Match the following based on valence bond theory $(VBT)$.
HybridisationGeometryComplex structure
$(A) \ sp^3$$(i) \ \text{Square planar}$$(p) \ [Fe(CN)_6]^{3-}$
$(B) \ d^2sp^3$$(ii) \ \text{Tetrahedral}$$(q) \ [ZnCl_4]^{2-}$
$(C) \ dsp^2$$(iii) \ \text{Octahedral}$$(r) \ [Ni(NH_3)_4]^{2+}$
-$(iv) \ \text{Linear}$$(s) \ [Ag(CN)_2]^-$

  • A
    $(A-ii-q), (B-iii-p), (C-i-r)$
  • B
    $(A-ii-q), (B-iii-r), (C-i-s)$
  • C
    $(A-i-q), (B-iii-p), (C-ii-r)$
  • D
    $(A-ii-r), (B-iii-s), (C-i-q)$

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Similar Questions

For which of the following $d^n$ configurations of octahedral complexes,can they $NOT$ exist in both high spin and low spin forms?
$(I)$ $d^3$,$(II)$ $d^5$,$(III)$ $d^6$,$(IV)$ $d^8$

Which of the following complexes exhibits $sp^{3}d$ hybridization?

Which of the following statements is correct regarding the $[Fe(CN)_6]^{4-}$ complex?

Difficult
View Solution

The type of hybridization involved in the metal ion of the $[Ni(H_2O)_6]^{2+}$ complex is:

Match the hybridisation in Column $I$ with the complexes in Column $II$. The options represent the matches for $(A), (B), (C), (D)$ respectively.
Column $I$Column $II$
$(A)$ $sp^3$$(i)$ $[Co(NH_3)_6]^{3+}$
$(B)$ $dsp^2$$(ii)$ $[Ni(CO)_4]$
$(C)$ $sp^3d^2$$(iii)$ $[Pt(NH_3)_2Cl_2]$
$(D)$ $d^2sp^3$$(iv)$ $[CoF_6]^{3-}$
$(v)$ $[Fe(CO)_5]$

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