Nitrogen (N)
nonmetalGas
標準原子量
14.007 u [14.00643, 14.00728]電子配置
2s2.2p3融点
-210 °C沸点
-195.79 °C密度
1.2506 kg/m³酸化数
−3, −2, −1, 0, +1, +2, +3, +4, +5電気陰性度(Pauling)
3.04第1イオン化エネルギー
14.53413 eV発見年
1772原子半径
65 pm詳細
Nitrogen is a light nonmetal and the main constituent of Earth’s atmosphere as N₂. Its strong N≡N triple bond makes the element relatively inert at ordinary conditions, yet nitrogen chemistry is exceptionally rich once that bond is broken. It is essential in amino acids, nucleic acids, and many cofactors, and industrial fixation of N₂ underpins modern fertilizer production. Nitrogen commonly forms covalent compounds and spans oxidation states from −3 to +5.
Colourless, gaseous element which belongs to group 15 of the periodic table. Constitutes ~78% of the atmosphere and is an essential part of the ecosystem. Nitrogen for industrial purposes is acquired by the fractional distillation of liquid air. Chemically inactive, reactive generally only at high temperatures or in electrical discharges. It was discovered in 1772 by D. Rutherford.
The name derives from the Latin nitrum and Greek nitron for "native soda" and genes for "forming". Nitrogen was discovered by the Scottish physician and chemist Daniel Rutherford in 1772.
Nitrogen was discovered by the Scottish physician Daniel Rutherford in 1772. It is the fifth most abundant element in the universe and makes up about 78% of the earth's atmosphere, which contains an estimated 4,000 trillion tons of the gas. Nitrogen is obtained from liquefied air through a process known as fractional distillation.
From the Latin word nitrum, Greek Nitron, native soda; and genes, forming. Nitrogen was discovered by chemist and physician Daniel Rutherford in 1772. He removed oxygen and carbon dioxide from air and showed that the residual gas would not support combustion or living organisms. At the same time there were other noted scientists working on the problem of nitrogen. These included Scheele, Cavendish, Priestley, and others. They called it "burnt" or" dephlogisticated air," which meant air without oxygen.
Pure nitrogen is normally encountered as N₂, a colorless, odorless, tasteless gas. Liquid nitrogen is a colorless, very cold fluid that boils at 77 K at one atmosphere. Solid nitrogen is also colorless and exists in several low-temperature phases.
Most industrial nitrogen is used either as N₂ for inerting and blanketing or as fixed nitrogen after conversion to ammonia (NH₃). Gaseous N₂ protects reactive materials, purges pipelines and tanks, and provides controlled atmospheres for food packaging, electronics processing, and metal heat treatment. Liquid nitrogen is widely used as a cryogenic refrigerant for biological storage, laboratory cooling, and rapid freezing. Nitrogen is also a feedstock for nitric acid (HNO₃), fertilizers, explosives, and many polymers and pharmaceuticals.
The largest use of nitrogen is for the production of ammonia (NH3). Large amounts of nitrogen are combined with hydrogen to produce ammonia in a method known as the Haber process. Large amounts of ammonia are then used to create fertilizers, explosives and, through a process known as the Ostwald process, nitric acid (HNO3).
Nitrogen gas is largely inert and is used as a protective shield in the semiconductor industry and during certain types of welding and soldering operations. Oil companies use high pressure nitrogen to help force crude oil to the surface. Liquid nitrogen is an inexpensive cryogenic liquid used for refrigeration, preservation of biological samples and for low temperature scientific experimentation. Jefferson Lab's Frostbite Theater features videos of many basic liquid nitrogen experiments.
Isotopes in Biology
Isotopic fractionation can cause the isotope-amount ratio n(15N)/n(14N) to increase systematically through food chains through assimilation of nitrogen compounds in biomolecules such as proteins. When lower-order organisms are ingested by higher-order organisms, 15N may be selectively retained and 14N may be selectively excreted such that higher-order organisms tend to have higher n(15N)/n(14N) ratios than their food sources. Isotopic fractionation occurs as a result of assimilation, storage, and excretion of proteins and other nitrogen compounds. Biologists can use isotope-amount ratio n(15N)/n(14N) measurements to test hypotheses about predator-prey relations and detect disruptions to trophic structure of ecosystems that might be caused by toxic contaminants, invasive species, or harvesting of organisms. Similar principles are used to detect differences in diets among animals, including humans, both today and in the distant past [79] P. L. Koch, M. L. Fogel, N. Tuross. “Tracing the diets of fossil animals using stable isotopes”, in Stable Isotopes in Ecology and Environmental Science, K. Lajtha and R. H. Michener (Eds.), Blackwell Scientific Publications, Boston (1994)., [80] J. P. Montoya. “Nitrogen isotope fractionation in the modern ocean: implications for the sedimentary record”, in Carbon Cycling in the Glacial Ocean: Constraints on the Ocean’s Role in Global Change. NATO ASI Series (Series I: Global Environmental Change), R. Zahn, T. F. Pedersen, M. A. Kaminski, L. Labeyrie (Eds.), vol. 17. Springer, Berlin, Heidelberg (1994)., [81] R. E. M. Hedges, L. M. Reynard. J. Archaeolog. Sci.34, 1240 (2007)..
Artificially enriched 15N tracers are used to study movement and transformation of nitrogen in biological and environmental systems, such as the uptake and loss of nitrogen fertilizers by crops (Fig. IUPAC.7.1). A common experiment involves introducing an isotopically labeled compound into the environment and then analyzing various samples taken from the environment for the presence of the enriched isotope to determine where the labeled compound moved and whether it transformed into other compounds (Fig. IUPAC.7.2). Artificially enriched 15N is used to study uptake and dispersal of nitrogen in feed supplies used in food production industries such as aquaculture [82] M. A. Burford, N. P. Preston, P. M. Glibert, W. C. Dennison. Aquaculture206, 199 (2002)..
Isotopes in Earth/Planetary Science
The stable isotopes of nitrogen are subject to isotopic fractionation by physical, chemical, and biological processes. Variations in the isotope-amount ratio n(15N)/n(14N) are substantial (Fig. IUPAC.7.3) and commonly are used to study Earth-system processes, especially those related to biology because nitrogen is a major nutrient for growth [84] Stable Isotopes in Ecology and Environmental Science: 2nd Edition, ed. R. Michener and K. Lajtha, p. 566, Blackwell Publishing Ltd., Malden, MA (2007).. For example, isotope fractionation occurs when dissolved solutes, such as nitrate (NO3 -), are transformed to more reduced compounds (i.e. nitrogen gas) because nitrate with higher 14N abundances tends to be more readily broken down. This leaves the residual unreacted nitrate with a higher n(15N)/n(14N) ratio than the initial ratio prior to reaction. Changes in the isotopic composition of biologically reactive compounds can be used to detect such reactions in aquatic environments, which are important mechanisms for removing reactive contaminants like nitrate [85] J. Granger, D. M. Sigman, M. F. Lehmann, P. D. Tortell. Limnol. Oceanogr.53, 2533 (2008)., [86] A. Mariotti, A. Landreau, B. Simon. Limnol. Oceanogr.52, 1869 (1988)..
Variations in the isotope-amount ratio n(15N)/n(14N) are used to determine sources of nitrogen contamination in the atmosphere, oceans, groundwater, and rivers, where the isotopic composition of a contaminant molecule preserves evidence of the nitrogen sources and processes involved in its creation. An example is nitrate derived from artificial fertilizer, manure, power-plant emissions, or natural sources [87] T. H. E. Heaton. Chem. Geol.59, 87 (1986)., [88] C. Kendall, R. Aravena. “Nitrate isotopes in groundwater systems”, in Environmental Tracers in Subsurface Hydrology, P. G. Cook and A. L. Herczeg (Eds.), Kluwer Academic Publishers, Boston (2000)., [89] B. Mayer, E. W. Boyer, C. Goodale, N. A. Jaworski, N. Van Breemen, R. W. Howarth, S. P. Seitzinger, G. Billen, K. Lajtha, K. J. Nadelhoffer, D. Van Dam, L. J. Hetling, M. Nosal, K. Paustian. Biogeochemistry57 & 58, 171 (2002)..
Artificially enriched 15N tracers have been used to determine rates of movement and natural remediation of nitrogen-bearing contaminants in aquifers and rivers [83] J. K. Böhlke, R. C. Antweiler, J. W. Harvey, A. E. Laursen, L. K. Smith, R. L. Smith, M. A. Voytek. Biogeochemistry93, 117 (2009)., [90] R. L. Smith, J. K. Böhlke, S. P. Garabedian, K. M. Revesz, T. Yoshinari. Water Resour. Res.40, 1 (2004)..
Isotopes in Forensic Science and Anthropology
Stable hydrogen, carbon, and nitrogen isotopic compositions are used to determine the origin of pseudoephedrine from seized methyl-amphetamine made from the pseudoephedrine (drug used as a nasal decongestant or as a stimulant) [91] H. Salouros, G. J. Sutton, J. Howes, D. B. Hibbert, M. Collins. Anal. Chem.85, 9400 (2013)..
Nitrogen forms many important compounds because it can make single, double, and triple bonds and adopt several oxidation states. Ammonia (NH₃) contains nitrogen in the −3 state and is both a base and a major industrial intermediate. Nitric acid (HNO₃), nitrate salts containing NO₃⁻, and nitrite salts containing NO₂⁻ are central to fertilizer, oxidation, and environmental chemistry. Nitrogen oxides such as nitric oxide (NO), nitrogen dioxide (NO₂), and nitrous oxide (N₂O) are chemically and atmospherically significant. Organic amines, amides, nitriles, azo compounds, and heterocycles form a large part of biological and synthetic chemistry.
Sodium nitrate (NaNO3) and potassium nitrate (KNO3) are formed by the decomposition of organic matter with compounds of these metals present. In certain dry areas of the world these saltpeters are found in quantity and are used as fertilizers. Other inorganic nitrogen compounds are nitric acid (HNO3), ammonia (NH3), the oxides (NO, NO2, N2O4, N2O), cyanides (CN-), etc.
The nitrogen cycle is one of the most important processes in nature for living organisms. Although nitrogen gas is relatively inert, bacteria in the soil are capable of “fixing” the nitrogen into a usable form (as a fertilizer) for plants. In other words, Nature has provided a method to produce nitrogen for plants to grow. Animals eat the plant material where the nitrogen has been incorporated into their system, primarily as protein. The cycle is completed when other bacteria convert the waste nitrogen compounds back to nitrogen gas. Nitrogen is crucial to life, as it is a component of all proteins.
See more information at the Nitrogen compound page.
N₂ is not toxic, but it is a serious asphyxiant because it can displace oxygen without warning by odor or irritation. Liquid nitrogen can cause severe cold burns and can rapidly generate large volumes of gas in confined spaces. Some nitrogen compounds are hazardous for unrelated reasons: ammonia (NH₃) is corrosive and irritating, nitric acid (HNO₃) is strongly corrosive and oxidizing, and nitrogen dioxide (NO₂) is a toxic inhalation hazard. Nitrate and nitrite exposure is regulated in drinking water and food contexts.
Atmospheric N₂ is a large reservoir, but most organisms cannot use it directly. Fixed nitrogen enters ecosystems through biological nitrogen fixation, lightning, industrial processes, and deposition from combustion-related nitrogen oxides. Microbial nitrification, denitrification, and anammox reactions return nitrogen among ammonium, nitrate, nitrite, nitrous oxide, and N₂. Excess reactive nitrogen can drive eutrophication, soil acidification, and formation of air pollutants, while nitrous oxide (N₂O) is a long-lived greenhouse gas.
Nitrogen gas is produced chiefly by cryogenic distillation of air, with pressure-swing adsorption and membrane separation used where lower purity or smaller-scale supply is sufficient. The largest economic value lies not in elemental N₂ itself but in nitrogen fixation, especially the Haber-Bosch synthesis of ammonia (NH₃) from N₂ and hydrogen. Fertilizer demand dominates fixed-nitrogen markets, followed by chemicals such as nitric acid (HNO₃) and urea (CO(NH₂)₂). Supply depends strongly on energy cost and hydrogen source; recycling occurs indirectly through manure management, wastewater treatment, and recovery or reuse of nitrogen-containing process streams.
Nitrogen gas (N2) makes up 78.1% of the Earth’s air, by volume. The atmosphere of Mars, by comparison, is only 2.6% nitrogen. From an exhaustible source in our atmosphere, nitrogen gas can be obtained by liquefaction and fractional distillation. Nitrogen is found in all living systems as part of the makeup of biological compounds.
Nitrogen is a common light element made mainly through stellar nucleosynthesis in the carbon-nitrogen-oxygen cycle and later stellar processing. In the Solar System it is concentrated in volatile reservoirs, including planetary atmospheres, ices, and organic material. Titan’s dense atmosphere is mostly N₂, and nitrogen-bearing ices and organics occur in comets and outer Solar System bodies.
- The strength of the N₂ triple bond is why air is chemically stable despite abundant oxygen.
- Liquid nitrogen expands greatly on warming, making sealed containers dangerous.
- Most nitrogen atoms in human tissue have passed through microbial or industrial fixation.
- Nitrous oxide (N₂O) is chemically distinct from the toxic brown gas nitrogen dioxide (NO₂).
- Nitrogen can form catenated compounds, but N–N single bonds are usually much weaker than the N≡N bond in N₂.
画像
性質
物理的性質
- 原子半径(経験値)
- 65 pm 全元素の原子半径(経験値)を比較 →
- 共有結合半径
- 71 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
- 155 pm 全元素のファンデルワールス半径を比較 →
- 密度
- 1.2506 kg/m³ 全元素の密度を比較 →
- モル体積
- 0.0173 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
- -210 °C 全元素の融点を比較 →
- 沸点
- -195.79 °C 全元素の沸点を比較 →
- 熱伝導率
- 0.026 W/(m·K) 全元素の熱伝導率を比較 →
- 比熱容量
- 1.04 J/(g·K) 全元素の比熱容量を比較 →
- モル熱容量
- 29.124 J/(mol·K) 全元素のモル熱容量を比較 →
- 結晶構造
- 六方最密充填構造 全元素の結晶構造を比較 →
化学的性質
- 電気陰性度(Pauling)
- 3.04 全元素の電気陰性度(Pauling)を比較 →
- 電気陰性度(Allen)
- 3.066
- 電子親和力
- -0.07 eV (負の値—この原子は電子を取り込まないと予測される)
- 第1イオン化エネルギー
- 14.53413 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
- 29.601352 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
- 47.445463 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
- 77.473767 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
- 97.890437 eV 全元素の第5イオン化エネルギーを比較 →
- 酸化数
- −3, −2, −1, 0, +1, +2, +3, +4, +5 全元素の酸化数を比較 →
- 価電子
- 5 全元素の価電子を比較 →
- 電子配置
- 2s2.2p3
熱力学的性質
- 三重点(温度)
- -209.999 °C
- 三重点(圧力)
- 1.252e+4 Pa
- 臨界点(温度)
- -146.958 °C
- 臨界点(圧力)
- 3.3958e+6 Pa
- 融解熱
- 0.00373115 eV 全元素の融解熱を比較 →
- 蒸発熱
- 0.05762554 eV 全元素の蒸発熱を比較 →
- 原子化熱
- 4.899 eV
- 原子化エンタルピー
- 4.896512 eV
原子核
- 陽子数
- 7 全元素の陽子数を比較 →
- 中性子数
- 7 全元素の中性子数を比較 →
- 既知の同位体
- 16 全元素の既知の同位体を比較 →
- 安定同位体
- 2 全元素の安定同位体を比較 →
- 最も安定な同位体
- N-14
- 発見年
- 1772
存在度
- 存在度(地殻)
- 19 mg/kg 全元素の存在度(地殻)を比較 →
- 存在度(海洋)
- 0.5 mg/L 全元素の存在度(海洋)を比較 →
結晶構造
- 格子定数a
- 403.9 pm
電子構造
- 各電子殻の電子数
- 2, 5 全元素の各電子殻の電子数を比較 →
識別子
- CAS登録番号
- 7727-37-9 全元素のCAS登録番号を比較 →
- 項記号
- 4S°3/2
- InChI
- InChI=1S/N
- InChI Key
- QJGQUHMNIGDVPM-UHFFFAOYSA-N
電子配置 測定値
N: 2s² 2p³[He] 2s² 2p³1s² 2s² 2p³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 |
|---|---|---|---|
| 14 安定 | 14.00307400443 ± 0.0000000002 | 99.6360% | 安定 |
| 15 安定 | 15.00010889888 ± 0.00000000064 | 0.3640% | 安定 |
相/状態
理由: 沸点(-195.79 °C)より220.8 °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 |
|---|---|---|---|---|
| N I | 0 | 1309 | 1287 | 1287 |
| N II | +1 | 809 | 786 | 786 |
| N III | +2 | 1378 | 1359 | 1359 |
| N IV | +3 | 536 | 531 | 531 |
| N V | +4 | 442 | 402 | 433 |
| N VI | +5 | 91 | 90 | 91 |
| N VII | +6 | 137 | 137 | 137 |
準位データの収録状況 ?
| イオン | 電荷 | 準位 |
|---|---|---|
| N I | 0 | 381 |
| N II | +1 | 197 |
| N III | +2 | 347 |
| N IV | +3 | 292 |
| N V | +4 | 151 |
| N VI | +5 | 148 |
| N VII | +6 | 149 |
イオン半径
| 電荷 | 配位 | スピン | 半径 |
|---|---|---|---|
| -3 | 4 | データなし | 146 pm |
| +3 | 6 | データなし | 16 pm |
| +5 | 6 | データなし | 13 pm |
化合物
同位体 (2)
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 | 崩壊形式 | |
|---|---|---|---|---|---|
| 14 安定 | 14.00307400443 ± 0.0000000002 | 99.6360% ± 0.0200% | 安定 | stable | |
| 15 安定 | 15.00010889888 ± 0.00000000064 | 0.3640% ± 0.0200% | 安定 | stable |
スペクトル線
全731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 | |
|---|---|---|---|---|---|---|---|
| 399.4997 nm | 1000 | N II | emission | 2s2.2p.3s 1P* → 2s2.2p.3p 1D | 測定値 | NIST | |
| 746.8312 nm | 900 | N I | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4S* | 測定値 | NIST | |
| 463.0539 nm | 870 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 500.515 nm | 870 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3F* | 測定値 | NIST | |
| 567.956 nm | 870 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 744.2298 nm | 785 | N I | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4S* | 測定値 | NIST | |
| 648.205 nm | 750 | N II | emission | 2s2.2p.3s 1P* → 2s2.2p.3p 1P | 測定値 | NIST | |
| 661.056 nm | 750 | N II | emission | 2s2.2p.3p 1D → 2s2.2p.3d 1F* | 測定値 | NIST | |
| 575.2499 nm | 700 | N I | emission | 2s2.2p2.(3P).3p 4P* → 2s2.2p2.(3P).5d 4D | 測定値 | NIST | |
| 742.3641 nm | 685 | N I | emission | 2s2.2p2.(3P).3s 4P → 2s2.2p2.(3P).3p 4S* | 測定値 | NIST | |
| 444.703 nm | 650 | N II | emission | 2s2.2p.3p 1P → 2s2.2p.3d 1D* | 測定値 | NIST | |
| 500.1474 nm | 650 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3F* | 測定値 | NIST | |
| 566.663 nm | 650 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 594.165 nm | 650 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 460.1478 nm | 550 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 464.3086 nm | 550 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 500.7328 nm | 550 | N II | emission | 2s2.2p.3p 3S → 2s2.2p.3d 3P* | 測定値 | NIST | |
| 504.5099 nm | 550 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3S | 測定値 | NIST | |
| 567.602 nm | 550 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 593.178 nm | 550 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 395.5851 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 1D | 測定値 | NIST | |
| 460.7153 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 462.1393 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 480.3287 nm | 450 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 499.436 nm | 450 | N II | emission | 2s.2p2.(4P).3s 5P → 2s.2p2.(4P).3p 5P* | 測定値 | NIST | |
| 501.0621 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3S | 測定値 | NIST | |
| 549.5655 nm | 450 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3P* | 測定値 | NIST | |
| 568.621 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 571.077 nm | 450 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 391.9001 nm | 360 | N II | emission | 2s2.2p.3p 1P → 2s2.2p.3d 1P* | 測定値 | NIST | |
| 461.3868 nm | 360 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3P | 測定値 | NIST | |
| 500.2703 nm | 360 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 3S | 測定値 | NIST | |
| 501.6381 nm | 360 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3F* | 測定値 | NIST | |
| 502.5659 nm | 360 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3F* | 測定値 | NIST | |
| 592.781 nm | 360 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 637.962 nm | 360 | N II | emission | 2s2.2p.3s 3P* → 2s2.2p.3p 1P | 測定値 | NIST | |
| 648.2699 nm | 360 | N I | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).4d 4F | 測定値 | NIST | |
| 460.374 nm | 350 | N V | emission | 1s2.3s 2S → 1s2.3p 2P* | 測定値 | NIST | |
| 648.4808 nm | 325 | N I | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).4d 4F | 測定値 | NIST | |
| 648.3753 nm | 300 | N I | emission | 2s2.2p2.(3P).3p 4D* → 2s2.2p2.(3P).4d 4F | 測定値 | NIST | |
| 383.8374 nm | 285 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.4s 3P* | 測定値 | NIST | |
| 422.7736 nm | 285 | N II | emission | 2s2.2p.3p 1D → 2s2.2p.4s 1P* | 測定値 | NIST | |
| 478.8138 nm | 285 | N II | emission | 2s2.2p.3p 3D → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 489.5117 nm | 285 | N II | emission | 2s.2p3 1D* → 2s2.2p.3p 1P | 測定値 | NIST | |
| 498.7376 nm | 285 | N II | emission | 2s2.2p.3p 3S → 2s2.2p.3d 3P* | 測定値 | NIST | |
| 553.5347 nm | 285 | N II | emission | 2s.2p2.(4P).3s 5P → 2s.2p2.(4P).3p 5D* | 測定値 | NIST | |
| 574.73 nm | 285 | N II | emission | 2s2.2p.3s 1P* → 2s2.2p.3p 3D | 測定値 | NIST | |
| 594.024 nm | 285 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 595.239 nm | 285 | N II | emission | 2s2.2p.3p 3P → 2s2.2p.3d 3D* | 測定値 | NIST | |
| 616.775 nm | 285 | N II | emission | 2s2.2p.3d 3F* → 2s2.2p.4p 3D | 測定値 | NIST |
詳細な性質
共有結合半径(詳細)
- 共有結合半径(Pyykkö)
- 71 pm
- 共有結合半径(Pyykkö、二重結合)
- 60 pm
- 共有結合半径(Pyykkö、三重結合)
- 54 pm
- 共有結合半径(Bragg)
- 65 pm
ファンデルワールス半径
- Bondi
- 155 pm
- Batsanov
- 160 pm
- Alvarez
- 166 pm
- UFF
- 366 pm
- MM3
- 193 pm
- Dreiding
- 366.21 pm
- Rowland–Taylor
- 164 pm
原子半径と金属半径
- 原子半径(Rahm)
- 179 pm
- 金属半径(C12)
- 53 pm
番号付けの尺度
- Mendeleev
- 93
- Pettifor
- 100
- Glawe
- 88
電気陰性度の尺度
- Ghosh
- 0
- Miedema
- 7
- Gunnarsson–Lundqvist
- 7
- Robles–Bartolotti
- 6
分極率と分散
- 双極子分極率
- 7.4 a.u.
- 双極子分極率(不確かさ)
- 0.2 a.u.
- C₆
- 24.2 Ha·Bohr6
- C₆ (Gould–Bučko)
- 25.7 Ha·Bohr6
化学親和力
- プロトン親和力
- 342.2 kJ/mol
- 気相塩基性
- 318.7 kJ/mol
ミーデマパラメータ
- ミーデマモル体積
- 4.1 cm3/mol
- ミーデマ電子密度
- 4
相転移と同素体
| 融点 | 63.15 K |
| 沸点 | 77.35 K |
| 臨界点(温度) | 126.19 K |
| 臨界点(圧力) | 3.4 MPa |
| 三重点(温度) | 63.15 K |
| 三重点(圧力) | 12.52 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 | 0.3349 |
| 2 | p | 3.166 |
| 2 | s | 3.1526 |
結晶半径の詳細 (4)
| 電荷 | CN | スピン | rcrystal (pm) | 由来 |
|---|---|---|---|---|
| -3 | IV | 132 | ||
| 3 | VI | 30 | Ahrens (1952) ionic radius, | |
| 5 | III | 4.4 | ||
| 5 | VI | 27 | Ahrens (1952) ionic radius, |
同位体の崩壊形式 (33)
| 同位体 | モード | 強度 |
|---|---|---|
| 10 | p | — |
| 11 | p | 100% |
| 12 | B+ | 100% |
| 12 | B+A | 1.9% |
| 13 | B+ | 100% |
| 16 | B- | 100% |
| 16 | B-A | 0% |
| 17 | B- | 100% |
| 17 | B-n | 95.1% |
| 17 | B-A | 0% |
X線散乱因子 (503)
| エネルギー (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 0.67785 |
| 10.1617 | — | 0.68963 |
| 10.3261 | — | 0.70162 |
| 10.4931 | — | 0.71382 |
| 10.6628 | — | 0.72623 |
| 10.8353 | — | 0.73885 |
| 11.0106 | — | 0.7517 |
| 11.1886 | — | 0.76584 |
| 11.3696 | — | 0.78603 |
| 11.5535 | — | 0.80674 |
追加データ
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
1.9×101 milligrams per kilogram
参考文献 (1)
- [5] Nitrogen https://education.jlab.org/itselemental/ele007.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
5×10-1 milligrams per liter
参考文献 (1)
- [5] Nitrogen https://education.jlab.org/itselemental/ele007.html
Sources
Sources of this element.
Nitrogen gas (N2) makes up 78.1% of the Earth’s air, by volume. The atmosphere of Mars, by comparison, is only 2.6% nitrogen. From an exhaustible source in our atmosphere, nitrogen gas can be obtained by liquefaction and fractional distillation. Nitrogen is found in all living systems as part of the makeup of biological compounds.
参考文献 (1)
- [6] Nitrogen https://periodic.lanl.gov/7.shtml
Isotopes in Forensic Science and Anthropology
Information on the use of this element's isotopes in forensic science and anthropology.
Stable hydrogen, carbon, and nitrogen isotopic compositions are used to determine the origin of pseudoephedrine from seized methyl-amphetamine made from the pseudoephedrine (drug used as a nasal decongestant or as a stimulant) [91] H. Salouros, G. J. Sutton, J. Howes, D. B. Hibbert, M. Collins. Anal. Chem.85, 9400 (2013)..
参考文献 (2)
- [91] H. Salouros, G. J. Sutton, J. Howes, D. B. Hibbert, M. Collins. Anal. Chem.85, 9400 (2013).
- [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 Nitrogen.
The element property data was retrieved from publications.

