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Atomic ratio

measure of the ratio of atoms of one kind (i) to another kind (j)

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Record originEnglish Wikipedia
Text licenseCC BY-SA 4.0
Source revisionOct 11, 2025
Entity authorityQ4817343
Source-derived summary

The atomic ratio is a measure of the ratio of atoms of one kind (i) to another kind (j). A closely related concept is the atomic percent (or at.%), which gives the percentage of one kind of atom relative to the total number of atoms. The molecular equivalents of these concepts are the molar fraction, or molar percent.

Atoms

Mathematically, the atomic percent is

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{\displaystyle \mathrm {atomic\ percent} \ (\mathrm {i} )={\frac {N_{\mathrm {i} }}{N_{\mathrm {tot} }}}\times 100\ }

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where Ni are the number of atoms of interest and Ntot are the total number of atoms, while the atomic ratio is

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{\displaystyle \mathrm {atomic\ ratio} \ (\mathrm {i:j} )=\mathrm {atomic\ percent} \ (\mathrm {i} ):\mathrm {atomic\ percent} \ (\mathrm {j} )\ .}

For example, the atomic percent of hydrogen in water (H2O) is at.%H2O = 2/3 x 100 ≈ 66.67%, while the atomic ratio of hydrogen to oxygen is AH:O = 2:1.

Isotopes

Another application is in radiochemistry, where this may refer to isotopic ratios or isotopic abundances. Mathematically, the isotopic abundance is

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{\displaystyle \mathrm {isotopic\ abundance} \ (\mathrm {i} )={\frac {N_{\mathrm {i} }}{N_{\mathrm {tot} }}}\ ,}

where Ni are the number of atoms of the isotope of interest and Ntot is the total number of atoms, while the atomic ratio is

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{\displaystyle \mathrm {isotopic\ ratio} \ (\mathrm {i:j} )=\mathrm {isotopic\ percent} \ (\mathrm {i} ):\mathrm {isotopic\ percent} \ (\mathrm {j} )\ .}

For example, the isotopic ratio of deuterium (D) to hydrogen (H) in heavy water is roughly D:H = 1:7000 (corresponding to an isotopic abundance of 0.00014%).

Doping in laser physics

In laser physics however, the atomic ratio may refer to the doping ratio or the doping fraction.

For example, theoretically, a 100% doping ratio of Yb : Y3Al5O12 is pure Yb3Al5O12.

Editorial summary

The public source identifies “Atomic ratio” as measure of the ratio of atoms of one kind (i) to another kind (j). This brief keeps that definition visible, then builds a research path around Atomic, ratio and measure.

Editorial reviewA dependable orientation record for establishing vocabulary, names and a first evidence trail. The current 456-word lead offers orientation but no explicit four-digit date, so chronology should not be assumed. The selected authority fields contribute no independent date. Its value is orientation rather than verdict, with Atomic, ratio and measure providing the first useful test.
Editorial analysis

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The citation trail is more important than the brevity of the summary: it shows where individual claims can be examined in context. The source revision retrieved here is dated Oct 11, 2025. The linked authority identifier is Q4817343. None of the 0 selected statements returned an explicit reference.

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This entry incorporates text from Atomic ratio” on English Wikipedia. Contributors are listed in the page history. Text is available under the Creative Commons Attribution-ShareAlike 4.0 License. Selected authority identifiers and statements are retrieved from Wikidata under CC0; their references and qualifiers remain part of the verification path.