Skip to main content
Chemistry LibreTexts

6.21: Periodic Trends- Electronegativity

  • Page ID
    53712
  • \( \newcommand{\vecs}[1]{\overset { \scriptstyle \rightharpoonup} {\mathbf{#1}} } \) \( \newcommand{\vecd}[1]{\overset{-\!-\!\rightharpoonup}{\vphantom{a}\smash {#1}}} \)\(\newcommand{\id}{\mathrm{id}}\) \( \newcommand{\Span}{\mathrm{span}}\) \( \newcommand{\kernel}{\mathrm{null}\,}\) \( \newcommand{\range}{\mathrm{range}\,}\) \( \newcommand{\RealPart}{\mathrm{Re}}\) \( \newcommand{\ImaginaryPart}{\mathrm{Im}}\) \( \newcommand{\Argument}{\mathrm{Arg}}\) \( \newcommand{\norm}[1]{\| #1 \|}\) \( \newcommand{\inner}[2]{\langle #1, #2 \rangle}\) \( \newcommand{\Span}{\mathrm{span}}\) \(\newcommand{\id}{\mathrm{id}}\) \( \newcommand{\Span}{\mathrm{span}}\) \( \newcommand{\kernel}{\mathrm{null}\,}\) \( \newcommand{\range}{\mathrm{range}\,}\) \( \newcommand{\RealPart}{\mathrm{Re}}\) \( \newcommand{\ImaginaryPart}{\mathrm{Im}}\) \( \newcommand{\Argument}{\mathrm{Arg}}\) \( \newcommand{\norm}[1]{\| #1 \|}\) \( \newcommand{\inner}[2]{\langle #1, #2 \rangle}\) \( \newcommand{\Span}{\mathrm{span}}\)\(\newcommand{\AA}{\unicode[.8,0]{x212B}}\)

     clipboard_e8026d47b88c021a7cf55ba8dd87b23ce.png
    Figure \(\PageIndex{1}\) (Credit: (left) Image copyright Pressmaster, 2013; (right) Image copyright cdrin, 2013; Source: http://www.shutterstock.com(opens in new window); http://www.shutterstock.com/(opens in new window); License: Used under licenses from Shutterstock.com)

    Is it easy or hard for you to make new friends?

    Have you ever noticed how some people attract others to them? Whether it be their personality, attractiveness, or athletic skills—something pulls people toward them; while others have a smaller group of friends and acquaintances. Atoms do the same thing. One atom may pull electrons strongly to it, while a second type of atom has much less "pulling power".

    Electronegativity

    Valence electrons of both atoms are always involved when those two atoms come together to form a chemical bond. Chemical bonds are the basis for how elements combine with one another to form compounds. When these chemical bonds form, atoms of some elements have a greater ability to attract the valence electrons involved in the bond than other elements.

    Electronegativity is a measure of the ability of an atom to attract the electrons when the atom is part of a compound. Electronegativity differs from electron affinity because electron affinity is the actual energy released when an atom gains an electron. Electronegativity is not measured in energy units, but instead a relative scale. All elements are compared to one another, with the most electronegative element, fluorine, being assigned an electronegativity value of 3.98. Fluorine attracts electrons better than any other element. The table below shows the electronegativity values for the elements.

    CK12 Screenshot 6-20-1.png
    Figure \(\PageIndex{2}\): The electronegativity scale was developed by Nobel Prize winning American chemist Linus Pauling. The largest electronegativity (3.98) is assigned to fluorine and all other electronegativity measurements are on a relative scale. (Credit: Christopher Auyeung; Source: CK-12 Foundation; License:  CC  BY-NC 3.0(opens in new window))

    Since metals have few valence electrons, they tend to increase their stability by losing electrons to become cations. Consequently, the electronegativities of metals are generally low. Nonmetals have more valence electrons and increase their stability by gaining electrons to become anions. The electronegativities of nonmetals are generally high.

    Trends

    Electronegativities generally increase from left to right across a period. This is due to an increase in nuclear charge. Alkali metals have the lowest electronegativities, while halogens have the highest. Because most noble gases do not form compounds, they do not have electronegativities. Note that there is little variation among the transition metals. Electronegativities generally decrease from top to bottom within a group, due to the larger atomic size.

    Of the main group elements, fluorine has the highest electronegativity (EN \(= 4.0\)) and cesium the lowest (EN \(= 0.79\)). This indicates that fluorine has a high tendency to gain electrons from other elements with lower electronegativities. We can use these values to predict what happens when certain elements combine.

    When the difference between atom electronegativities is greater than ~1.7, then a complete exchange of electrons occurs. Typically this exchange is between a metal and a nonmetal. For instance, sodium and chlorine will typically combine to form a new compound and each ion becomes isoelectronic with its nearest noble gas. When we compare the EN values, we see that the electronegativity for \(\ce{Na}\) is 0.93 and the value for \(\ce{Cl}\) is 3.2. The absolute difference between ENs is \(\left| 0.93 - 3.2 \right| = 2.27\). This value is greater than 1.7, and therefore indicates the occurence of a complete electron exchange.

    Summary

    • Electronegativity is a measure of the ability of an atom to attract the electrons when the atom is part of a compound.
    • Electronegativity values generally increase from left to right across the periodic table.
    • Electronegativities generally decrease from the top to bottom of a group.
    • The highest electronegativity value is for fluorine.

    Review

    1. Define “electronegativity.”
    2. How does electronegativity differ from electron affinity?
    3. Why are the electronegativity values of metals generally low?
    4. Describe the trend in electronegativities across the periodic table.
    5. Describe the trends in electronegativities in a group of the periodic table.

    This page titled 6.21: Periodic Trends- Electronegativity is shared under a CK-12 license and was authored, remixed, and/or curated by CK-12 Foundation via source content that was edited to the style and standards of the LibreTexts platform; a detailed edit history is available upon request.

    CK-12 Foundation
    LICENSED UNDER
    CK-12 Foundation is licensed under CK-12 Curriculum Materials License