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Account for the following observations: Though fluorine is more electronegative than chlorine yet BF3 is a weaker Lewis acid than BCl3

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प्रश्न

Account for the following observations:

Though fluorine is more electronegative than chlorine yet BF3 is a weaker Lewis acid than BCl3 

दीर्घउत्तर
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उत्तर

Undoubtedly, fluorine has more electronegativity than chlorine, BF3 is stronger Lewis acid than BCl3 because of n – pπ back bonding in BF3, both the constituting atoms boron and fluorine are involved p-orbital in back bonding. On moving down the group, the size of halogen atoms increases, back bonding decreases and Lewis acid character also decreases.

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पाठ 11: The p-block Elements - Multiple Choice Questions (Type - I) [पृष्ठ १४१]

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एनसीईआरटी एक्झांप्लर Chemistry Exemplar [English] Class 11
पाठ 11 The p-block Elements
Multiple Choice Questions (Type - I) | Q 42.(ii) | पृष्ठ १४१

संबंधित प्रश्‍न

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Explain why the following compounds behave as Lewis acids?

AlCl3


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Explain the following:

Boron does not exist as B3+ ion.


Explain the following:

PbX2 is more stable than PbX4.


Explain the following:

Electron gain enthalpy of chlorine is more negative as compared to fluorine.


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Column I Column II
(i) \[\ce{BF^{-}4}\] (a) Oxidation state of central atom is +4
(ii) AICI3 (b) Strong oxidising agent
(iii) SnO (c) Lewis acid
(iv) PbO2 (d) Can be further oxidised
  (e) Tetrahedral shape

Match the species given in Column I with the hybridisation given in Column II.

Column I Column II
(i) Boron in [B(OH)4] (a) sp2
(ii) Aluminium in [Al(H2O)6]3+ (b) sp3
(iii) Boron in B2H6 (c) sp3d2
(iv) Carbon in Buckminsterfullerene  
(v) Silicon in \[\ce{SiO^{4-}4}\]  
(vi) Germanium in [GeCl6]2–  

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Metallic character


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Nature of halides


Boron fluoride exists as BF3 but boron hydride doesn’t exist as BH3. Give reason. In which form does it exist? Explain its structure.


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