Iron (Fe)
transition-metalSolid
표준 원자량
55.845 u전자 배치
[Ar] 4s2 3d6녹는점
1537.85 °C끓는점
2860.85 °C밀도
7874 kg/m³산화 상태
−4, −2, −1, 0, +1, +2, +3, +4, +5, +6, +7전기 음성도(Pauling)
1.83제1 이온화 에너지
7.902468 eV발견 연도
해당 없음원자 반지름
140 pm상세 정보
Iron is a first-row transition metal and one of the central elements of technology and biology. It forms strong, workable alloys, especially with carbon, and has accessible Fe²⁺ and Fe³⁺ redox chemistry. In Earth materials it is a major constituent of the core, mantle minerals, and many ores. Its magnetic behavior and ability to bind small molecules in metalloproteins give it importance beyond structural metal use.
The pure metal is very reactive chemically and rapidly corrodes, especially in moist air or at elevated temperatures. It has four allotropic forms or ferrites, known as alpha, beta, gamma, and omega, with transition points at 700, 928, and 1530C. The alpha form is magnetic, but when transformed into the beta form, the magnetism disappears although the lattice remains unchanged. The relations of these forms are peculiar. Pig iron is an alloy containing about 3 percent carbon with varying amounts of sulfur, silicon, manganese, and phosphorus.
Iron is hard, brittle, fairly fusible, and is used to produce other alloys, including steel. Wrought iron contains only a few tenths of a percent of carbon, is tough, malleable, less fusible, and usually has a "fibrous" structure.
Carbon steel is an alloy of iron with small amounts of Mn, S, P, and Si. Alloy steels are carbon steels with other additives such as nickel, chromium, vanadium, etc. Iron is a cheap, abundant, useful, and important metal.
The name derives from the Anglo-Saxon iron of unknown origin. The element has been known from prehistoric times. The symbol Fe is derived from the Latin ferrum for "firmness". It is of interest to note that 56Fe requires more energy to be formed than any other nuclide. It is, therefore, the ultimate endproduct of stellar nuclear fusion.
Archaeological evidence suggests that people have been using iron for at least 5000 years. Iron is the cheapest and one of the most abundant of all metals, comprising nearly 5.6% of the earth's crust and nearly all of the earth's core. Iron is primarily obtained from the minerals hematite (Fe2O3) and magnetite (Fe3O4). The minerals taconite, limonite (FeO(OH)·nH2O) and siderite (FeCO3) are other important sources.
Latin ferrum. Iron was used prehistorically:
▸ Iron is mentioned numerous times in the Old Testament of the Bible.
▸ A remarkable iron pillar, dating to about A.D. 400, remains standing today in Delhi, India. This solid shaft of wrought iron is about 7 1/4 m high by 40 cm in diameter. Corrosion to the pillar has been minimal although it has been exposed to the weather since its creation.
Pure iron is a lustrous, silvery-gray metal that tarnishes in moist air. At ordinary conditions it is solid, dense, malleable, and ferromagnetic. Commercial iron usually contains carbon and other impurities that strongly affect hardness, corrosion, and color of the surface.
Most iron is used as steel or cast iron rather than as the pure element. Carbon steels, stainless steels, and alloy steels are used in buildings, vehicles, machinery, tools, pipelines, rails, ships, and electrical equipment. Wrought iron was historically important for gates, chains, and structural work but is now a specialty material. Finely divided iron is used in some chemical reductions and in powder metallurgy, and iron cores and laminations remain important in magnetic devices.
Huge amounts of iron are used to make steel, an alloy of iron and carbon. Steel typically contains between 0.3% and 1.5% carbon, depending on the desired characteristics. The addition of other elements can give steel other useful properties. Small amounts of chromium improves durability and prevents rust (stainless steel); nickel increases durability and resistance to heat and acids; manganese increases strength and resistance to wear; molybdenum increases strength and resistance to heat; tungsten retains hardness at high temperatures; and vanadium increases strength and springiness. Steel is used to make paper clips, skyscrapers and everything in between.
In addition to helping build the world around us, iron helps keep plants and animals alive. Iron plays a role in the creation of chlorophyll in plants and is an essential part of hemoglobin, the substance that carries oxygen within red blood cells. Iron sulfate (FeSO4) is used to treat the blood disease anemia.
Iron is a vital constituent of plant and animal life and works as an oxygen carrier in hemoglobin.
Taconite is becoming increasingly important as a commercial ore. The pure metal is not often encountered in commerce, but is usually alloyed with carbon or other metals.
Isotopes in Biology
Natural iron enriched in its least abundant stable isotopes, 57Fe and 58Fe, are used as a tracer in human studies to assess absorption, excretion, distribution, and utilization of iron in basic and applied research [108] World Nuclear Association. Radioisotopes in Industry: Industrial Uses of Radioisotopes, World Nuclear Association (2014), Feb. 24; http://www.world-nuclear.org/info/inf56.html., [109] Australian Government, Australian Nuclear Science and Technology Organisation (Ansto). [Radioisotopes]:/their Role in Society Today/, Australian Government, Australian Nuclear Science and Technology Organisation (Ansto) (2014), Feb. 24; http://www.ansto.gov.au/__data/assets/pdf_file/0018/3564/Radioisotopes.pdf., [110] AUS-e-TUTE for Astute Science Students. Chemistry Tutorial: Summary of Radioactive Particles, Isotopes, Properties and Uses, AUS-e-TUTE for Astute Science Students (2014), Feb. 24; http://www.ausetute.com.au/nuclesum.html., [214] Z. Chen, I. J. Griffin, L. M. Plumlee, S. A. Abrams. J. Nutr.135, 1790 (2005)., [215] S. A. Abrams. Am. J. Clin. Nutr.70, 955 (1999)., [216] N. Dauphas, O. Rouxel. Mass Spectrom. Rev.25, 515 (2006).. The two radioisotopes, 55Fe and 59Fe, have sufficiently long half-lives of 2.75 years and 44.5 days, respectively, to be used as tracers, but potential health and environmental hazards limit their use to diagnostic applications in patient care (i.e. disorders of blood and of iron metabolism) [110] AUS-e-TUTE for Astute Science Students. Chemistry Tutorial: Summary of Radioactive Particles, Isotopes, Properties and Uses, AUS-e-TUTE for Astute Science Students (2014), Feb. 24; http://www.ausetute.com.au/nuclesum.html., [215] S. A. Abrams. Am. J. Clin. Nutr.70, 955 (1999)., [216] N. Dauphas, O. Rouxel. Mass Spectrom. Rev.25, 515 (2006)..
Isotopes in Earth/Planetary Science
60Fe is an extinct radionuclide with a half-life of 2.6×106 years that has fully decayed to 60Ni since formation of the Solar System. The distribution of the product (radiogenic) 60Ni in extraterrestrial material, such as meteorites, has been used to gain insight into the early history of the Solar System [216] N. Dauphas, O. Rouxel. Mass Spectrom. Rev.25, 515 (2006).. Because molecules, atoms, and ions of the stable isotopes of iron 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 measureable variations in the isotopic abundances of iron in natural terrestrial materials (Fig. IUPAC.26.1). Small variations in stable iron isotopic compositions caused by physical and chemical isotopic fractionation processes have been used to study mass transfer processes in nature and chemical equilibria [17] T. B. Coplen, J. A. Hopple, J. K. Böhlke, H. S. Peiser, S. E. Rieder, H. R. Krouse, K. J. R. Rosman, T. Ding, R. D. Vocke, K. Revesz, A. Lamberty, P. D. P. Taylor, P. D. Bièvre. United States Geological Survey Water-Resources Investigations Report, 01-4222, (2002)., [216] N. Dauphas, O. Rouxel. Mass Spectrom. Rev.25, 515 (2006)., [217] United States Geological Survey. Resources on Isotopes-Periodic Table-Iron, United States Geological Survey (2014), Feb. 25; http://wwwrcamnl.wr.usgs.gov/isoig/period/fe_iig.html..
Isotopes in Industry
55Fe is a beta emitting nuclide that serves as an electron source together with 63Ni (with a half-life of 99 years) in electron-capture detectors. Electron-capture detectors are used as thickness gauges or as detectors for organic analytes in gas chromatography [218] P. Cassettea, T. Altzitzogloub, R. Brodac, R. Colléd, P. Dryake, P. de Felicef, E. Guntherg, J. M. Los Arcosh, G. Rateli, B. Simpsonj, F. Verrezen. Appl. Radiat. Isot.49, 1403 (1998)..
Isotopes in Medicine
52Fe, with a half-life of 8.3 h, emits positrons and is used in positron emission tomography (PET) studies. It can be produced in a cyclotron from stable 50Cr by alpha particle capture [99] World Nuclear Association. Radioisotopes in Medicine, World Nuclear Association (2014), Feb. 23; http://www.world-nuclear.org/info/inf55.html., [219] M. Bruehlmeier, K. L. Leenders, P. Vontobel, C. Calonder, A. Antonini, A. Weindl. J. Nucl. Med.41, 781 (2000)., [220] A. Agool, A. W. Glaudemans, H. H. Boersma, R. A. Dierckx, E. Vellenga, R. H. Slart. Eur. J. Nucl. Med. Mol. Imaging38, 166 (2011)..
Isotopes Used as a Source of Radioactive Isotope(s)
Stable 56Fe is used for production of radioactive 55Co (with a half-life of about 18 h), as an emitter of positrons for PET applications using the reaction 56Fe (p, 2n) 55Co [221] S. Spellerberg, P. Reimer, G. Blessing, H. H. Coenen, S. M. Qaim. Appl. Radiat. Isot.49, 1519 (1998)., [222] F. Haddad, L. Ferrer, A. Guertin, T. Carlier, N. Michel, J. Barbet, J. F. Chatal. Eur. J. Nucl. Med. Mol. Imaging35, 1377 (2008)..
Iron commonly occurs in the +2 and +3 oxidation states, with interconversion between Fe²⁺ and Fe³⁺ central to its aqueous and biological chemistry. Important oxides include magnetite (Fe₃O₄), hematite (Fe₂O₃), and wüstite (FeO), while hydrated iron oxides and oxyhydroxides dominate rust and many soils. Iron forms salts such as iron(II) sulfate (FeSO₄) and iron(III) chloride (FeCl₃). Carbonyl chemistry includes iron pentacarbonyl (Fe(CO)₅), and organometallic chemistry is exemplified by ferrocene (Fe(C₅H₅)₂).
See more information at the Iron compound page.
Metallic iron is not highly toxic and iron is an essential nutrient, but excess intake or injection can be dangerous. Iron dust can irritate the lungs and is combustible when finely divided. Molten iron presents severe thermal hazards, and ironworking fumes may contain hazardous oxides or alloying-metal compounds. Soluble iron salts can be corrosive or harmful in concentrated form, especially to children.
Iron is abundant in rocks, soils, sediments, and natural waters, where it cycles between reduced Fe²⁺ and oxidized Fe³⁺ forms according to oxygen level, pH, and microbial activity. Iron oxides and oxyhydroxides bind phosphate, arsenic, and many trace metals, affecting their mobility. In some ocean regions, dissolved iron limits phytoplankton growth. Weathering, hydrothermal fluids, mining, and corrosion all redistribute iron locally.
Iron has one of the largest industrial supply chains of any element. It is produced mainly by mining iron ores such as hematite and magnetite, concentrating them where needed, and reducing the oxides in blast furnaces or direct-reduction processes before steelmaking. Scrap recycling is highly developed because steel can be remelted repeatedly, although composition control is important. Demand is tied to construction, transport, manufacturing, and infrastructure, and substitution is usually limited where low cost, strength, and availability are required.
Iron is a relatively abundant element in the universe. It is found in the sun and many types of stars in considerable quantity. Its nuclei are very stable. Iron is a principal component of a meteorite class known as siderites and is a minor constituent of the other two meteorite classes. The core of the earth 2150 miles in radius is thought to be largely composed of iron with about 10 percent occluded hydrogen. The metal is the fourth most abundant element, by weight that makes up the crust of the earth.
The most common ore is hematite, which is frequently seen as black sands along beaches and banks of streams.
Iron is cosmically common because nuclei near iron and nickel are strongly bound products of stellar nucleosynthesis. It is made in massive stars and dispersed by supernovae, with additional contributions from explosive stellar events. In rocky planets it is a major dense component; Earth’s core is dominated by iron alloyed with nickel and lighter elements. Iron lines are also important in astronomical spectroscopy.
- Iron has several allotropes; the change from body-centered to face-centered cubic structure is central to steel heat-tLE
- Stainless steel resists rust because chromium forms a protective oxide film, not because the iron is absent.
- Meteoric iron was worked by some cultures before large-scale smelting of terrestrial ores.
- Hemoglobin uses iron to bind O₂ reversibly without normally oxidizing it completely.
- Iron pentacarbonyl is a volatile liquid despite containing a transition metal.
이미지
특성
물리적 특성
- 원자 반지름(경험값)
- 140 pm 모든 원소의 원자 반지름(경험값) 비교 →
- 공유 결합 반지름
- 132 pm 모든 원소의 공유 결합 반지름 비교 →
- 반데르발스 반지름
- 194 pm 모든 원소의 반데르발스 반지름 비교 →
- 금속 반지름
- 117 pm 모든 원소의 금속 반지름 비교 →
- 밀도
- 7874 kg/m³ 모든 원소의 밀도 비교 →
- 몰 부피
- 0.0071 L/mol
- STP에서의 상
- 고체 모든 원소의 STP에서의 상 비교 →
- 녹는점
- 1537.85 °C 모든 원소의 녹는점 비교 →
- 끓는점
- 2860.85 °C 모든 원소의 끓는점 비교 →
- 열전도율
- 80.4 W/(m·K) 모든 원소의 열전도율 비교 →
- 비열
- 0.449 J/(g·K) 모든 원소의 비열 비교 →
- 몰 열용량
- 25.1 J/(mol·K) 모든 원소의 몰 열용량 비교 →
- 결정 구조
- 체심 입방 모든 원소의 결정 구조 비교 →
화학적 특성
- 전기 음성도(Pauling)
- 1.83 모든 원소의 전기 음성도(Pauling) 비교 →
- 전기 음성도(Allen)
- 1.8
- 전자 친화도
- 0.151 eV
- 제1 이온화 에너지
- 7.902468 eV 모든 원소의 제1 이온화 에너지 비교 →
- 제2 이온화 에너지
- 16.199266 eV 모든 원소의 제2 이온화 에너지 비교 →
- 제3 이온화 에너지
- 30.651106 eV 모든 원소의 제3 이온화 에너지 비교 →
- 제4 이온화 에너지
- 54.910189 eV 모든 원소의 제4 이온화 에너지 비교 →
- 제5 이온화 에너지
- 75.000258 eV 모든 원소의 제5 이온화 에너지 비교 →
- 산화 상태
- −4, −2, −1, 0, +1, +2, +3, +4, +5, +6, +7 모든 원소의 산화 상태 비교 →
- 원자가 전자
- 8 모든 원소의 원자가 전자 비교 →
- 전자 배치
- [Ar] 4s2 3d6
열역학적 특성
- 임계점(온도)
- 9067 °C
- 융해열
- 0.14313106 eV 모든 원소의 융해열 비교 →
- 기화열
- 3.523864 eV 모든 원소의 기화열 비교 →
- 승화열
- 4.306369 eV
- 원자화열
- 4.306369 eV
- 원자화 엔탈피
- 4.306369 eV
핵 특성
- 양성자 수
- 26 모든 원소의 양성자 수 비교 →
- 중성자 수
- 30 모든 원소의 중성자 수 비교 →
- 알려진 동위원소 수
- 32 모든 원소의 알려진 동위원소 수 비교 →
- 안정 동위원소 수
- 4 모든 원소의 안정 동위원소 수 비교 →
- 가장 안정한 동위원소
- Fe-56
존재비
- 존재비(지각)
- 5.63e+4 mg/kg 모든 원소의 존재비(지각) 비교 →
- 존재비(해양)
- 0.002 mg/L 모든 원소의 존재비(해양) 비교 →
결정 구조
- 격자 상수 a
- 287 pm
전자 구조
- 전자껍질별 전자 수
- 2, 8, 14, 2 모든 원소의 전자껍질별 전자 수 비교 →
식별자
- CAS 등록 번호
- 7439-89-6 모든 원소의 CAS 등록 번호 비교 →
- 항 기호
- 5D4
- InChI
- InChI=1S/Fe
- InChI 키
- XEEYBQQBJWHFJM-UHFFFAOYSA-N
전자 배치 측정값
Fe: 3d⁶ 4s²[Ar] 3d⁶ 4s²1s² 2s² 2p⁶ 3s² 3p⁶ 3d⁶ 4s²원자 모형
동위원소에 따라 중성자 수, 질량, 안정성은 달라지지만, 중성 원자의 전자 배치는 달라지지 않습니다.
개략적인 원자 모형이며 실제 비율과 다릅니다.
원자 지문
방출 / 흡수 스펙트럼
동위원소 분포
| 질량수 | 원자 질량(u) | 천연 존재비 | 반감기 |
|---|---|---|---|
| 54 안정 | 53.93960899 ± 0.00000053 | 5.8450% | 안정 |
| 56 안정 | 55.93493633 ± 0.00000049 | 91.7540% | 안정 |
| 57 안정 | 56.93539284 ± 0.00000049 | 2.1190% | 안정 |
| 58 안정 | 57.93327443 ± 0.00000053 | 0.2820% | 안정 |
상 / 상태
이유: 녹는점(1537.85 °C)보다 1512.8 °C 낮음
개략도이며 실제 비율과 다름
상전이점
전이 에너지
녹는점에서 1 mol을 녹이는 데 필요한 에너지
끓는점에서 1 mol을 기화시키는 데 필요한 에너지
승화점에서 1 mol을 승화시키는 데 필요한 에너지
밀도
표준 조건에서
표준 조건에서
심화
원자 스펙트럼
전체 26개 중 10개를 표시합니다. 이온 전하순으로 정렬되었습니다(오름차순).
보유 스펙트럼선 데이터 ?
| 이온 | 전하 | 총 스펙트럼선 수 | 전이 확률 | 준위 표기 |
|---|---|---|---|---|
| Fe I | 0 | 10031 | 2542 | 9906 |
| Fe II | +1 | 14471 | 7293 | 14471 |
| Fe III | +2 | 4702 | 2361 | 4687 |
| Fe IV | +3 | 258 | 102 | 102 |
| Fe V | +4 | 2310 | 2018 | 2310 |
| Fe VI | +5 | 159 | 159 | 159 |
| Fe VII | +6 | 651 | 651 | 651 |
| Fe VIII | +7 | 92 | 63 | 92 |
| Fe IX | +8 | 56 | 14 | 56 |
| Fe X | +9 | 98 | 64 | 98 |
보유 에너지 준위 데이터 ?
| 이온 | 전하 | 준위 |
|---|---|---|
| Fe I | 0 | 847 |
| Fe II | +1 | 1028 |
| Fe III | +2 | 596 |
| Fe IV | +3 | 277 |
| Fe V | +4 | 332 |
| Fe VI | +5 | 94 |
| Fe VII | +6 | 210 |
| Fe VIII | +7 | 42 |
| Fe IX | +8 | 35 |
| Fe X | +9 | 65 |
이온 반지름
전체 12개 중 10개를 표시합니다.
| 전하 | 배위 | 스핀 | 반지름 |
|---|---|---|---|
| +2 | 4 | high | 63 pm |
| +2 | 4 | high | 64 pm |
| +2 | 6 | low | 61 pm |
| +2 | 6 | high | 78 pm |
| +2 | 8 | high | 92 pm |
| +3 | 4 | high | 49 pm |
| +3 | 5 | 해당 없음 | 57.99999999999999 pm |
| +3 | 6 | low | 55.00000000000001 pm |
| +3 | 6 | high | 64.5 pm |
| +3 | 8 | high | 78 pm |
화합물
동위원소 (4)
Common iron is a mixture of four isotopes. Ten other isotopes are known to exist.
| 질량수 | 원자 질량(u) | 천연 존재비 | 반감기 | 붕괴 방식 | |
|---|---|---|---|---|---|
| 54 안정 | 53.93960899 ± 0.00000053 | 5.8450% ± 0.0350% | 안정 | stable | |
| 56 안정 | 55.93493633 ± 0.00000049 | 91.7540% ± 0.0360% | 안정 | stable | |
| 57 안정 | 56.93539284 ± 0.00000049 | 2.1190% ± 0.0100% | 안정 | stable | |
| 58 안정 | 57.93327443 ± 0.00000053 | 0.2820% ± 0.0040% | 안정 | stable |
스펙트럼선
전체 5034개 중 50개를 표시합니다. 기본적으로 세기가 측정된 스펙트럼선만 표시됩니다.
| 파장(nm) | 세기 | 이온화 단계 | 유형 | 전이 | 정확도 | 출처 | |
|---|---|---|---|---|---|---|---|
| 387.857282 nm | 1290000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 393.02964 nm | 1150000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 385.637115 nm | 1100000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 389.970707 nm | 1070000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 526.95366 nm | 1020000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 382.444329 nm | 1000000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 392.291129 nm | 1000000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 404.581193 nm | 1000000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 649.49801 nm | 870000 | Fe I | emission | 3d6.4s2 a 3H → 3d7.(4F).4p z 5G* | 측정값 | NIST | |
| 406.359365 nm | 830000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 432.57616 nm | 830000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 3G* | 측정값 | NIST | |
| 440.47498 nm | 810000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 5G* | 측정값 | NIST | |
| 381.58397 nm | 760000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3D* | 측정값 | NIST | |
| 382.588058 nm | 760000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 516.74879 nm | 760000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d6.(5D).4s.4p.(3P*) z 3D* | 측정값 | NIST | |
| 389.565597 nm | 740000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 532.80381 nm | 740000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 407.173752 nm | 710000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 392.025748 nm | 650000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 427.17599 nm | 630000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 3G* | 측정값 | NIST | |
| 430.79017 nm | 630000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 3G* | 측정값 | NIST | |
| 382.78222 nm | 590000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3D* | 측정값 | NIST | |
| 383.422219 nm | 590000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 388.628183 nm | 550000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 640 nm | 490000 | Fe I | emission | 3d6.(5D).4s.4p.(3P*) z 5P* → 3d6.(5D).4s (6D).5s e 5D | 측정값 | NIST | |
| 384.10475 nm | 457000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3D* | 측정값 | NIST | |
| 522.71889 nm | 437000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d6.(5D).4s.4p.(3P*) z 3D* | 측정값 | NIST | |
| 396.925691 nm | 427000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 381.296424 nm | 398000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d6.(5D).4s.4p.(3P*) z 3P* | 측정값 | NIST | |
| 537.14891 nm | 389000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 384.04372 nm | 380000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 414.386752 nm | 363000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 390.294512 nm | 302000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3D* | 측정값 | NIST | |
| 639.36001 nm | 302000 | Fe I | emission | 3d6.4s2 a 3H → 3d7.(4F).4p z 5G* | 측정값 | NIST | |
| 495.75961 nm | 295000 | Fe I | emission | 3d6.(5D).4s.4p.(3P*) z 7F* → 3d6.(5D).4s (6D).5s e 7D | 측정값 | NIST | |
| 441.51221 nm | 288000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 5G* | 측정값 | NIST | |
| 527.03561 nm | 288000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d6.(5D).4s.4p.(3P*) z 3D* | 측정값 | NIST | |
| 387.801779 nm | 275000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 642.13496 nm | 257000 | Fe I | emission | 3d6.4s2 a 3P2 → 3d6.(5D).4s.4p.(3P*) z 3P* | 측정값 | NIST | |
| 388.704779 nm | 251000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 667.79848 nm | 240000 | Fe I | emission | 3d7.(2G).4s a 3G → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 387.250102 nm | 234000 | Fe I | emission | 3d7.(4F).4s a 5F → 3d7.(4F).4p y 5D* | 측정값 | NIST | |
| 390.647918 nm | 234000 | Fe I | emission | 3d6.4s2 a 5D → 3d6.(5D).4s.4p.(3P*) z 5D* | 측정값 | NIST | |
| 413.205785 nm | 224000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 426.04736 nm | 224000 | Fe I | emission | 3d6.(5D).4s.4p.(3P*) z 7D* → 3d6.(5D).4s (6D).5s e 7D | 측정값 | NIST | |
| 654.62373 nm | 224000 | Fe I | emission | 3d7.(2G).4s a 3G → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 641.16477 nm | 219000 | Fe I | emission | 3d6.(5D).4s.4p.(3P*) z 5P* → 3d6.(5D).4s (6D).5s e 5D | 측정값 | NIST | |
| 425.07864 nm | 214000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p z 3G* | 측정값 | NIST | |
| 400.524148 nm | 209000 | Fe I | emission | 3d7.(4F).4s a 3F → 3d7.(4F).4p y 3F* | 측정값 | NIST | |
| 643.08447 nm | 209000 | Fe I | emission | 3d7.(4P).4s a 5P → 3d7.(4F).4p y 5D* | 측정값 | NIST |
확장 특성
공유 결합 반지름(확장)
- 공유 결합 반지름(Pyykkö)
- 116 pm
- 공유 결합 반지름(Pyykkö, 이중 결합)
- 109 pm
- 공유 결합 반지름(Pyykkö, 삼중 결합)
- 102 pm
- 공유 결합 반지름(Bragg)
- 140 pm
반데르발스 반지름
- Batsanov
- 205 pm
- Alvarez
- 244 pm
- UFF
- 291.2 pm
- MM3
- 223 pm
원자 및 금속 반지름
- 원자 반지름(Rahm)
- 237 pm
- 금속 반지름(C12)
- 126 pm
번호 척도
- Mendeleev
- 59
- Pettifor
- 61
- Glawe
- 71
전기 음성도 척도
- Ghosh
- 0
- Miedema
- 5
- Gunnarsson–Lundqvist
- 6
- Robles–Bartolotti
- 4
분극률 및 분산
- 쌍극자 분극률
- 62 a.u.
- 쌍극자 분극률(불확도)
- 4 a.u.
- C₆
- 482 Ha·Bohr6
- C₆ (Gould–Bučko)
- 548 Ha·Bohr6
화학 친화력
- 양성자 친화도
- 754 kJ/mol
- 기체상 염기성
- 731.1 kJ/mol
미데마 매개변수
- 미데마 몰 부피
- 7.09 cm3/mol
- 미데마 전자 밀도
- 6
공급 위험 및 경제성
- 생산 집중도
- 41
- 상대적 공급 위험
- 5
- 매장량 분포
- 21
- 정치적 안정성(최대 생산국)
- 24
- 정치적 안정성(최대 매장국)
- 75
상전이 및 동소체
| 녹는점 | 1811.15 K |
| 끓는점 | 3134.15 K |
| 임계점(온도) | 9340.15 K |
산화 상태 분류
심화 참고 데이터
차폐 상수 (7)
| n | 오비탈 | σ |
|---|---|---|
| 1 | s | 0.619 |
| 2 | p | 3.9112 |
| 2 | s | 7.401 |
| 3 | d | 14.8202 |
| 3 | p | 13.2221 |
| 3 | s | 12.3239 |
| 4 | s | 20.566 |
결정 반지름 상세 정보 (12)
| 전하 | CN | 스핀 | rcrystal (pm) | 기원 |
|---|---|---|---|---|
| 2 | IV | HS | 77 | |
| 2 | IVSQ | HS | 78 | |
| 2 | VI | LS | 75 | estimated, |
| 2 | VI | HS | 92 | from r^3 vs V plots, |
| 2 | VIII | HS | 106 | calculated, |
| 3 | IV | HS | 63 | |
| 3 | V | 72 | ||
| 3 | VI | LS | 69 | from r^3 vs V plots, |
| 3 | VI | HS | 78.5 | from r^3 vs V plots, |
| 3 | VIII | HS | 92 |
동위원소 붕괴 방식 (55)
| 동위원소 | 모드 | 세기 |
|---|---|---|
| 45 | 2p | 70% |
| 45 | B+ | 30% |
| 45 | B+p | 18.9% |
| 45 | 2p | 7.8% |
| 46 | B+ | 100% |
| 46 | B+p | 78.7% |
| 46 | 2p | — |
| 47 | B+ | 100% |
| 47 | B+p | 88.4% |
| 48 | B+ | 100% |
X선 산란 인자 (504)
| 에너지 (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1.37852 |
| 10.1617 | — | 1.42961 |
| 10.3261 | — | 1.48259 |
| 10.4931 | — | 1.53754 |
| 10.6628 | — | 1.59453 |
| 10.8353 | — | 1.65362 |
| 11.0106 | — | 1.71491 |
| 11.1886 | — | 1.77847 |
| 11.3696 | — | 1.84438 |
| 11.5535 | — | 1.91274 |
추가 데이터
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
5.63×104 milligrams per kilogram
참고 문헌 (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
2×10-3 milligrams per liter
참고 문헌 (1)
Sources
Sources of this element.
Iron is a relatively abundant element in the universe. It is found in the sun and many types of stars in considerable quantity. Its nuclei are very stable. Iron is a principal component of a meteorite class known as siderites and is a minor constituent of the other two meteorite classes. The core of the earth 2150 miles in radius is thought to be largely composed of iron with about 10 percent occluded hydrogen. The metal is the fourth most abundant element, by weight that makes up the crust of the earth.
The most common ore is hematite, which is frequently seen as black sands along beaches and banks of streams.
참고 문헌 (1)
- [6] Iron https://periodic.lanl.gov/26.shtml
참고 문헌
(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 Iron.
The element property data was retrieved from publications.

