CHAPTER 5 COORDINATION COMPOUNDS

INTEXT QUESTIONS                                                                                                                                                           PAGE NO: 125

Question1. Write the formulas for the following coordination compounds:

(i) Tetraamminediaquacobalt(III) chloride

(ii) Potassium tetracyanonickelate(II)

(iii) Tris(ethane−1,2−diamine) chromium(III) chloride

(iv) Amminebromidochloridonitrito-N-platinate(II)

(v) Dichloridobis(ethane−1,2−diamine)platinum(IV) nitrate

(vi) Iron(III) hexacyanoferrate(II)

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Question2. Write the IUPAC names of the following coordination compounds:

(i) [Co(NH3)6]Cl3

(ii) [Co(NH3)5Cl]Cl2

(iii) K3[Fe(CN)6]

(iv) K3[Fe(C2O4)3] 

(v) K2[PdCl4] 

(vi) [Pt(NH3)2Cl(NH2CH3)]Cl

Solution :
(i) Hexaamminecobalt(III) chloride

(ii) Pentaamminechloridocobalt(III) chloride

(iii) Potassium hexacyanoferrate(III)

(iv) Potassium trioxalatoferrate(III)

(v) Potassium tetrachloridopalladate(II)

(vi) Diamminechlorido(methylamine)platinum(II) chloride

INTEXT QUESTIONS                                                PAGE NO: 128

Question3. Indicate the types of isomerism exhibited by the following complexes and draw the structures for these isomers:

1. K[Cr(H2O)2(C2O4)2

2. [Co(en)3]Cl3

3. [Co(NH3)5(NO2)](NO3)2

4. [Pt(NH3)(H2O)Cl2]

Solution :
1. Both geometrical (cis-, trans-) isomers for NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundscan exist. Also, optical isomers for cis-isomer exist.

                         

 

(iii) Title: Inserting image...

A pair of optical isomers:

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

It can also show linkage isomerism.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

It can also show ionization isomerism.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(iv) Geometrical (cis-, trans-) isomers of NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundscan exist.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Question4. Give evidence that [Co(NH3)5Cl]SO4 and [Co(NH3)5SO4]Cl are ionization isomers.

Solution :
When ionization isomers are dissolved in water, they ionize to give different ions. These ions then react differently with different reagents to give different products.

INTEXT QUESTIONS                                                      PAGE NO:135

Question5. Explain on the basis of valence bond theory that [Ni(CN)4]2− ion with square planar structure is diamagnetic and the [NiCl4]2− ion with tetrahedral geometry is paramagnetic.

Solution :
Outer electronic configuration of nickel (Z = 28) in ground state is 3d84s2. Nickel in this complex is in + 2 oxidation state. It achieves + 2 oxidation state by the loss of the two 4s-electrons. The resulting Ni2+ ion has outer electronic configuration of 3d8. Since CN– ion is a strong field, under its attacking influence, two unpaired electrons in the 3d orbitals pair up.

Outer electronic configuration of nickel (Z = 28) in ground state is 3d84s2 Nickel in this complex is in + 2 oxidation state. Nickel achieves + 2 oxidation state by the loss of two 4s-electrons. The resulting Ni2+ ion has outer electronic configuration of 3d8. Since CP ion is a weak field ligand, it is not in a position to cause electron pairing.
NCERT Solutions For Class 12 Chemistry Chapter 9 Coordination Compounds Intext Questions Q5.1

Question6. [NiCl4]2− is paramagnetic while [Ni(CO)4] is diamagnetic though both are tetrahedral. Why?

Solution :
Though both [NiCl4]2− and [Ni(CO)4] are tetrahedral, their magnetic characters are different. This is due to a difference in the nature of ligands. Cl− is a weak field ligand and it does not cause the pairing of unpaired 3d electrons. Hence, [NiCl4]2− is paramagnetic.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

In Ni(CO)4, Ni is in the zero oxidation state i.e., it has a configuration of 3d8 4s2.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

But CO is a strong field ligand. Therefore, it causes the pairing of unpaired 3d electrons. Also, it causes the 4s electrons to shift to the 3d orbital, thereby giving rise to sp3 hybridization. Since no unpaired electrons are present in this case, [Ni(CO)4] is diamagnetic.

 

Question7. [Fe(H2O)6]3+ is strongly paramagnetic whereas [Fe(CN)6]3− is weakly paramagnetic. Explain.

Solution :
In both NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundsand m38a0f1f2.gif, Fe exists in the +3 oxidation state i.e., in d5 configuration.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Since CN− is a strong field ligand, it causes the pairing of unpaired electrons. Therefore, there is only one unpaired electron left in the d-orbital.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

On the other hand, H2O is a weak field ligand. Therefore, it cannot cause the pairing of electrons. This means that the number of unpaired electrons is 5.

Therefore,

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Thus, it is evident that NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds is strongly paramagnetic, while m38a0f1f2.gif is weakly paramagnetic.

Question8. Explain [Co(NH3)6]3+ is an inner orbital complex whereas [Ni(NH3)6]2+ is an outer orbital complex.

Solution :

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination CompoundsNCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds
Oxidation state of cobalt = +3Oxidation state of Ni = +2
Electronic configuration of cobalt = d6Electronic configuration of nickel = d8

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

NH3 being a strong field ligand causes the pairing. Therefore, Cobalt can undergo d2sp3 hybridization.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Hence, it is an inner orbital complex.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

If NH3 causes the pairing, then only one 3d orbital is empty. Thus, it cannot undergo d2sp3 hybridization. Therefore, it undergoes sp3d2 hybridization.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Hence, it forms an outer orbital complex.

Question9. Predict the number of unpaired electrons in the square planar [Pt(CN)4]2− ion.

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

In this complex, Pt is in the +2 state. It forms a square planar structure. This means that it undergoes dsp2 hybridization. Now, the electronic configuration of Pd(+2) is 5d8.

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

CN− being a strong field ligand causes the pairing of unpaired electrons. Hence, there are no unpaired electrons inNCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Question10. The hexaquo manganese(II) ion contains five unpaired electrons, while the hexacyanoion contains only one unpaired electron. Explain using Crystal Field Theory.

Solution :

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination CompoundsNCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds
Mn is in the +2 oxidation state.Mn is in the +2 oxidation state.
The electronic configuration is d5.The electronic configuration is d5.
The crystal field is octahedral. Water is a weak field ligand. Therefore, the arrangement of the electrons in NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundsis t2g3eg2.

The crystal field is octahedral. Cyanide is a strong field ligand. Therefore, the arrangement of the electrons in NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundsis

T2g5eg0.

Hence, hexaaquo manganese (II) ion has five unpaired electrons, while hexacyano ion has only one unpaired electron.

EXERCISES                                                                         PAGE NO: 138

Question1. Explain the bonding in coordination compounds in terms of Werner’s postulates.

Solution :
Werner’s postulates explain the bonding in coordination compounds as follows:

(i) A metal exhibits two types of valencies namely, primary and secondary valencies. Primary valencies are satisfied by negative ions while secondary valencies are satisfied by both negative and neutral ions.

(In modern terminology, the primary valency corresponds to the oxidation number of the metal ion, whereas the secondary valency refers to the coordination number of the metal ion.

(ii) A metal ion has a definite number of secondary valencies around the central atom. Also, these valencies project in a specific direction in the space assigned to the definite geometry of the coordination compound.

(iii) Primary valencies are usually ionizable, while secondary valencies are non-ionizable.

Question2. FeSO4 solution mixed with (NH4)2SO4 solution in 1:1 molar ratio gives the test of Fe2+ ion but CuSO4 solution mixed with aqueous ammonia in 1:4 molar ratio does not give the test of Cu2+ ion. Explain why?

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Both the compounds i.e., NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compoundsfall under the category of addition compounds with only one major difference i.e., the former is an example of a double salt, while the latter is a coordination compound.

A double salt is an addition compound that is stable in the solid state but that which breaks up into its constituent ions in the dissolved state. These compounds exhibit individual properties of their constituents. For e.g. d823b3e.gifbreaks into Fe2+, NH4+, and SO42− ions. Hence, it gives a positive test for Fe2+ ions.

A coordination compound is an addition compound which retains its identity in the solid as well as in the dissolved state. However, the individual properties of the constituents are lost. This happens because m69819e4f.gifdoes not show the test for Cu2+. The ions present in the solution of m69819e4f.gif.

Question3. Explain with two examples each of the following: coordination entity, ligand, coordination number, coordination polyhedron, homoleptic and heteroleptic.

Solution :
(i) Coordination entity:

A coordination entity is an electrically charged radical or species carrying a positive or negative charge. In a coordination entity, the central atom or ion is surrounded by a suitable number of neutral molecules or negative ions ( called ligands). For example:

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds= cationic complex

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds= anionic complex

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds= neutral complex

(ii) Ligands

The neutral molecules or negatively charged ions that surround the metal atom in a coordination entity or a coordinal complex are known as ligands. For example,_m32360f06.gif, Cl−, −OH. Ligands are usually polar in nature and possess at least one unshared pair of valence electrons.

(iii) Coordination number:

The total number of ligands (either neutral molecules or negative ions) that get attached to the central metal atom in the coordination sphere is called the coordination number of the central metal atom. It is also referred to as its ligancy.

For example:

(a) In the complex, K2[PtCl6], there as six chloride ions attached to Pt in the coordinate sphere. Therefore, the coordination number of Pt is 6.

(b) Similarly, in the complex [Ni(NH3)4]Cl2, the coordination number of the central atom (Ni) is 4.

(vi) Coordination polyhedron:

Coordination polyhedrons about the central atom can be defined as the spatial arrangement of the ligands that are directly attached to the central metal ion in the coordination sphere.

For example:

(a)

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(b) Tetrahedral

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(v) Homoleptic complexes:

These are those complexes in which the metal ion is bound to only one kind of a donor group. For eg: _m2a3619c9.gifetc.

(vi) Heteroleptic complexes:

Heteroleptic complexes are those complexes where the central metal ion is bound to more than one type of a donor group.

For e.g.: NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

Question4. What is meant by unidentate, didentate and ambidentate ligands? Give two examples for each.

Solution :
A ligand may contain one or more unshared pairs of electrons which are called the donor sites of ligands. Now, depending on the number of these donor sites, ligands can be classified as follows:

(a) Unidentate ligands: Ligands with only one donor sites are called unidentate ligands. For e.g.,

(b) Didentate ligands: Ligands that have two donor sites are called didentate ligands. For e.g.,

(a) Ethane-1,2-diamine

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(b) Oxalate ion

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(c) Ambidentate ligands:

Ligands that can attach themselves to the central metal atom through two different atoms are called ambidentate ligands. For example:

(a)

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(The donor atom is N)

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(The donor atom is oxygen)

(b)

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(The donor atom is S)

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(The donor atom is N)

Question5. Specify the oxidation numbers of the metals in the following coordination entities:

(i) [Co(H2O)(CN)(en)2]2+

(ii) [CoBr2(en)2]+

(iii) [PtCl4]2−

(iv) K3[Fe(CN)6]

(v) [Cr(NH3)3Cl3]

Solution :

 

 

Question6. Using IUPAC norms write the formulas for the following:

(i) Tetrahydroxozincate(II)

(ii) Potassium tetrachloridopalladate(II)

(iii) Diamminedichloridoplatinum(II)

(iv) Potassium tetracyanonickelate(II)

(v) Pentaamminenitrito-O-cobalt(III)

(vi) Hexaamminecobalt(III) sulphate

(vii) Potassium tri(oxalato)chromate(III)

(viii) Hexaammineplatinum(IV)

(ix) Tetrabromidocuprate(II)

(x) Pentaamminenitrito-N-cobalt(III)

Solution :
(i) [Zn(OH)4]2−

(ii) K2[PdCl4]

(iii) [Pt(NH3)2Cl2]

(iv) K2[Ni(CN)4]

(v) [Co(ONO) (NH3)5]2+

(vi) [Co(NH3)6]2 (SO4)3

(vii) K3[Cr(C2O4)3]

(viii) [Pt(NH3)6]4+

(ix) [Cu(Br)4]2−

(x) [Co[NO2)(NH3)5]2+

Question7. Using IUPAC norms write the systematic names of the following:

(i) [Co(NH3)6]Cl3

(ii) [Pt(NH3)2Cl(NH2CH3)]Cl 

(iii) [Ti(H2O)6]3+

(iv) [Co(NH3)4Cl(NO2)]Cl 

(v) [Mn(H2O)6]2+

(vi) [NiCl4]2−

(vii) [Ni(NH3)6]Cl2

(viii) [Co(en)3]3+

(ix) [Ni(CO)4]

Solution :
(i) Hexaamminecobalt(III) chloride

(ii) Diamminechlorido(methylamine) platinum(II) chloride

(iii) Hexaquatitanium(III) ion

(iv) Tetraamminichloridonitrito-N-Cobalt(III) chloride

(v) Hexaquamanganese(II) ion

(vi) Tetrachloridonickelate(II) ion

(vii) Hexaamminenickel(II) chloride

(viii) Tris(ethane-1, 2-diammine) cobalt(III) ion

(ix) Tetracarbonylnickel(0)

Question8. List various types of isomerism possible for coordination compounds, giving an example of each.

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(a) Geometric isomerism:

This type of isomerism is common in heteroleptic complexes. It arises due to the different possible geometric arrangements of the ligands. For example:

NCERT Solutions for Class 12 Chemistry Chapter 9 - Coordination Compounds

(b) Optical isomerism:

This type of isomerism arises in chiral molecules. Isomers are mirror images of each other and are non-superimposable.

NCERT Solutions for Class 12 Chemistry Chapter 9

(c) Linkage isomerism: This type of isomerism is found in complexes that contain ambidentate ligands. For example:

[Co(NH3)5 (NO2)]Cl2 and [Co(NH3)5 (ONO)Cl2

Yellow form Red form

(d) Coordination isomerism:

This type of isomerism arises when the ligands are interchanged between cationic and anionic entities of differnet metal ions present in the complex.

[Co(NH3)6] [Cr(CN)6] and [Cr(NH3)6] [Co(CN)6]

(e) Ionization isomerism:

This type of isomerism arises when a counter ion replaces a ligand within the coordination sphere. Thus, complexes that have the same composition, but furnish different ions when dissolved in water are called ionization isomers. For e.g., Co(NH3)5SO4)Br and Co(NH3)5Br]SO4.

(f) Solvate isomerism:

Solvate isomers differ by whether or not the solvent molecule is directly bonded to the metal ion or merely present as a free solvent molecule in the crystal lattice.

[Cr[H2O)6]Cl3 [Cr(H2O)5Cl]Cl2⋅H2O [Cr(H2O)5Cl2]Cl⋅2H2O

Violet Blue-green Dark green

Question9. How many geometrical isomers are possible in the following coordination entities?

(i) [Cr(C2O4)3]3− (ii) [Co(NH3)3Cl3]

Solution :
(i) For [Cr(C2O4)3]3−, no geometric isomer is possible as it is a bidentate ligand.

NCERT Solutions for Class 12 Chemistry Chapter 9

(ii) [Co(NH3)3Cl3]

Two geometrical isomers are possible.

NCERT Solutions for Class 12 Chemistry Chapter 9

Question10. Draw the structures of optical isomers of:

(i) [Cr(C2O4)3]3− 

(ii) [PtCl2(en)2]2+

(iii) [Cr(NH3)2Cl2(en)]+

Solution :
(i) [Cr(C2O4)3]3−

NCERT Solutions for Class 12 Chemistry Chapter 9

(ii) [PtCl2(en)2]2+

NCERT Solutions for Class 12 Chemistry Chapter 9

(iii) [Cr(NH3)2Cl2(en)]+

NCERT Solutions for Class 12 Chemistry Chapter 9

Question11. Draw all the isomers (geometrical and optical) of:

(i) [CoCl2(en)2]+

(ii) [Co(NH3)Cl(en)2]2+

(iii) [Co(NH3)2Cl2(en)]+

Solution :
(i) [CoCl2(en)2]+ Geometrical isomerism

NCERT Solutions for Class 12 Chemistry Chapter 9

Optical isomerism Since only cis isomer is optically active, it shows optical isomerism.

NCERT Solutions for Class 12 Chemistry Chapter 9

In total, three isomers are possible.

(ii) [Co(NH3)Cl(en)2]2+

Geometrical isomerism

NCERT Solutions for Class 12 Chemistry Chapter 9

Optical isomerism Since only cis isomer is optically active, it shows optical isomerism.

NCERT Solutions for Class 12 Chemistry Chapter 9

(iii) [Co(NH3)2Cl2(en)]+

NCERT Solutions for Class 12 Chemistry Chapter 9

Question12. Write all the geometrical isomers of [Pt(NH3)(Br)(Cl)(py)] and how many of these will exhibit optical isomers?

Solution :
[Pt(NH3)(Br)(Cl)(py)

NCERT Solutions for Class 12 Chemistry Chapter 9

From the above isomers, none will exhibit optical isomers. Tetrahedral complexes rarely show optical isomerization. They do so only in the presence of unsymmetrical chelating agents.

Question13. Aqueous copper sulphate solution (blue in colour) gives:

(i) a green precipitate with aqueous potassium fluoride, and

(ii) a bright green solution with aqueous potassium chloride 

Explain these experimental results.

Solution :
Aqueous CuSO4 exists as [Cu(H2O)4]SO4. It is blue in colour due to the presence of  [Cu[H2O)4]2+ ions.

(i) When KF is added: 

NCERT Solutions for Class 12 Chemistry Chapter 9

(ii) When KCl is added:

NCERT Solutions for Class 12 Chemistry Chapter 9

In both these cases, the weak field ligand water is replaced by the F− and Cl− ions.

Question14. What is the coordination entity formed when excess of aqueous KCN is added to an aqueous solution of copper sulphate? Why is it that no precipitate of copper sulphide is obtained when H2S(g) is passed through this solution?

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9

Thus, the coordination entity formed in the process is K2[Cu(CN)4]. K2[Cu(CN)4] is a very stable complex, which does not ionize to give Cu2+ ions when added to water. Hence, Cu2+ ions are not precipitated when H2S(g) is passed through the solution.

Question15. Discuss the nature of bonding in the following coordination entities on the basis of valence bond theory:

(i) [Fe(CN)6]4−

(ii) [FeF6]3−

(iii) [Co(C2O4)3]3−

(iv) [CoF6]3−

Solution :
(i) [Fe(CN)6]4−

In the above coordination complex, iron exists in the +II oxidation state.

Fe2+ : Electronic configuration is 3d6

Orbitals of Fe2+ ion:

NCERT Solutions for Class 12 Chemistry Chapter 9

As CN− is a strong field ligand, it causes the pairing of the unpaired 3d electrons.

NCERT Solutions for Class 12 Chemistry Chapter 9

Since there are six ligands around the central metal ion, the most feasible hybridization is d2sp3.

d2sp3 hybridized orbitals of Fe2+ are:

NCERT Solutions for Class 12 Chemistry Chapter 9

6 electron pairs from CN− ions occupy the six hybrid d2sp3orbitals.

Then,

NCERT Solutions for Class 12 Chemistry Chapter 9

Hence, the geometry of the complex is octahedral and the complex is diamagnetic (as there are no unpaired electrons).

(ii) [FeF6]3−

In this complex, the oxidation state of Fe is +3.

Orbitals of Fe+3 ion:

NCERT Solutions for Class 12 Chemistry Chapter 9

There are 6 F− ions. Thus, it will undergo d2sp3 or sp3d2 hybridization. As F− is a weak field ligand, it does not cause the pairing of the electrons in the 3d orbital. Hence, the most feasible hybridization is sp3d2.

sp3d2 hybridized orbitals of Fe are:

NCERT Solutions for Class 12 Chemistry Chapter 9

Hence, the geometry of the complex is found to be octahedral.

(iii) [Co(C2O4)3]3−

Cobalt exists in the +3 oxidation state in the given complex.

Orbitals of Co3+ ion:

NCERT Solutions for Class 12 Chemistry Chapter 9

Oxalate is a weak field ligand. Therefore, it cannot cause the pairing of the 3d orbital electrons. As there are 6 ligands, hybridization has to be either sp3d2 or d2sp3 hybridization.

sp3d2 hybridization of Co3+:

NCERT Solutions for Class 12 Chemistry Chapter 9

The 6 electron pairs from the 3 oxalate ions (oxalate anion is a bidentate ligand) occupy these sp3d2 orbitals.

NCERT Solutions for Class 12 Chemistry Chapter 9

Hence, the geometry of the complex is found to be octahedral.

(iv) [CoF6]3−

Cobalt exists in the +3 oxidation state.

Orbitals of Co3+ ion:

NCERT Solutions for Class 12 Chemistry Chapter 9

Again, fluoride ion is a weak field ligand. It cannot cause the pairing of the 3d electrons. As a result, the Co3+ ion will undergo sp3d2 hybridization.

sp3d2 hybridized orbitals of Co3+ ion are:

NCERT Solutions for Class 12 Chemistry Chapter 9

Hence, the geometry of the complex is octahedral and paramagnetic.

Question16. Draw figure to show the splitting of d orbitals in an octahedral crystal field.

Solution :
NCERT Solutions for Class 12 Chemistry Chapter 9

The splitting of the d orbitals in an octahedral field takes palce in such a way that NCERT Solutions for Class 12 Chemistry Chapter 9,experience a rise in energy and form the eg level, while dxy, dyzand dzx experience a fall in energy and form the t2g level.

Question17. What is spectrochemical series? Explain the difference between a weak field ligand and a strong field ligand.

Solution :
A spectrochemical series is the arrangement of common ligands in the increasing order of their crystal-field splitting energy (CFSE) values. The ligands present on the R.H.S of the series are strong field ligands while that on the L.H.S are weak field ligands. Also, strong field ligands cause higher splitting in the d orbitals than weak field ligands.

I− < Br− < S2− < SCN− < Cl−< N3 < F− < OH− < C2O42− ∼ H2O < NCS− ∼ H− < CN− < NH3 < en ∼ SO32− < NO2− < phen < CO

Question18. What is crystal field splitting energy? How does the magnitude of Δo decide the actual configuration of d-orbitals in a coordination entity?

Solution :
The degenerate d-orbitals (in a spherical field environment) split into two levels i.e., eg and t2g in the presence of ligands. The splitting of the degenerate levels due to the presence of ligands is called the crystal-field splitting while the energy difference between the two levels (eg and t2g) is called the crystal-field splitting energy. It is denoted by Δo.

After the orbitals have split, the filling of the electrons takes place. After 1 electron (each) has been filled in the three t2g orbitals, the filling of the fourth electron takes place in two ways. It can enter the eg orbital (giving rise to t2g3 eg1 like electronic configuration) or the pairing of the electrons can take place in the t2g orbitals (giving rise to t2g4 eg0 like electronic configuration). If the Δo value of a ligand is less than the pairing energy (P), then the electrons enter the eg orbital. On the other hand, if the Δo value of a ligand is more than the pairing energy (P), then the electrons enter the t2g orbital.

Question19. [Cr(NH3)6]3+ is paramagnetic while [Ni(CN)4]2− is diamagnetic. Explain why?

Solution :
Cr is in the +3 oxidation state i.e., d3 configuration. Also, NH3 is a weak field ligand that does not cause the pairing of the electrons in the 3d orbital.

Cr3+

NCERT Solutions for Class 12 Chemistry Chapter 9

Therefore, it undergoes d2sp3 hybridization and the electrons in the 3d orbitals remain unpaired. Hence, it is paramagnetic in nature.

In [Ni(CN)4]2−, Ni exists in the +2 oxidation state i.e., d8 configuration.

Ni2+:

NCERT Solutions for Class 12 Chemistry Chapter 9

CN− is a strong field ligand. It causes the pairing of the 3d orbital electrons. Then, Ni2+ undergoes dsp2 hybridization.

NCERT Solutions for Class 12 Chemistry Chapter 9

As there are no unpaired electrons, it is diamagnetic.

Question20. A solution of [Ni(H2O)6]2+ is green but a solution of [Ni(CN)4]2− is colourless. Explain.

Solution :
In [Ni(H2O)6]2+, https://img-nm.mnimgs.com/img/study_content/curr/1/12/17/268/6800/NCERT_19-11-08_Sonali_12_Chemistry_9_32_GSX_html_4682bfa5.gifis a weak field ligand. Therefore, there are unpaired electrons in Ni2+. In this complex, the d electrons from the lower energy level can be excited to the higher energy level i.e., the possibility of d−d transition is present. Hence, Ni(H2O)6]2+ is coloured.

In [Ni(CN)4]2−, the electrons are all paired as CN- is a strong field ligand. Therefore, d-d transition is not possible in [Ni(CN)4]2−. Hence, it is colourless.

Question21. [Fe(CN)6]4− and [Fe(H2O)6]2+ are of different colours in dilute solutions. Why?

Solution :
The colour of a particular coordination compound depends on the magnitude of the crystal-field splitting energy, Δ. This CFSE in turn depends on the nature of the ligand. In case of [Fe(CN)6]4− and [Fe(H2O)6]2+, the colour differs because there is a difference in the CFSE. Now, CN− is a strong field ligand having a higher CFSE value as compared to the CFSE value of water. This means that the absorption of energy for the intra d-d transition also differs. Hence, the transmitted colour also differs.

Question22. Discuss the nature of bonding in metal carbonyls.

Solution:
The metal-carbon bonds in metal carbonyls have both σ and π characters. A σ bond is formed when the carbonyl carbon donates a lone pair of electrons to the vacant orbital of the metal. A π bond is formed by the donation of a pair of electrons from the filled metal d orbital into the vacant anti-bonding π* orbital (also known as back bonding of the carbonyl group). The σ bond strengthens the π bond and vice-versa. Thus, a synergic effect is created due to this metal-ligand bonding. This synergic effect strengthens the bond between CO and the metal.

NCERT Solutions for Class 12 Chemistry Chapter 9

Question23. Give the oxidation state, d-orbital occupation and coordination number of the central metal ion in the following complexes:

(i) K3[Co(C2O4)3] 

(ii) cis-[Cr(en)2Cl2]Cl 

(iii) (NH4)2[CoF4]

(iv) [Mn(H2O)6]SO4

Solution :
(i) K3[Co(C2O4)3]

The central metal ion is Co.

Its coordination number is 6.

The oxidation state can be given as:

x − 6 = −3

x = + 3

The d orbital occupation for Co3+ is t2g6eg0.

(ii) cis-[Cr(en)2Cl2]Cl

The central metal ion is Cr.

The coordination number is 6.

The oxidation state can be given as:

x + 2(0) + 2(−1) = +1

x − 2 = +1

x = +3

The d orbital occupation for Cr3+ is t2g3.

(iii) (NH4)2[CoF4]

The central metal ion is Co.

The coordination number is 4.

The oxidation state can be given as:

x − 4 = −2

x = + 2

The d orbital occupation for Co2+ is eg4 t2g3.

(iv) [Mn(H2O)6]SO4

The central metal ion is Mn.

The coordination number is 6.

The oxidation state can be given as:

x + 0 = +2

x = +2

The d orbital occupation for Mn is t2g3 eg2.

Question24. Write down the IUPAC name for each of the following complexes and indicate the oxidation state, electronic configuration and coordination number. Also give stereochemistry and magnetic moment of the complex:

(i) K[Cr(H2O)2(C2O4)2].3H2O 

(ii) [Co(NH3)5Cl]Cl2

(iii) CrCl3(py)3

(iv) Cs[FeCl4]

(v) K4[Mn(CN)6]

Solution :
(i) Potassium diaquadioxalatochromate (III) trihydrate.

Oxidation state of chromium = 3

Electronic configuration: 3d3: t2g3

Coordination number = 6

Shape: octahedral

Stereochemistry:

NCERT Solutions for Class 12 Chemistry Chapter 9

(ii) [Co(NH3)5Cl]Cl2

IUPAC name: Pentaamminechloridocobalt(III) chloride

Oxidation state of Co = +3

Coordination number = 6

Shape: octahedral.

Electronic configuration: d6: t2g6.

Stereochemistry:

NCERT Solutions for Class 12 Chemistry Chapter 9

Magnetic Moment = 0

(iii) CrCl3(py)3

IUPAC name: Trichloridotripyridinechromium (III)

Oxidation state of chromium = +3

Electronic configuration for d3 = t2g3

Coordination number = 6

Shape: octahedral.

Stereochemistry:

NCERT Solutions for Class 12 Chemistry Chapter 9

Both isomers are optically active. Therefore, a total of 4 isomers exist.

Magnetic moment, μ = √n(n + 2)

NCERT Solutions for Class 12 Chemistry Chapter 9

(iv) Cs[FeCl4]

IUPAC name: Caesium tetrachloroferrate (III)

Oxidation state of Fe = +3

Electronic configuration of d6 = eg2t2g3

Coordination number = 4

Shape: tetrahedral

Stereochemistry: optically inactive

Magnetic moment:

NCERT Solutions for Class 12 Chemistry Chapter 9

(v) K4[Mn(CN)6]

Potassium hexacyanomanganate(II)

Oxidation state of manganese = +2

Electronic configuration: d5+: t2g5

Coordination number = 6

Shape: octahedral.

Streochemistry: optically inactive

Magnetic moment, μ = √n(n + 2)

NCERT Solutions for Class 12 Chemistry Chapter 9

Question25. What is meant by stability of a coordination compound in solution? State the factors which govern stability of complexes.

Solution :
The stability of a complex in a solution refers to the degree of association between the two species involved in a state of equilibrium. Stability can be expressed quantitatively in terms of stability constant or formation constant.

NCERT Solutions for Class 12 Chemistry Chapter 9

Stability Constant = NCERT Solutions for Class 12 Chemistry Chapter 9

For this reaction, the greater the value of the stability constant, the greater is the proportion of ML3 in the solution.

Stability can be of two types:

(a) Thermodynamic stability:

The extent to which the complex will be formed or will be transformed into another species at the point of equilibrium is determined by thermodynamic stability.

(b) Kinetic stability:

This helps in determining the speed with which the transformation will occur to attain the state of equilibrium.

Factors that affect the stability of a complex are:

(a) Charge on the central metal ion: Thegreater the charge on the central metal ion, the greater is the stability of the complex.

Basic nature of the ligand: A more basic ligand will form a more stable complex.

Presence of chelate rings: Chelation increases the stability of complexes.

Question26. What is meant by the chelate effect? Give an example.

Solution :
When a ligand attaches to the metal ion in a manner that forms a ring, then the metal- ligand association is found to be more stable. In other words, we can say that complexes containing chelate rings are more stable than complexes without rings. This is known as the chelate effect.

For example:

NCERT Solutions for Class 12 Chemistry Chapter 9

Question27. Discuss briefly giving an example in each case the role of coordination compounds in:

(i) biological system

(ii) medicinal chemistry

(iii) analytical chemistry

(iv) extraction/metallurgy of metals

Solution :
(i) Role of coordination compounds in biological systems: 

We know that photosynthesis is made possible by the presence of the chlorophyll pigment. This pigment is a coordination compound of magnesium. In the human biological system, several coordination compounds play important roles. For example, the oxygen-carrier of blood, i.e., haemoglobin, is a coordination compound of iron.

(ii) Role of coordination compounds in medicinal chemistry:

Certain coordination compounds of platinum (for example, cis-platin) are used for inhibiting the growth of tumours.

(iii) Role of coordination compounds in analytical chemistry:

During salt analysis, a number of basic radicals are detected with the help of the colour changes they exhibit with different reagents. These colour changes are a result of the coordination compounds or complexes that the basic radicals form with different ligands.

(iii) Role of coordination compounds in extraction or metallurgy of metals:

The process of extraction of some of the metals from their ores involves the formation of complexes. For example, in aqueous solution, gold combines with cyanide ions to form [Au(CN)2]. From this solution, gold is later extracted by the addition of zinc metal.

Question28. How many ions are produced from the complex Co(NH3)6Cl2 in solution?

(i) 6 

(ii) 4 

(iii) 3 

(iv) 2

Solution :
(iii) The given complex can be written as [Co(NH3)6]Cl2.

Thus, [Co(NH3)6]+ along with two Cl− ions are produced.

Question29. Amongst the following ions which one has the highest magnetic moment value?

(i) [Cr(H2O)6]3+

(ii) [Fe(H2O)6]2+

(iii) [Zn(H2O)6]2+

Solution :
(i) No. of unpaired electrons in [Cr(H2O)6]3+ = 3

Then, μ  = √n(n + 2)

NCERT Solutions for Class 12 Chemistry Chapter 9

(ii) No. of unpaired electrons in [Fe(H2O)6]2+ = 4

Then, μ = √n(n + 2)

= √4(4 + 2)

= √2

= ˜ 5 BM

(iii) No. of unpaired electrons in [Zn(H2O)6]2+ = 0

Hence, [Fe(H2O)6]2+ has the highest magnetic moment value.

Question30. Amongst the following, the most stable complex is

(i) [Fe(H2O)6]3+

(ii) [Fe(NH3)6]3+

(iii) [Fe(C2O4)3]3−

(iv) [FeCl6]3−

Solution :
We know that the stability of a complex increases by chelation. In each of the given complex, Fe is in + 3 oxidation state. As C2042-is didentate chelating ligand, it forms chelate rings and hence (iii) out of complexes given above is the most stable complex. 

Question31. What will be the correct order for the wavelengths of absorption in the visible region for the following:

[Ni(NO2)6]4−, [Ni(NH3)6]2+, [Ni(H2O)6]2+

Solution :
The central metal ion in all the three complexes is the same. Therefore, absorption in the visible region depends on the ligands. As metal ion is fixed, the increasing field strengths, i.e., the CFSE values of the ligands from the spectro-chemical series are in the order: H20<NH3< NO2–;
Thus, the energies absorbed for excitation will be in the order:
NCERT Solutions For Class 12 Chemistry Chapter 9 Coordination Compounds Exercises Q32