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NCERT Exemplar · Q37

Q.The structure of triphenylmethyl cation, (C6H5)3C^+, is given below. This is very stable and some of its salts can be stored for months. Explain the cause of high stability of this cation.

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The triphenylmethyl cation is highly stable due to extensive resonance stabilisation, where the positive charge is delocalised over the central carbon and the ortho/para positions of all three phenyl rings.

Carbocations are electron-deficient species, meaning they have a positive charge and an incomplete octet. Their stability is directly related to how effectively this positive charge can be dispersed or delocalised. Any effect that spreads out the positive charge will stabilise the carbocation. The two primary mechanisms for stabilising carbocations are the inductive effect (electron donation through sigma bonds) and resonance (electron donation through pi bonds or lone pairs). For the triphenylmethyl cation, resonance is the overwhelmingly dominant factor.

Let's break down the reasons for its exceptional stability:

  1. Identify the Carbocation Centre: The triphenylmethyl cation, (C6H5)3C+(C_6H_5)_3C^+, has a central carbon atom that bears the positive charge. This carbon is sp2sp^2 hybridized and has an empty p-orbital, which is crucial for resonance.

  2. Analyze the Substituents: Attached to this central carbocation are three phenyl (C6H5C_6H_5) groups. Phenyl groups are planar, cyclic, conjugated systems with delocalised π\pi electrons.

  3. Extensive Resonance Stabilisation: This is the primary reason for the high stability.

    • The empty p-orbital on the central carbocation is in direct conjugation with the π\pi electron systems of all three phenyl rings.
    • This allows the π\pi electrons from each phenyl ring to delocalise towards the electron-deficient central carbon. As a result, the positive charge is not confined to the central carbon but is extensively delocalised into the ortho and para positions of each phenyl ring.
    • Consider one phenyl ring: The π\pi electrons from the double bonds within the ring can shift to form a new double bond with the central carbon, pushing the positive charge into the ring itself, specifically to the ortho and para positions. This process occurs simultaneously with all three phenyl rings.
    • The ability to delocalise the positive charge over such a large number of atoms (the central carbon plus all the carbons in the three phenyl rings) means that the charge density on any single atom is significantly reduced. This extensive delocalisation leads to a substantial lowering of the cation's energy, making it highly stable.
    • The more resonance structures that can be drawn, and the more equivalent those structures are, the greater the resonance stabilisation. In the triphenylmethyl cation, a very large number of significant resonance structures can be drawn, involving all three rings. …

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