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NCERT Exemplar · Q30

Q.Show the polarisation of carbon-magnesium bond in the following structure.
CH3—CH2—CH2—CH2—Mg—X

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The carbon–magnesium bond is polarised with the carbon bearing a partial negative charge (δ−\delta^-) and magnesium bearing a partial positive charge (δ+\delta^+) because magnesium is far more electropositive than carbon. The structure is: CH₃—CH₂—CH₂—CH₂δ−^{\delta^-}—Mgδ+^{\delta^+}—X.

Why the C—Mg bond polarises this way

Electronegativity governs how electrons are shared in a covalent bond. Magnesium (electronegativity ~1.3) is a metal and sits near the left of the periodic table, while carbon (electronegativity ~2.5) is a non-metal. When these two atoms form a bond, the shared electron pair is pulled much more strongly toward carbon.

This creates a polar covalent bond with significant ionic character. The carbon atom becomes electron-rich (partial negative charge) and the magnesium atom becomes electron-deficient (partial positive charge). This polarisation is the foundation of Grignard reagent reactivity: the carbon behaves as a nucleophile, attacking electrophilic centres like carbonyl carbons.

Showing the polarisation step by step

  1. Identify the C—Mg bond

    In the structure CH₃—CH₂—CH₂—CH₂—Mg—X, the bond of interest is between the terminal butyl carbon and the magnesium atom.

  2. Compare electronegativities

    Carbon: ~2.5

    Magnesium: ~1.3

    The difference of ~1.2 units is substantial, indicating strong polarisation.

  3. Assign partial charges

    The more electronegative carbon pulls electron density toward itself → δ−\delta^- on carbon

    The less electronegative magnesium loses electron density → δ+\delta^+ on magnesium

  4. Mark the structure

    CHX3−CHX2−CHX2−CHX2Xδ−−MgXδ+−X\ce{CH3—CH2—CH2—CH2^{\delta^-}—Mg^{\delta^+}—X} …

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