Chlorine (Cl)
halogenGas
Peso atômico padrão
35,45 u [35,446, 35,457]Configuração eletrônica
[Ne] 3s2 3p5Ponto de fusão
-101,5 °CPonto de ebulição
-34,04 °CDensidade
3,214 kg/m³Estados de oxidação
−1, +1, +2, +3, +4, +5, +6, +7Eletronegatividade (Pauling)
3,16Energia de ionização (1ª)
12,967633 eVAno da descoberta
1774Raio atômico
100 pmDetalhes
Chlorine is a reactive halogen and a yellow-green diatomic gas, Cl₂, under ordinary conditions. It is a strong oxidizing agent and occurs naturally mainly as chloride salts, especially in seawater and evaporite minerals. Chlorine chemistry is central to water disinfection, inorganic chlorides, chlorinated solvents, polymers, and many industrial oxidation and substitution processes. The element has two stable isotopes, ³⁵Cl and ³⁷Cl.
It is a member of the halogen (salt-forming) group of elements and is obtained from chlorides by the action of oxidizing agents and more often by electrolysis; it is a greenish-yellow gas, combining directly with nearly all elements. At 10°C one volume of water dissolves 3.10 volumes of chlorine, at 30°C only 1.77 volumes.
The name derives from the Greek chloros for "pale green" or "greenish yellow" colour of the element. It was discovered by the Swedish pharmacist and chemist Carl-Wilhelm Scheele in 1774. In 1810, the English chemist Humphry Davy proved it was an element.
Since it combines directly with nearly every element, chlorine is never found free in nature. Chlorine was first produced by Carl Wilhelm Scheele, a Swedish chemist, when he combined the mineral pyrolusite (MnO2) with hydrochloric acid (HCl) in 1774. Although Scheele thought the gas produced in his experiment contained oxygen, Sir Humphry Davy proved in 1810 that it was actually a distinct element. Today, most chlorine is produced through the electrolysis of aqueous sodium chloride (NaCl).
From the Greek word chloro, greenish yellow. Discovered in 1774 by Scheele, who thought it contained oxygen. Chlorine was named in 1810 by Davy, who insisted it was an element.
Pure chlorine is a dense yellow-green gas with a sharp, irritating odor. It condenses to an amber liquid under pressure or cooling and freezes to a pale solid. The gas is visibly colored even at moderate concentrations in laboratory vessels.
Elemental chlorine, Cl₂, is used chiefly as a chemical intermediate rather than as an end product. Major uses include production of vinyl chloride for polyvinyl chloride, manufacture of chlorinated solvents and intermediates, bleaching of some pulp and textile streams, and synthesis of inorganic chlorides. Chlorine and hypochlorite solutions are widely used for drinking-water, wastewater, and swimming-pool disinfection. Hydrochloric acid, HCl, made directly or as a by-product, is also an important industrial reagent.
Chlorine is commonly used as an antiseptic and is used to make drinking water safe and to treat swimming pools. Large amounts of chlorine are used in many industrial processes, such as in the production of paper products, plastics, dyes, textiles, medicines, antiseptics, insecticides, solvents and paints.
Two of the most familiar chlorine compounds are sodium chloride (NaCl) and hydrogen chloride (HCl). Sodium chloride, commonly known as table salt, is used to season food and in some industrial processes. Hydrogen chloride, when mixed with water (H2O), forms hydrochloric acid, a strong and commercially important acid. Other chlorine compounds include: chloroform (CHCl3), carbon tetrachloride (CCl4), potassium chloride (KCl), lithium chloride (LiCl), magnesium chloride (MgCl2) and chlorine dioxide (ClO2).
Chlorine is a very dangerous material. Liquid chlorine burns the skin and gaseous chlorine irritates the mucus membranes. Concentrations of the gas as low as 3.5 parts per million can be detected by smell while concentrations of 1000 parts per million can be fatal after a few deep breaths.
Chlorine is widely used in making many everyday products. It is used for producing safe drinking water the world over. Even the smallest water supplies are now usually chlorinated.
It is also extensively used in the production of paper products, dyestuffs, textiles, petroleum products, medicines, antiseptics, insecticides, food, solvents, paints, plastics, and many other consumer products.
Most of the chlorine produced is used in the manufacture of chlorinated compounds for sanitation, pulp bleaching, disinfectants, and textile processing. Further use is in the manufacture of chlorates, chloroform, carbon tetrachloride, and in the extraction of bromine.
Organic chemistry demands much from chlorine, both as an oxidizing agent and in substitution, since it often brings many desired properties in an organic compound when substituted for hydrogen, as in one form of synthetic rubber.
Isotopes in Earth/Planetary Science
Because molecules, atoms, and ions of the stable isotopes of chlorine possess slightly different physical and chemical properties, they commonly will be fractionated during physical, chemical, and biological processes, giving rise to variations in isotopic abundances and in atomic weights. There are substantial variations in the isotopic abundances of chlorine in natural terrestrial materials (Fig. IUPAC.17.1). These variations are useful for investigating the origin of substances and studying environmental, hydrological, and geological processes. Chlorine is subject to isotopic fractionation by physical and chemical processes. Variations in isotopic compositions of stable chlorine isotopes provide evidence for ultrafiltration and crystallization of brines and indicate sources of chlorine-bearing contaminants, such as solvents and rocket fuels, in the environment [151] H. G. M. Eggenkamp, R. Kreulen, A. F. Koster Van Groos. Geochim. Cosmochim. Acta59, 5169 (1995)., [152] M. A. Stewart, A. J. Spivack. Rev. Mineral. Geochem.55, 231 (2004)..
Isotopes in Forensic Science and Anthropology
Analyses of chlorine isotopes and other environmental tracers can help to identify whether an environmental contaminant is of anthropogenic origin or naturally occurring. For example, perchlorate (ClO4 -) can be of anthropogenic origin and is also found naturally. Perchlorate is a widespread groundwater contaminant that can interfere with hormone production in the thyroid gland by displacing iodide. Both the stable chlorine isotope-amount ratio n(37Cl)/n(35Cl) and the mole fraction of 36Cl, n(36Cl)/n(Cl), can provide useful information about origins of perchlorate in the environment (Fig. IUPAC.17.2). Such information may be important for legal reasons and for remediation of contaminated areas [152] M. A. Stewart, A. J. Spivack. Rev. Mineral. Geochem.55, 231 (2004)., [153] J. K. Böhlke, N. C. Sturchio, B. Gu, J. Horita, G. M. Brown, W. A. Jackson, J. R. Batista, P. B. Hatzinger. Anal. Chem.77, 7838 (2005)..
Isotopes in Geochronology
Radioactive 36Cl provides a useful tool to determine ages in geology and hydrology. Some radioactive 36Cl is cosmogenic and enters the terrestrial environment in precipitation. Because of its long half-life of 3.01×105 years, the level of 36Cl in aquifers can be measured and used to estimate ages (on the order of 105 to 106 years) of old meteoric groundwater (water that was originally precipitation) [155] F. M. Phillips. “Chlorine-36”, in Environmental Tracers in Subsurface Hydrology, P. G. Cook and A. L. Herczeg (Eds.), Kluwer Academic Publishers, Boston MA (2000)..
Thermonuclear bomb tests in the ocean produced large amounts of 36Cl by neutron reactions with 35Cl in seawater. This was especially prevalent in the late 1950s. Large amounts of this anthropogenic 36Cl were distributed throughout the atmosphere, deposited with precipitation, and incorporated into terrestrial soils and groundwater. This enriched 36Cl has been used as a tracer of meteoric water from that era [156] F. M. Phillips, J. L. Mattick, T. A. Duval, D. Elmore, P. W. Kubik. Water Resour. Res.24, 877 (1988)..
Chlorine commonly forms chloride compounds in the −1 oxidation state, including sodium chloride, NaCl, hydrogen chloride, HCl, and many metal chlorides. It also forms positive oxidation states in oxyanions such as hypochlorite, ClO⁻, chlorite, ClO₂⁻, chlorate, ClO₃⁻, and perchlorate, ClO₄⁻. Important molecular compounds include chlorine dioxide, ClO₂, and phosphorus trichloride, PCl₃. Organic chlorides range from simple chloromethane, CH₃Cl, to complex polymers and pharmaceuticals.
See more information at the Chlorine compound page.
Chlorine, Cl₂, is acutely toxic by inhalation and strongly irritating to eyes, skin, and the respiratory tract. It reacts with moisture in tissues to form acidic and oxidizing species. Concentrated hypochlorite solutions and chlorine dioxide, ClO₂, are hazardous oxidizers, and mixing hypochlorite with acids can release chlorine gas. Many chloride salts are low-hazard at ordinary exposure levels, but toxicity depends strongly on the accompanying cation or organic group.
Chlorine is a respiratory irritant. The gas irritates the mucus membranes and the liquid burns the skin. As little as 3.5 ppm can be detected as an odor, and 1000 ppm is likely to be fatal after a few deep breaths. In fact, chlorine was used as a war gas in 1915.
Chlorine is abundant in the environment mainly as chloride, Cl⁻, dissolved in seawater, brines, soils, and biological fluids. Marine aerosols, evaporite deposits, volcanic gases, and weathering move chlorine through natural cycles. Reactive chlorine compounds are formed naturally in the atmosphere and by organisms, but industrial organochlorines have added persistent pollutants in some settings. Chloride is mobile in water and is not readily removed by ordinary soil adsorption.
Chlorine is produced industrially by electrolysis of brine, usually together with sodium hydroxide, NaOH, and hydrogen, H₂, in the chlor-alkali process. The economics are closely tied to demand for caustic soda and for chlorine-consuming products such as polyvinyl chloride and isocyanates. Because chlorine gas is hazardous to transport, large users are often integrated with production sites or consume it nearby. Recycling is indirect: chloride from wastes may be recovered in salts or converted through industrial processes, but much chlorine ultimately disperses as chloride.
In nature it is found in the combined state only, chiefly with sodium as common salt (NaCl), carnallite, and sylvite.
Chlorine is a moderately abundant cosmic element made mainly in massive stars and supernova-related nucleosynthesis. It is less abundant than neighboring elements such as sulfur and argon. In planetary materials it is strongly lithophile and volatile relative to many rock-forming elements, occurring as chlorides, brines, and volcanic gases. Chlorine-bearing salts have been detected or inferred on several planetary bodies.
- Chlorine gas was used as a chemical weapon in the First World War.
- Natural chlorine has a stable isotope ratio that is useful in isotope geochemistry.
- Dry chlorine is less corrosive to many metals than moist chlorine.
- Common table salt contains chlorine as chloride, not as elemental Cl₂.
- Perchlorate salts can persist in arid soils and interfere with iodide uptake.
- Chlorine is liquefied commercially for storage and transport under pressure.
Imagens
Propriedades
Física
- Raio atômico (empírico)
- 100 pm Comparar Raio atômico (empírico) de todos os elementos →
- Raio covalente
- 102 pm Comparar Raio covalente de todos os elementos →
- Raio de van der Waals
- 175 pm Comparar Raio de van der Waals de todos os elementos →
- Densidade
- 3,214 kg/m³ Comparar Densidade de todos os elementos →
- Volume molar
- 0,0187 L/mol
- Fase nas CNTP
- Gás Comparar Fase nas CNTP de todos os elementos →
- Ponto de fusão
- -101,5 °C Comparar Ponto de fusão de todos os elementos →
- Ponto de ebulição
- -34,04 °C Comparar Ponto de ebulição de todos os elementos →
- Condutividade térmica
- 0,009 W/(m·K) Comparar Condutividade térmica de todos os elementos →
- Capacidade calorífica específica
- 0,479 J/(g·K) Comparar Capacidade calorífica específica de todos os elementos →
- Capacidade calorífica molar
- 33,949 J/(mol·K) Comparar Capacidade calorífica molar de todos os elementos →
- Estrutura cristalina
- Ortorrômbica Comparar Estrutura cristalina de todos os elementos →
Química
- Eletronegatividade (Pauling)
- 3,16 Comparar Eletronegatividade (Pauling) de todos os elementos →
- Eletronegatividade (Allen)
- 2,869
- Afinidade eletrônica
- 3,6127 eV
- Energia de ionização (1ª)
- 12,967633 eV Comparar Energia de ionização (1ª) de todos os elementos →
- Energia de ionização (2ª)
- 23,813722 eV Comparar Energia de ionização (2ª) de todos os elementos →
- Energia de ionização (3ª)
- 39,800137 eV Comparar Energia de ionização (3ª) de todos os elementos →
- Energia de ionização (4ª)
- 53,240183 eV Comparar Energia de ionização (4ª) de todos os elementos →
- Energia de ionização (5ª)
- 67,680233 eV Comparar Energia de ionização (5ª) de todos os elementos →
- Estados de oxidação
- −1, +1, +2, +3, +4, +5, +6, +7 Comparar Estados de oxidação de todos os elementos →
- Elétrons de valência
- 7 Comparar Elétrons de valência de todos os elementos →
- Configuração eletrônica
- [Ne] 3s2 3p5
Termodinâmica
- Ponto crítico (temperatura)
- 143,9 °C
- Ponto crítico (pressão)
- 7,991e+6 Pa
- Calor de fusão
- 0,0664352 eV Comparar Calor de fusão de todos os elementos →
- Calor de vaporização
- 0,21153547 eV Comparar Calor de vaporização de todos os elementos →
- Calor de atomização
- 1,261129 eV
- Entalpia de atomização
- 1,257211 eV
Nuclear
- Prótons
- 17 Comparar Prótons de todos os elementos →
- Nêutrons
- 18 Comparar Nêutrons de todos os elementos →
- Isótopos conhecidos
- 25 Comparar Isótopos conhecidos de todos os elementos →
- Isótopos estáveis
- 2 Comparar Isótopos estáveis de todos os elementos →
- Isótopo mais estável
- Cl-35
- Ano da descoberta
- 1774
Abundância
- Abundância (crosta terrestre)
- 145 mg/kg Comparar Abundância (crosta terrestre) de todos os elementos →
- Abundância (oceano)
- 1,94 × 104 mg/L Comparar Abundância (oceano) de todos os elementos →
Estrutura cristalina
- Constante de rede a
- 624 pm
Estrutura eletrônica
- Elétrons por camada
- 2, 8, 7 Comparar Elétrons por camada de todos os elementos →
Identificadores
- Número CAS
- 7782-50-5 Comparar Número CAS de todos os elementos →
- Símbolo de termo
- 2P°3/2
- InChI
- InChI=1S/Cl
- Chave InChI
- ZAMOUSCENKQFHK-UHFFFAOYSA-N
Configuração eletrônica Medido
Cl: 3s² 3p⁵[Ne] 3s² 3p⁵1s² 2s² 2p⁶ 3s² 3p⁵Modelo atômico
Os isótopos alteram o número de nêutrons, a massa e a estabilidade — não a configuração eletrônica de um átomo neutro.
Modelo atômico esquemático, sem escala.
Assinatura atômica
Espectro de emissão / absorção
Distribuição isotópica
| Número de massa | Massa atômica (u) | Abundância natural | Meia-vida |
|---|---|---|---|
| 35 Estável | 34,968852682 ± 0,000000037 | 75,7600% | Estável |
| 37 Estável | 36,965902602 ± 0,000000055 | 24,2400% | Estável |
Fase / Estado
Motivo: 59,0 °C acima do ponto de ebulição (-34,04 °C)
Esquemático, sem escala
Pontos de transição de fase
Energias de transição
Energia necessária para fundir 1 mol no ponto de fusão
Energia necessária para vaporizar 1 mol no ponto de ebulição
Densidade
Em condições padrão
Estimada pela lei dos gases ideais à T atual
Avançado
Espectros atômicos
Mostrando 10 de 17. Ordenado por carga do íon (ordem crescente).
Dados de linhas disponíveis ?
| Íon | Carga | Total de linhas | Probabilidades de transição | Designações dos níveis |
|---|---|---|---|---|
| Cl I | 0 | 221 | 99 | 100 |
| Cl II | +1 | 292 | 221 | 221 |
| Cl III | +2 | 192 | 166 | 166 |
| Cl IV | +3 | 73 | 42 | 45 |
| Cl V | +4 | 27 | 6 | 6 |
| Cl VI | +5 | 1 | 1 | 1 |
| Cl VII | +6 | 28 | 28 | 28 |
| Cl VIII | +7 | 5 | 5 | 5 |
| Cl IX | +8 | 3 | 3 | 3 |
| Cl X | +9 | 11 | 11 | 11 |
Dados de níveis disponíveis ?
| Íon | Carga | Níveis |
|---|---|---|
| Cl I | 0 | 379 |
| Cl II | +1 | 275 |
| Cl III | +2 | 83 |
| Cl IV | +3 | 41 |
| Cl V | +4 | 29 |
| Cl VI | +5 | 67 |
| Cl VII | +6 | 47 |
| Cl VIII | +7 | 29 |
| Cl IX | +8 | 57 |
| Cl X | +9 | 15 |
Raios iônicos
| Carga | Coordenação | Spin | Raio |
|---|---|---|---|
| -1 | 6 | N/D | 181 pm |
| +5 | 3 | N/D | 12 pm |
| +7 | 4 | N/D | 8 pm |
| +7 | 6 | N/D | 27 pm |
Compostos
Isótopos (2)
| Número de massa | Massa atômica (u) | Abundância natural | Meia-vida | Modo de decaimento | |
|---|---|---|---|---|---|
| 35 Estável | 34,968852682 ± 0,000000037 | 75,7600% ± 0,1000% | Estável | stable | |
| 37 Estável | 36,965902602 ± 0,000000055 | 24,2400% ± 0,1000% | Estável | stable |
Linhas espectrais
Mostrando 50 de 207. Por padrão, são mostradas apenas as linhas espectrais com intensidade medida.
| Comprimento de onda (nm) | Intensidade | Estágio de ionização | Tipo | Transição | Exatidão | Fonte | |
|---|---|---|---|---|---|---|---|
| 479.4556 nm | 99000 | Cl II | emission | 3s2.3p3.(4S*).4s 5S* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 542.3257 nm | 99000 | Cl II | emission | 3s2.3p3.(4S*).3d 5D* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 489.6783 nm | 81000 | Cl II | emission | 3s2.3p3.(2D*).4s 3D* → 3s2.3p3.(2D*).4p 3F | Medida | NIST | |
| 521.7945 nm | 56000 | Cl II | emission | 3s2.3p3.(4S*).4s 3S* → 3s2.3p3.(4S*).4p 3P | Medida | NIST | |
| 490.4776 nm | 47000 | Cl II | emission | 3s2.3p3.(2D*).4s 3D* → 3s2.3p3.(2D*).4p 3F | Medida | NIST | |
| 481.007 nm | 29000 | Cl II | emission | 3s2.3p3.(4S*).4s 5S* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 491.773 nm | 26000 | Cl II | emission | 3s2.3p3.(2D*).4s 3D* → 3s2.3p3.(2D*).4p 3F | Medida | NIST | |
| 507.8267 nm | 26000 | Cl II | emission | 3s2.3p3.(2D*).4s 3D* → 3s2.3p3.(2D*).4p 3D | Medida | NIST | |
| 386.0828 nm | 25000 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 522.1362 nm | 23000 | Cl II | emission | 3s2.3p3.(4S*).4s 3S* → 3s2.3p3.(4S*).4p 3P | Medida | NIST | |
| 544.3375 nm | 19000 | Cl II | emission | 3s2.3p3.(4S*).3d 5D* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 481.948 nm | 16000 | Cl II | emission | 3s2.3p3.(4S*).4s 5S* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 539.2125 nm | 15000 | Cl II | emission | 3s2.3p3.(2D*).4s 1D* → 3s2.3p3.(2D*).4p 1F | Medida | NIST | |
| 478.132 nm | 13000 | Cl II | emission | 3s2.3p3.(2P*).4s 3P* → 3s2.3p3.(2P*).4p 3D | Medida | NIST | |
| 385.0988 nm | 10000 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 499.5473 nm | 10000 | Cl II | emission | 3s2.3p3.(2D*).3d 3F* → 3s2.3p3.(2D*).4p 3D | Medida | NIST | |
| 542.3516 nm | 10000 | Cl II | emission | 3s2.3p3.(4S*).3d 5D* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 544.4217 nm | 10000 | Cl II | emission | 3s2.3p3.(4S*).3d 5D* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 385.1374 nm | 7900 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 725.6618 nm | 7500 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).4p 4S* | Medida | NIST | |
| 545.7037 nm | 5600 | Cl II | emission | 3s2.3p3.(4S*).3d 5D* → 3s2.3p3.(4S*).4p 5P | Medida | NIST | |
| 741.4118 nm | 5000 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).4p 2P* | Medida | NIST | |
| 386.099 nm | 4400 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 476.8651 nm | 4300 | Cl II | emission | 3s2.3p3.(2P*).4s 3P* → 3s2.3p3.(2P*).4p 3D | Medida | NIST | |
| 384.5639 nm | 3900 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 384.5362 nm | 3100 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 380.5174 nm | 1900 | Cl II | emission | 3s2.3p3.(2D*).4p 3D → 3s2.3p3.(2D*).4d 3F* | Medida | NIST | |
| 609.468 nm | 1900 | Cl II | emission | 3s2.3p3.(2D*).4s 1D* → 3s2.3p3.(2D*).4p 1P | Medida | NIST | |
| 384.5788 nm | 1500 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 391.3866 nm | 1500 | Cl II | emission | 3s2.3p3.(2D*).4p 3F → 3s2.3p3.(2D*).4d 3F* | Medida | NIST | |
| 380.9459 nm | 1300 | Cl II | emission | 3s2.3p3.(2D*).4p 3D → 3s2.3p3.(2D*).4d 3F* | Medida | NIST | |
| 385.1651 nm | 1200 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 391.6632 nm | 1100 | Cl II | emission | 3s2.3p3.(2D*).4p 3F → 3s2.3p3.(2D*).4d 3F* | Medida | NIST | |
| 386.1378 nm | 1000 | Cl II | emission | 3s2.3p3.(4S*).4p 5P → 3s2.3p3.(4S*).4d 5D* | Medida | NIST | |
| 399.1367 nm | 700 | Cl III | emission | 3s2.3p2.(3P).3d 4P → 3s2.3p2.(3P).4p 4P* | Medida | NIST | |
| 401.8351 nm | 600 | Cl III | emission | 3s2.3p2.(3P).3d 4P → 3s2.3p2.(3P).4p 4P* | Medida | NIST | |
| 405.893 nm | 600 | Cl III | emission | 3s2.3p2.(3P).3d 4P → 3s2.3p2.(3P).4p 4P* | Medida | NIST | |
| 410.4082 nm | 500 | Cl III | emission | 3s2.3p2.(3P).3d 4P → 3s2.3p2.(3P).4p 4P* | Medida | NIST | |
| 410.6764 nm | 500 | Cl III | emission | 3s2.3p2.(3P).3d 4P → 3s2.3p2.(3P).4p 4P* | Medida | NIST | |
| 436.3268 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4D* | Medida | NIST | |
| 436.9498 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 2D* | Medida | NIST | |
| 437.9896 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4D* | Medida | NIST | |
| 438.9751 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4D* | Medida | NIST | |
| 443.8488 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4P* | Medida | NIST | |
| 452.6182 nm | 100 | Cl I | emission | 3s2.3p4.(3P).4s 2P → 3s2.3p4.(3P).5p 2P* | Medida | NIST | |
| 439.0403 nm | 90 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4D* | Medida | NIST | |
| 440.302 nm | 90 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 4P* | Medida | NIST | |
| 447.5304 nm | 90 | Cl I | emission | 3s2.3p4.(3P).4s 4P → 3s2.3p4.(3P).5p 2D* | Medida | NIST | |
| 460.0977 nm | 80 | Cl I | emission | 3s2.3p4.(3P).4s 2P → 3s2.3p4.(3P).5p 2P* | Medida | NIST | |
| 466.1208 nm | 80 | Cl I | emission | 3s2.3p4.(3P).4s 2P → 3s2.3p4.(3P).5p 2P* | Medida | NIST |
Propriedades ampliadas
Raios covalentes (dados ampliados)
- Raio covalente (Pyykkö)
- 99 pm
- Raio covalente (Pyykkö, ligação dupla)
- 95 pm
- Raio covalente (Pyykkö, ligação tripla)
- 93 pm
- Raio covalente (Bragg)
- 105 pm
Raios de van der Waals
- Bondi
- 175 pm
- Batsanov
- 180 pm
- Alvarez
- 182 pm
- UFF
- 394,7 pm
- MM3
- 207 pm
- Dreiding
- 395,03 pm
- Rowland–Taylor
- 176 pm
Raios atômicos e metálicos
- Raio atômico (Rahm)
- 206 pm
- Raio metálico (C12)
- 91 pm
Escalas de numeração
- Mendeleev
- 107
- Pettifor
- 99
- Glawe
- 101
Escalas de eletronegatividade
- Ghosh
- 0
- Gunnarsson–Lundqvist
- 9
- Robles–Bartolotti
- 8
Polarizabilidade e dispersão
- Polarizabilidade dipolar
- 14,6 a.u.
- Polarizabilidade dipolar (incerteza)
- 0,1 a.u.
- C₆
- 94,6 Ha·Bohr6
- C₆ (Gould–Bučko)
- 97,1 Ha·Bohr6
Afinidade química
- Afinidade protônica
- 513,6 kJ/mol
- Basicidade em fase gasosa
- 490,1 kJ/mol
Risco de abastecimento e economia
- Concentração da produção
- 24
- Risco relativo de abastecimento
- 4
- Estabilidade política (maior produtor)
- 24
Transições de fase e alótropos
| Ponto de fusão | 171,65 K |
| Ponto de ebulição | 239,11 K |
| Ponto crítico (temperatura) | 417,05 K |
| Ponto crítico (pressão) | 7,99 MPa |
Categorias de estados de oxidação
Dados de referência avançados
Constantes de blindagem (5)
| n | Orbital | σ |
|---|---|---|
| 1 | s | 0,4761 |
| 2 | p | 4,0068 |
| 2 | s | 5,5696 |
| 3 | p | 10,8839 |
| 3 | s | 9,9317 |
Detalhes dos raios cristalinos (4)
| Carga | CN | Spin | rcrystal (pm) | Origem |
|---|---|---|---|---|
| -1 | VI | 167 | Pauling's (1960) crystal radius, | |
| 5 | IIIPY | 26 | ||
| 7 | IV | 22 | ||
| 7 | VI | 41 | Ahrens (1952) ionic radius, |
Modos de decaimento dos isótopos (45)
| Isótopo | Modo | Intensidade |
|---|---|---|
| 28 | p | 100% |
| 29 | p | 100% |
| 30 | p | 100% |
| 31 | B+ | 100% |
| 31 | B+p | 2,4% |
| 32 | B+ | 100% |
| 32 | B+A | 0,1% |
| 32 | B+p | 0% |
| 33 | B+ | 100% |
| 34 | B+ | 100% |
Fatores de espalhamento de raios X (504)
| Energia (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1,46938 |
| 10,1617 | — | 1,6922 |
| 10,3261 | — | 1,9488 |
| 10,4931 | — | 2,24432 |
| 10,6628 | — | 2,51303 |
| 10,8353 | — | 2,73153 |
| 11,0106 | — | 2,95549 |
| 11,1886 | — | 3,19416 |
| 11,3696 | — | 3,48881 |
| 11,5535 | — | 3,87618 |
Dados adicionais
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
1.45×102 milligrams per kilogram
Referências (1)
- [5] Chlorine https://education.jlab.org/itselemental/ele017.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1.94×104 milligrams per liter
Referências (1)
- [5] Chlorine https://education.jlab.org/itselemental/ele017.html
Sources
Sources of this element.
In nature it is found in the combined state only, chiefly with sodium as common salt (NaCl), carnallite, and sylvite.
Referências (1)
- [6] Chlorine https://periodic.lanl.gov/17.shtml
Isotopes in Forensic Science and Anthropology
Information on the use of this element's isotopes in forensic science and anthropology.
Analyses of chlorine isotopes and other environmental tracers can help to identify whether an environmental contaminant is of anthropogenic origin or naturally occurring. For example, perchlorate (ClO4 -) can be of anthropogenic origin and is also found naturally. Perchlorate is a widespread groundwater contaminant that can interfere with hormone production in the thyroid gland by displacing iodide. Both the stable chlorine isotope-amount ratio n(37Cl)/n(35Cl) and the mole fraction of 36Cl, n(36Cl)/n(Cl), can provide useful information about origins of perchlorate in the environment (Fig. IUPAC.17.2). Such information may be important for legal reasons and for remediation of contaminated areas [152] M. A. Stewart, A. J. Spivack. Rev. Mineral. Geochem.55, 231 (2004)., [153] J. K. Böhlke, N. C. Sturchio, B. Gu, J. Horita, G. M. Brown, W. A. Jackson, J. R. Batista, P. B. Hatzinger. Anal. Chem.77, 7838 (2005)..
Referências (4)
- [152] M. A. Stewart, A. J. Spivack. Rev. Mineral. Geochem.55, 231 (2004).
- [153] J. K. Böhlke, N. C. Sturchio, B. Gu, J. Horita, G. M. Brown, W. A. Jackson, J. R. Batista, P. B. Hatzinger. Anal. Chem.77, 7838 (2005).
- [154] J. K. Böhlke, P. Hatzinger, N. C. Sturchio, B. Gu, I. J. Abbene, S. J. Mroczkowski. Environ. Sci. Technol.43, 5619 (2009).
- [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703
Referências
(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 Chlorine.
The element property data was retrieved from publications.

