litherland, C. J. Russo, K. H. Purser, M. T. Murrell, R. C. Finkel. Nature286, 138 (1980)., [391] G. Snyder, U. Fehn. Nucl. Instrum. Methods Phys. Res. B223, 579 (2004)., [392] G. Snyder, A. Aldahan, G. Possnert. Geochem. Geophys.11, Q04010 (2010)..
Referensi (4)
- [390] D. Elmore, H. E. Gove, R. Ferraro, L. R. Kilius, H. W. Lee, K. H. Chang, R. P. Beukens, A. E. Litherland, C. J. Russo, K. H. Purser, M. T. Murrell, R. C. Finkel. Nature286, 138 (1980).
- [391] G. Snyder, U. Fehn. Nucl. Instrum. Methods Phys. Res. B223, 579 (2004).
- [392] G. Snyder, A. Aldahan, G. Possnert. Geochem. Geophys.11, Q04010 (2010).
- [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703
Referensi
(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 Iodine.
The element property data was retrieved from publications.

