Oxygen (O)
nonmetalGas
標準原子量
15.999 u [15.99903, 15.99977]電子配置
[He] 2s2 2p4融点
-218.79 °C沸点
-182.95 °C密度
1.429 kg/m³酸化数
−2, −1, 0, +1, +2電気陰性度(Pauling)
3.44第1イオン化エネルギー
13.618055 eV発見年
1771原子半径
60 pm詳細
Oxygen is a reactive nonmetal and chalcogen that occurs mainly as the diatomic gas O₂ and, less commonly, as ozone O₃. It is essential to aerobic respiration and is a major constituent of water, silicate minerals, carbonates, and many biological molecules. Its high electronegativity and ability to form strong bonds make oxidation chemistry central to combustion, corrosion, metabolism, and industrial processing.
The gas is colorless, odorless, and tasteless. The liquid and solid forms are a pale blue color and are strongly paramagnetic.
The name derives from the Greek oxys for "acid" and genes for "forming" because the French chemist Antoine-Laurent Lavoisier once thought that oxygen was integral to all acids.
Oxygen was discovered independently by the Swedish pharmacist and chemist Carl-Wilhelm Scheele in 1771, and the English clergyman and chemist Joseph Priestley in 1774. Scheele's Chemical Treatise on Air and Fire was delayed in publication until 1777, so Priestley is credited with the discovery because he published first.
Oxygen had been produced by several chemists prior to its discovery in 1774, but they failed to recognize it as a distinct element. Joseph Priestley and Carl Wilhelm Scheele both independently discovered oxygen, but Priestly is usually given credit for the discovery. They were both able to produce oxygen by heating mercuric oxide (HgO). Priestley called the gas produced in his experiments 'dephlogisticated air' and Scheele called his 'fire air'. The name oxygen was created by Antoine Lavoisier who incorrectly believed that oxygen was necessary to form all acids. Oxygen is the third most abundant element in the universe and makes up nearly 21% of the earth's atmosphere. Oxygen accounts for nearly half of the mass of the earth's crust, two thirds of the mass of the human body and nine tenths of the mass of water. Large amounts of oxygen can be extracted from liquefied air through a process known as fractional distillation. Oxygen can also be produced through the electrolysis of water or by heating potassium chlorate (KClO3).
From the Greek word oxys, acid, and genes, forming. The behavior of oxygen and nitrogen as components of air led to the advancement of the phlogiston theory of combustion, which captured the minds of chemists for a century.
Joseph Priestley is generally credited with its discovery, although Scheele also discovered it independently.
Its atomic weight was used as a standard of comparison for each of the other elements until 1961 when the International Union of Pure and Applied Chemistry adopted carbon 12 as the new basis.
At ordinary temperature and pressure, pure O₂ is a colorless, odorless gas. Liquid oxygen is pale blue and strongly paramagnetic. Solid oxygen is also blue at low temperature and has several pressure- and temperature-dependent phases.
Elemental O₂ is used in steelmaking, nonferrous metal refining, welding and cutting, chemical oxidation, wastewater treatment, pulp bleaching, and medical and emergency breathing systems. Liquid oxygen is a major oxidizer in rocketry. Enriched oxygen improves combustion efficiency in some furnaces. Ozone O₃ is used as a strong oxidant for water treatment, odor control, and selected chemical processes, but it must be generated near the point of use because it decomposes readily.
Oxygen is a highly reactive element and is capable of combining with most other elements. It is required by most living organisms and for most forms of combustion. Impurities in molten pig iron are burned away with streams of high pressure oxygen to produce steel. Oxygen can also be combined with acetylene (C2H2) to produce an extremely hot flame used for welding. Liquid oxygen, when combined with liquid hydrogen, makes an excellent rocket fuel. Ozone (O3) forms a thin, protective layer around the earth that shields the surface from the sun's ultraviolet radiation. Oxygen is also a component of hundreds of thousands of organic compounds.
Plants and animals rely on oxygen for respiration. Hospitals frequently prescribe oxygen for patients with respiratory ailments.
Isotopes in Earth/Planetary Science
Molecules, atoms, and ions of the stable isotopes of oxygen possess slightly different physical and chemical properties, and 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 oxygen in natural terrestrial materials (Fig. IUPAC.8.1). These variations are useful in investigating the origin of substances and studying environmental, hydrological, and geological processes [13] M. W. Wieser, T. B. Coplen. Pure Appl Chem.83, 359 (2011)..
A primary use of stable oxygen isotopes is in isotope hydrology. Although the evolution of the stable hydrogen and oxygen isotopic composition of precipitation begins with the evaporation of water from the oceans, their local and global relationship arises primarily from equilibrium isotopic fractionation of heavier (2H and 18O) and lighter isotopes (1H and 16O) of hydrogen and oxygen during condensation as a tropospheric vapor mass follows a trajectory to higher latitudes and over continents [14] W. Dansgaard. Tellus16, 436 (1964)., [15] I. D. Clark, P. Fritz. Environmental Isotopes in Hydrogeology, p. 328, Lewis Publishers, New York (1997).. As a consequence, the isotopic composition and atomic weight of oxygen in precipitation, rivers, and tap waters varies with elevation, season, and distance from the ocean-continent boundary. Figure 4.8.2 shows the variation in stable oxygen isotopic composition of water from rivers across the United States. These variations in oxygen isotopic composition of environmental water are often combined with hydrogen isotopic compositions and have been used to identify the origin of water and to investigate the interaction between groundwater and surface water (e.g. lakes, streams, and rivers) [16] C. Kendall, T. B. Coplen. Hydrol. Processes.15, 1363 (2011)..
Isotopes in Forensic Science and Anthropology
Measurements of relative 18O abundances have been used to determine the breeding grounds of many species of migrant songbirds. These species of songbirds only grow their feathers before migration, and they grow them on or close to their breeding grounds. Therefore, the isotopic composition of a bird’s feathers correlates to the isotopic signature of the growing season’s precipitation [19] K. A. Hobson. Oecologia120, 314 (1999)., [20] K. A. Hobson, L. I. Wassenaar. Oecologia.109, 142 (1996)..
Measurements of relative 18O abundances of human hair or nail samples collected at archeological sites have been used to determine the geographic region in which a subject lived based on the oxygen isotopic composition of the water they drank (Fig. IUPAC.8.3). This is possible because hair stores a daily record of oxygen isotopic composition of intake water, which correlates to local meteoric water [92] D. M. O’Brien, M. J. Woller. Rapid Commun. Mass Spectrom.21, 2422 (2007)..
Isotopes in Medicine
16O is used to produce radioactive 13N via the 16O (p, 4He) 13N reaction for imaging in positron emission tomography (PET) and to study blood flow through the heart (myocardial perfusion) [94] International Atomic Energy Agency. Cyclotron Produced Radionuclides: Physical Characteristics and Production Methods, Technical Reports Series No. 468. International Atomic Energy Agency Vienna (2009)., [95] M. Sajjad, R. M. Lambrecht, A. P. Wolf. Radiochim. Acta39, 165 (1986)..
17O has been used as a tracer to study cerebral oxygen utilization [96] T. Arai, S. Nakao, K. Mori, K. Ishimori, I. Morishima, T. Miyazawa, B. Fritz-Zieroth. Rapid Commun. Mass Spectrom.169, 153 (1990).. Variations in stable oxygen and hydrogen isotopes are used in energy expenditure studies in animals and humans. The subject is administered a dose of doubly labeled water (water enriched in both 2H and 18O). Measurements of the elimination rates of 2H and 18O in the subject over time through regular sampling of body water (by sampling saliva, urine, or blood) provide information on energy expenditure because the hydrogen isotopic composition of body water is affected primarily by water loss (mainly urination), but the oxygen isotopic composition is affected by both respiration and water loss [97] J. R. Speakman. Theory and Practice, Doubly Labelled Water. Springer Scientific, London (1997)..
Oxygen commonly has oxidation state −2 in oxides and silicates, −1 in peroxides such as hydrogen peroxide H₂O₂, and −1/2 in superoxides such as potassium superoxide KO₂. In water H₂O it forms extensive hydrogen-bonded networks. Oxygen also forms carbon dioxide CO₂, sulfur dioxide SO₂, nitrates, phosphates, carbonates, and many organic functional groups. Positive oxidation states occur only with more electronegative fluorine, as in oxygen difluoride OF₂.
Ozone (O3), a highly active compound, is formed by the action of an electrical discharge or ultraviolet light on oxygen.
Ozone's presence in the atmosphere (amounting to the equivalent of a layer 3 mm thick under ordinary pressures and temperatures) helps prevent harmful ultraviolet rays of the sun from reaching the earth's surface. Pollutants in the atmosphere may have a detrimental effect on this ozone layer. Ozone is toxic and exposure should not exceed 0.2 mg/m# (8-hour time-weighted average - 40-hour work week). Undiluted ozone has a bluish color. Liquid ozone is bluish black and solid ozone is violet-black.
Oxygen, which is very reactive, is a component of hundreds of thousands of organic compounds and combines with most elements.
See more information at the Oxygen compound page.
O₂ is not flammable, but oxygen enrichment greatly increases the speed and severity of fires and can cause materials that normally burn slowly to ignite violently. Liquid oxygen can cause severe cold burns and can make porous materials dangerously oxygen-rich. Ozone O₃ is toxic by inhalation and irritates the respiratory tract. High partial pressures of oxygen can be harmful, especially in diving, hyperbaric, and intensive-care settings.
Oxygen cycles through photosynthesis, respiration, weathering, combustion, and exchange between the atmosphere and oceans. Most atmospheric O₂ is maintained by oxygenic photosynthesis, while much of Earth’s oxygen inventory is locked in rocks as oxides, silicates, and carbonates. Dissolved oxygen controls the habitability of waters for many organisms and is depleted by decay of organic matter and some pollution events.
Industrial oxygen is produced mainly by cryogenic fractional distillation of air where large volumes and high purity are required. Pressure-swing adsorption and membrane systems supply smaller or on-site needs at lower purities. Demand is tied to steel, chemicals, refining, healthcare, water treatment, and aerospace. Because air is the feedstock, cost is dominated by energy, plant scale, purity, transport, and storage rather than geological scarcity. Oxygen itself is not recycled as a commodity, although efficient process design reduces consumption.
Oxygen is the third most abundant element found in the sun, and it plays a part in the carbon-nitrogen cycle, the process once thought to give the sun and stars their energy. Oxygen under excited conditions is responsible for the bright red and yellow-green colors of the Aurora Borealis.
A gaseous element, oxygen forms 21% of the atmosphere by volume and is obtained by liquefaction and fractional distillation. The atmosphere of Mars contains about 0.15% oxygen. The element and its compounds make up 49.2%, by weight, of the earth's crust. About two thirds of the human body and nine tenths of water is oxygen.
In the laboratory it can be prepared by the electrolysis of water or by heating potassium chlorate with manganese dioxide as a catalyst.
Oxygen is one of the most abundant elements in the universe and is made chiefly by helium and carbon burning in massive stars, then dispersed by stellar winds and supernovae. It is common in planets, dust, ices, and rocky minerals. In the Solar System it is a major component of water ice, silicate rock, carbon dioxide ice or gas, and many metal oxides.
- Liquid oxygen is attracted to a magnet strongly enough to be visibly held between magnet poles.
- Ozone in the stratosphere absorbs much biologically damaging ultraviolet radiation.
- Most oxygen atoms on Earth are in minerals, not in the atmosphere.
- The name oxygen originally reflected the mistaken idea that it was required to make all acids.
- Singlet oxygen is an electronically excited form important in photochemistry and some biological damage.
- Hemoglobin binds O₂ reversibly through iron centers rather than by oxidizing iron completely.
画像
性質
物理的性質
- 原子半径(経験値)
- 60 pm 全元素の原子半径(経験値)を比較 →
- 共有結合半径
- 66 pm 全元素の共有結合半径を比較 →
- ファンデルワールス半径
- 152 pm 全元素のファンデルワールス半径を比較 →
- 密度
- 1.429 kg/m³ 全元素の密度を比較 →
- モル体積
- 0.014 L/mol
- 標準温度・圧力(STP)での相
- 気体 全元素の標準温度・圧力(STP)での相を比較 →
- 融点
- -218.79 °C 全元素の融点を比較 →
- 沸点
- -182.95 °C 全元素の沸点を比較 →
- 熱伝導率
- 0.027 W/(m·K) 全元素の熱伝導率を比較 →
- 比熱容量
- 0.918 J/(g·K) 全元素の比熱容量を比較 →
- モル熱容量
- 29.378 J/(mol·K) 全元素のモル熱容量を比較 →
- 結晶構造
- 立方構造 全元素の結晶構造を比較 →
化学的性質
- 電気陰性度(Pauling)
- 3.44 全元素の電気陰性度(Pauling)を比較 →
- 電気陰性度(Allen)
- 3.61
- 電子親和力
- 1.4611 eV
- 第1イオン化エネルギー
- 13.618055 eV 全元素の第1イオン化エネルギーを比較 →
- 第2イオン化エネルギー
- 35.121241 eV 全元素の第2イオン化エネルギーを比較 →
- 第3イオン化エネルギー
- 54.935729 eV 全元素の第3イオン化エネルギーを比較 →
- 第4イオン化エネルギー
- 77.413766 eV 全元素の第4イオン化エネルギーを比較 →
- 第5イオン化エネルギー
- 113.899392 eV 全元素の第5イオン化エネルギーを比較 →
- 酸化数
- −2, −1, 0, +1, +2 全元素の酸化数を比較 →
- 価電子
- 6 全元素の価電子を比較 →
- 電子配置
- [He] 2s2 2p4
熱力学的性質
- 三重点(温度)
- -218.7916 °C
- 三重点(圧力)
- 146.3 Pa
- 臨界点(温度)
- -118.569 °C
- 臨界点(圧力)
- 5.043e+6 Pa
- 融解熱
- 0.00460175 eV 全元素の融解熱を比較 →
- 蒸発熱
- 0.07068456 eV 全元素の蒸発熱を比較 →
- 原子化熱
- 2.582474 eV
- 原子化エンタルピー
- 2.583085 eV
原子核
- 陽子数
- 8 全元素の陽子数を比較 →
- 中性子数
- 8 全元素の中性子数を比較 →
- 既知の同位体
- 18 全元素の既知の同位体を比較 →
- 安定同位体
- 3 全元素の安定同位体を比較 →
- 最も安定な同位体
- O-16
- 発見年
- 1771
存在度
- 存在度(地殻)
- 4.61e+5 mg/kg 全元素の存在度(地殻)を比較 →
- 存在度(海洋)
- 8.57 × 105 mg/L 全元素の存在度(海洋)を比較 →
結晶構造
- 格子定数a
- 683 pm
電子構造
- 各電子殻の電子数
- 2, 6 全元素の各電子殻の電子数を比較 →
識別子
- CAS登録番号
- 7782-44-7 全元素のCAS登録番号を比較 →
- 項記号
- 3P2
- InChI
- InChI=1S/O
- InChI Key
- QVGXLLKOCUKJST-UHFFFAOYSA-N
電子配置 測定値
O: 2s² 2p⁴[He] 2s² 2p⁴1s² 2s² 2p⁴原子モデル
同位体によって中性子数、質量、安定性は変わりますが、中性原子の電子配置は変わりません。
模式的な原子モデルです。実際の縮尺とは異なります。
原子の指紋
発光/吸収スペクトル
同位体分布
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 |
|---|---|---|---|
| 16 安定 | 15.99491461957 ± 0.00000000017 | 99.7570% | 安定 |
| 17 安定 | 16.9991317565 ± 0.00000000069 | 0.0380% | 安定 |
| 18 安定 | 17.99915961286 ± 0.00000000076 | 0.2050% | 安定 |
相/状態
理由: 沸点(-182.95 °C)より207.9 °C高い
模式図、実際の縮尺とは異なります
相転移点
相転移エネルギー
融点で1 molを融解させるのに必要なエネルギー
沸点で1 molを蒸発させるのに必要なエネルギー
密度
標準条件下
現在の温度Tにおいて理想気体の状態方程式で推定
詳細
原子スペクトル
スペクトル線データの収録状況 ?
| イオン | 電荷 | スペクトル線の総数 | 遷移確率 | 準位の表記 |
|---|---|---|---|---|
| O I | 0 | 910 | 854 | 907 |
| O II | +1 | 1630 | 876 | 1630 |
| O III | +2 | 1005 | 974 | 974 |
| O IV | +3 | 1525 | 1521 | 1523 |
| O V | +4 | 391 | 385 | 385 |
| O VI | +5 | 157 | 126 | 157 |
| O VII | +6 | 189 | 188 | 189 |
| O VIII | +7 | 137 | 137 | 137 |
準位データの収録状況 ?
| イオン | 電荷 | 準位 |
|---|---|---|
| O I | 0 | 614 |
| O II | +1 | 287 |
| O III | +2 | 188 |
| O IV | +3 | 219 |
| O V | +4 | 172 |
| O VI | +5 | 148 |
| O VII | +6 | 149 |
| O VIII | +7 | 149 |
イオン半径
| 電荷 | 配位 | スピン | 半径 |
|---|---|---|---|
| -2 | 2 | データなし | 135 pm |
| -2 | 3 | データなし | 136 pm |
| -2 | 4 | データなし | 138 pm |
| -2 | 6 | データなし | 140 pm |
| -2 | 8 | データなし | 142 pm |
化合物
同位体 (3)
Oxygen has nine isotopes. Natural oxygen is a mixture of three isotopes.
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 | 崩壊形式 | |
|---|---|---|---|---|---|
| 16 安定 | 15.99491461957 ± 0.00000000017 | 99.7570% ± 0.0160% | 安定 | stable | |
| 17 安定 | 16.9991317565 ± 0.00000000069 | 0.0380% ± 0.0010% | 安定 | stable | |
| 18 安定 | 17.99915961286 ± 0.00000000076 | 0.2050% ± 0.0140% | 安定 | stable |
スペクトル線
全1013件中50件を表示しています。 初期設定では、強度の測定値があるスペクトル線のみを表示します。
| 波長(nm) | 強度 | 電離段階 | 種類 | 遷移 | 精度 | 出典 | |
|---|---|---|---|---|---|---|---|
| 615.8187 nm | 490 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D* | 測定値 | NIST | |
| 615.6778 nm | 450 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D* | 測定値 | NIST | |
| 700.223 nm | 450 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).4d 3D* | 測定値 | NIST | |
| 725.4448 nm | 450 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S* | 測定値 | NIST | |
| 615.5971 nm | 400 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).4d 5D* | 測定値 | NIST | |
| 645.5977 nm | 400 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S* | 測定値 | NIST | |
| 725.4154 nm | 400 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S* | 測定値 | NIST | |
| 645.4444 nm | 360 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S* | 測定値 | NIST | |
| 700.1922 nm | 360 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).4d 3D* | 測定値 | NIST | |
| 645.3602 nm | 320 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5s 5S* | 測定値 | NIST | |
| 725.4531 nm | 320 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).5s 3S* | 測定値 | NIST | |
| 715.6701 nm | 210 | O I | emission | 2s2.2p3.(2D*).3s 1D* → 2s2.2p3.(2D*).3p 1D | 測定値 | NIST | |
| 396.1573 nm | 200 | O III | emission | 2s2.2p.(2P*).3p 1D → 2s2.2p.(2P*).3d 1F* | 測定値 | NIST | |
| 533.0741 nm | 190 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5d 5D* | 測定値 | NIST | |
| 604.6438 nm | 190 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S* | 測定値 | NIST | |
| 394.72949 nm | 185 | O I | emission | 2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5P | 測定値 | NIST | |
| 394.74813 nm | 160 | O I | emission | 2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5P | 測定値 | NIST | |
| 532.9681 nm | 160 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).5d 5D* | 測定値 | NIST | |
| 604.6233 nm | 160 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S* | 測定値 | NIST | |
| 394.75862 nm | 140 | O I | emission | 2s2.2p3.(4S*).3s 5S* → 2s2.2p3.(4S*).4p 5P | 測定値 | NIST | |
| 543.6862 nm | 135 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S* | 測定値 | NIST | |
| 559.789 nm | 130 | O V | emission | 1s2.2s.3p 3P* → 1s2.2s.3d 3D | 測定値 | NIST | |
| 650.024 nm | 130 | O V | emission | 1s2.2p.(2P*<3/2>).3p 3D → 1s2.2p.(2P*<3/2>).3d 3F* | 測定値 | NIST | |
| 382.34136 nm | 120 | O I | emission | 2s2.2p3.(2D*).3s 3D* → 2s2.2p3.(2P*).3p 3D | 測定値 | NIST | |
| 557.7339 nm | 120 | O I | emission | 2s2.2p4 1D → 2s2.2p4 1S | 測定値 | NIST | |
| 543.5775 nm | 110 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S* | 測定値 | NIST | |
| 559.2252 nm | 110 | O III | emission | 2s2.2p.(2P*).3s 1P* → 2s2.2p.(2P*).3p 1P | 測定値 | NIST | |
| 604.6495 nm | 110 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(4S*).6s 3S* | 測定値 | NIST | |
| 395.46067 nm | 100 | O I | emission | 2s2.2p3.(4S*).3p 3P → 2s2.2p3.(2P*).3s 3P* | 測定値 | NIST | |
| 412.396 nm | 100 | O V | emission | 1s2.2p.(2P*<3/2>).3s 3P* → 1s2.2p.(2P*<3/2>).3p 3D | 測定値 | NIST | |
| 436.8258 nm | 100 | O I | emission | 2s2.2p3.(4S*).3s 3S* → 2s2.2p3.(4S*).4p 3P | 測定値 | NIST | |
| 543.5178 nm | 90 | O I | emission | 2s2.2p3.(4S*).3p 5P → 2s2.2p3.(4S*).6s 5S* | 測定値 | NIST | |
| 423.3274 nm | 80 | O I | emission | 2s2.2p3.(4S*).4p 3P → 2s2.2p3.(2D*<3/2>).3d 3P* | 測定値 | NIST | |
| 441.4899 nm | 27 | O II | emission | 2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2D* | 測定値 | NIST | |
| 672.1388 nm | 26 | O II | emission | 2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2S* | 測定値 | NIST | |
| 441.6975 nm | 25 | O II | emission | 2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2D* | 測定値 | NIST | |
| 397.3256 nm | 24 | O II | emission | 2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2P* | 測定値 | NIST | |
| 407.58617 nm | 24 | O II | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4F | 測定値 | NIST | |
| 464.91347 nm | 24 | O II | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D* | 測定値 | NIST | |
| 664.1031 nm | 24 | O II | emission | 2s2.2p2.(3P).3s 2P → 2s2.2p2.(3P).3p 2S* | 測定値 | NIST | |
| 407.21525 nm | 23 | O II | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4F | 測定値 | NIST | |
| 434.9426 nm | 23 | O II | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4P* | 測定値 | NIST | |
| 411.92165 nm | 22 | O II | emission | 2s2.2p2.(3P).3p 4P* → 2s2.2p2.(3P).3d 4D | 測定値 | NIST | |
| 459.0974 nm | 22 | O II | emission | 2s2.2p2.(1D).3s 2D → 2s2.2p2.(1D).3p 2F* | 測定値 | NIST | |
| 464.18103 nm | 22 | O II | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D* | 測定値 | NIST | |
| 689.5102 nm | 22 | O II | emission | 2s2.2p2.(3P).3d 4F → 2s2.2p2.(3P).4p 4D* | 測定値 | NIST | |
| 406.98819 nm | 21 | O II | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).3d 4F | 測定値 | NIST | |
| 435.126 nm | 21 | O II | emission | 2s2.2p2.(1D).3s 2D → 2s2.2p2.(1D).3p 2D* | 測定値 | NIST | |
| 466.16324 nm | 21 | O II | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4D* | 測定値 | NIST | |
| 470.5346 nm | 21 | O II | emission | 2s2.2p2.(3P).3p 2D* → 2s2.2p2.(3P).3d 2F | 測定値 | NIST |
詳細な性質
共有結合半径(詳細)
- 共有結合半径(Pyykkö)
- 63 pm
- 共有結合半径(Pyykkö、二重結合)
- 57 pm
- 共有結合半径(Pyykkö、三重結合)
- 53 pm
- 共有結合半径(Bragg)
- 65 pm
ファンデルワールス半径
- Bondi
- 152 pm
- Batsanov
- 155 pm
- Alvarez
- 150 pm
- UFF
- 350 pm
- MM3
- 182 pm
- Dreiding
- 340.46 pm
- Rowland–Taylor
- 158 pm
原子半径と金属半径
- 原子半径(Rahm)
- 171 pm
番号付けの尺度
- Mendeleev
- 99
- Pettifor
- 101
- Glawe
- 97
電気陰性度の尺度
- Ghosh
- 0
- Gunnarsson–Lundqvist
- 8
- Robles–Bartolotti
- 6
分極率と分散
- 双極子分極率
- 5.3 a.u.
- 双極子分極率(不確かさ)
- 0.2 a.u.
- C₆
- 15.6 Ha·Bohr6
- C₆ (Gould–Bučko)
- 16.7 Ha·Bohr6
化学親和力
- プロトン親和力
- 485.2 kJ/mol
- 気相塩基性
- 459.6 kJ/mol
相転移と同素体
| 融点 | 54.36 K |
| 沸点 | 90.19 K |
| 臨界点(温度) | 154.58 K |
| 臨界点(圧力) | 5.04 MPa |
| 三重点(温度) | 54.36 K |
| 三重点(圧力) | 0.15 kPa |
酸化数の分類
専門参考データ
遮蔽定数 (3)
| n | 軌道 | σ |
|---|---|---|
| 1 | s | 0.3421 |
| 2 | p | 3.5468 |
| 2 | s | 3.5084 |
結晶半径の詳細 (5)
| 電荷 | CN | スピン | rcrystal (pm) | 由来 |
|---|---|---|---|---|
| -2 | II | 121 | ||
| -2 | III | 122 | ||
| -2 | IV | 124 | ||
| -2 | VI | 126 | ||
| -2 | VIII | 128 |
同位体の崩壊形式 (22)
| 同位体 | モード | 強度 |
|---|---|---|
| 11 | 2p | 100% |
| 12 | 2p | 100% |
| 13 | B+ | 100% |
| 13 | B+p | 10.9% |
| 14 | B+ | 100% |
| 15 | B+ | 100% |
| 19 | B- | 100% |
| 20 | B- | 100% |
| 21 | B- | 100% |
| 21 | B-n | — |
X線散乱因子 (502)
| エネルギー (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 0.70328 |
| 10.1617 | — | 0.70723 |
| 10.3261 | — | 0.70738 |
| 10.4931 | — | 0.70753 |
| 10.6628 | — | 0.70768 |
| 10.8353 | — | 0.70783 |
| 11.0106 | — | 0.70798 |
| 11.1886 | — | 0.70813 |
| 11.3696 | — | 0.70828 |
| 11.5535 | — | 0.70843 |
追加データ
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
4.61×105 milligrams per kilogram
参考文献 (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
8.57×105 milligrams per liter
参考文献 (1)
Sources
Sources of this element.
Oxygen is the third most abundant element found in the sun, and it plays a part in the carbon-nitrogen cycle, the process once thought to give the sun and stars their energy. Oxygen under excited conditions is responsible for the bright red and yellow-green colors of the Aurora Borealis.
A gaseous element, oxygen forms 21% of the atmosphere by volume and is obtained by liquefaction and fractional distillation. The atmosphere of Mars contains about 0.15% oxygen. The element and its compounds make up 49.2%, by weight, of the earth's crust. About two thirds of the human body and nine tenths of water is oxygen.
In the laboratory it can be prepared by the electrolysis of water or by heating potassium chlorate with manganese dioxide as a catalyst.
参考文献 (1)
- [6] Oxygen https://periodic.lanl.gov/8.shtml
Isotopes in Forensic Science and Anthropology
Information on the use of this element's isotopes in forensic science and anthropology.
Measurements of relative 18O abundances have been used to determine the breeding grounds of many species of migrant songbirds. These species of songbirds only grow their feathers before migration, and they grow them on or close to their breeding grounds. Therefore, the isotopic composition of a bird’s feathers correlates to the isotopic signature of the growing season’s precipitation [19] K. A. Hobson. Oecologia120, 314 (1999)., [20] K. A. Hobson, L. I. Wassenaar. Oecologia.109, 142 (1996)..
Measurements of relative 18O abundances of human hair or nail samples collected at archeological sites have been used to determine the geographic region in which a subject lived based on the oxygen isotopic composition of the water they drank (Fig. IUPAC.8.3). This is possible because hair stores a daily record of oxygen isotopic composition of intake water, which correlates to local meteoric water [92] D. M. O’Brien, M. J. Woller. Rapid Commun. Mass Spectrom.21, 2422 (2007)..
参考文献 (7)
- [14] W. Dansgaard. Tellus16, 436 (1964).
- [15] I. D. Clark, P. Fritz. Environmental Isotopes in Hydrogeology, p. 328, Lewis Publishers, New York (1997).
- [19] K. A. Hobson. Oecologia120, 314 (1999).
- [20] K. A. Hobson, L. I. Wassenaar. Oecologia.109, 142 (1996).
- [92] D. M. O’Brien, M. J. Woller. Rapid Commun. Mass Spectrom.21, 2422 (2007).
- [93] I. Fraser, W. Meier-Augenstein, R. M. Kalin. Rapid Commun. Mass Spectrom.20, 1109 (2006).
- [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703
参考文献
(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 Oxygen.
The element property data was retrieved from publications.

