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214 questions
Chemistry/Paper 4/Transition Elements
CAIEA-Level9701-a · Paper 4

Transition Elements

214 questions· page 1 of 22

Q32025 Feb/Mar·P429 partsEasy
(a)(i)

Define complex.

(a)(ii)

Table 3.1 gives some details of different complexes of Fe2+\text{Fe}^{2+} and of Fe3+\text{Fe}^{3+}.

Complete Table 3.1.

Table 3.1
complexionligandcoordination numberformula and charge of complex
EFe2+\text{Fe}^{2+}NH3\text{NH}_36
F[FeCl4]2[\text{FeCl}_4]^{2-}
Gen[Fe(en)3]3+[\text{Fe(en)}_3]^{3+}
(a)(iii)

Complete Fig. 3.1 to show the splitting of the d-orbitals in a tetrahedral complex.

(b)(i)

Explain the reason for the difference in colour of the two complexes [Fe(H2O)6]3+[\text{Fe(H}_2\text{O)}_6]^{3+} and [Fe(H2O)5SCN]2+[\text{Fe(H}_2\text{O)}_5\text{SCN}]^{2+}.

(b)(ii)

Write an expression for KstabK_{\text{stab}} of [Fe(H2O)5SCN]2+[\text{Fe(H}_2\text{O)}_5\text{SCN}]^{2+}.

(b)(iii)

Use information in Table 3.2 to calculate the value of the equilibrium constant, KcK_c, for the following reaction.

[Fe(H2O)5SCN]2++F[Fe(H2O)5F]2++SCN[\text{Fe(H}_2\text{O)}_5\text{SCN}]^{2+} + \text{F}^- \rightleftharpoons [\text{Fe(H}_2\text{O)}_5\text{F}]^{2+} + \text{SCN}^-
(b)(iv)

A few drops of KF(aq) are added to a solution of [Fe(H2O)6]3+(aq)[\text{Fe(H}_2\text{O)}_6]^{3+}(aq), followed by a few drops of KSCN(aq).

Use information in Table 3.2 to describe any observations after each addition. Explain your answer.

(c)(i)

Write half equations for the oxidation of C2O42\text{C}_2\text{O}_4^{2-} ions and for the reduction of MnO4\text{MnO}_4^- ions.

  • oxidation of C2O42\text{C}_2\text{O}_4^{2-}

  • reduction of MnO4\text{MnO}_4^-

(c)(ii)

A student prepares a solution containing 0.100 g of J.

The student titrates this solution with 0.0200 mol dm30.0200\text{ mol dm}^{-3} acidified KMnO4(aq)\text{KMnO}_4(aq). The titre obtained is 12.20 cm312.20\text{ cm}^3.

Assume all of the C2O42\text{C}_2\text{O}_4^{2-} ions are oxidised.

Calculate the value of xx in K3Fe(C2O4)3xH2O\text{K}_3\text{Fe(C}_2\text{O}_4)_3 \cdot x\text{H}_2\text{O}.

Give your answer to the nearest whole number. Show your working.

[MrM_r: K3Fe(C2O4)3\text{K}_3\text{Fe(C}_2\text{O}_4)_3, 437.1]

Similar questions
Q62025 May/Jun·P414 partsEasy
(a)(i)

Complex ion A contains one Fe3+\text{Fe}^{3+} ion and six CN\text{CN}^- ligands.

Complex ion B contains one Fe2+\text{Fe}^{2+} ion and six CN\text{CN}^- ligands.

State the formulae of these two complex ions. Include the overall charge of each complex ion.

complex ion A .................................................

complex ion B .................................................

(a)(ii)

Explain why a solution containing complex ion A and a solution containing complex ion B are different colours.

(a)(iii)

In complex ion A, the carbon atom of each CN\text{CN}^- ligand bonds to the Fe3+\text{Fe}^{3+} ion.

State the type of bonding involved.

(b)

Complex ions have different geometries.

Complex ion A is octahedral.

Ag+\text{Ag}^+ ions form a linear complex with ammonia.

Ni atoms form a tetrahedral complex with carbon monoxide molecules. The carbon atom in the monodentate carbon monoxide ligand bonds to the nickel atom.

Pd2+\text{Pd}^{2+} ions form a square planar complex with chloride ions.

Complete Fig. 6.1 to show the geometry of each of these four ions, using three-dimensional bonds where necessary. Label one bond angle on each complex ion.

Similar questions
Q62025 May/Jun·P434 partsEasy
(a)(i)

Complex ion A contains one Fe3+\text{Fe}^{3+} ion and six CN\text{CN}^- ligands.

Complex ion B contains one Fe2+\text{Fe}^{2+} ion and six CN\text{CN}^- ligands.

State the formulae of these two complex ions. Include the overall charge of each complex ion.

complex ion A .................................................

complex ion B .................................................

(a)(ii)

Explain why a solution containing complex ion A and a solution containing complex ion B are different colours.

(a)(iii)

In complex ion A, the carbon atom of each CN\text{CN}^- ligand bonds to the Fe3+\text{Fe}^{3+} ion.

State the type of bonding involved.

(b)

Complex ions have different geometries.

Complex ion A is octahedral.

Ag+\text{Ag}^+ ions form a linear complex with ammonia.

Ni atoms form a tetrahedral complex with carbon monoxide molecules. The carbon atom in the monodentate carbon monoxide ligand bonds to the nickel atom.

Pd2+\text{Pd}^{2+} ions form a square planar complex with chloride ions.

Complete Fig. 6.1 to show the geometry of each of these four ions, using three-dimensional bonds where necessary. Label one bond angle on each complex ion.

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Q52025 Oct/Nov·P417 partsEasy
(a)

Copper shows typical properties of transition elements, including its behaviour as a catalyst.

Complete Table 5.1 to show the total number of unpaired electrons in the 3d and 4s orbitals of an isolated gaseous Cu atom and a Cu2+\text{Cu}^{2+} ion.

species3d4s
Cu
Cu2+\text{Cu}^{2+}
(b)

The 3d orbitals in an isolated Cu2+\text{Cu}^{2+} ion are degenerate.

Complete the diagram to show the relative energies of the 3d orbitals in an isolated Cu2+\text{Cu}^{2+} ion and in Cu2+\text{Cu}^{2+} in a tetrahedral complex.

(c)

Explain why transition elements behave as catalysts.

(d)

CN\text{CN}^- is a monodentate ligand.

Table 5.2 shows information about two complex ions that contain only CN\text{CN}^- ions as ligands.

Complete Table 5.2.

metal ioncoordination numberformula of complex ioncharge of complex ion
Ag+\text{Ag}^+2
Fe2+\text{Fe}^{2+}4–
(e)

The complex ion [Au(CN)2Br2][\text{Au(CN)}_2\text{Br}_2]^- displays geometrical (cis/trans) isomerism.

Draw the structure of trans-[Au(CN)2Br2][\text{Au(CN)}_2\text{Br}_2]^-. State its shape and the Br-Au-Br bond angle.

(f)(i)

Calculate the percentage by mass of vanadium in the 0.250 g0.250\text{ g} of impure sample. Assume the impurities do not contain any vanadium ions.

Show your working.

(f)(ii)

Complete the equation for the reaction between acidified VO3\text{VO}_3^- ions and Zn metal.

VO3+Zn+V2++Zn2++\dots\dots \text{VO}_3^- + \dots\dots \text{Zn} + \dots\dots\dots\dots \rightarrow \dots\dots \text{V}^{2+} + \dots\dots \text{Zn}^{2+} + \dots\dots\dots\dots
Similar questions
Q62025 Oct/Nov·P426 partsEasy
(a)(i)

Give the formula and charge of the tetrahedral complex formed by Ni\text{Ni} atoms with carbon monoxide molecules. Carbon monoxide is a monodentate ligand. This is complex E.

E = ...............................................................................................................................

(a)(ii)

Give the formula and charge of the octahedral complex formed by Ni2+\text{Ni}^{2+} ions with ethanedioate ions. This is complex F.

F = ...............................................................................................................................

(a)(iii)

Identify which complex, E or F, exists as a mixture of two stereoisomers and the type of stereoisomerism involved.

The complex which exists as a mixture of two stereoisomers is .............................. .

The type of stereoisomerism involved is .............................. .

(b)(i)

Explain, by reference to its structure, why CH3NH2\text{CH}_3\text{NH}_2 acts as a monodentate ligand.

(b)(ii)

Some Cd2+(aq)\text{Cd}^{2+}\text{(aq)} is added to a solution containing equal concentrations of CH3NH2\text{CH}_3\text{NH}_2 and en.

Predict which of the two complexes in Table 6.1 forms at the higher concentration.

Explain your answer.

complex that forms at the higher concentration ................................................................

explanation ........................................................................................................................

(b)(iii)

Complete the expression for the KstabK_{stab} of [Cd(CH3NH2)4]2+[\text{Cd(CH}_3\text{NH}_2)_4]^{2+}.

KstabK_{stab} =

Similar questions
Q52025 Oct/Nov·P437 partsEasy
(a)

Copper shows typical properties of transition elements, including its behaviour as a catalyst.

Complete Table 5.1 to show the total number of unpaired electrons in the 3d and 4s orbitals of an isolated gaseous Cu atom and a Cu2+\text{Cu}^{2+} ion.

Table 5.1

speciesnumber of unpaired electrons (3d)number of unpaired electrons (4s)
Cu
Cu2+\text{Cu}^{2+}
(b)

The 3d orbitals in an isolated Cu2+\text{Cu}^{2+} ion are degenerate.

Complete the diagram to show the relative energies of the 3d orbitals in an isolated Cu2+\text{Cu}^{2+} ion and in Cu2+\text{Cu}^{2+} in a tetrahedral complex.

(c)

Explain why transition elements behave as catalysts.

(d)

CN\text{CN}^- is a monodentate ligand.

Table 5.2 shows information about two complex ions that contain only CN\text{CN}^- ions as ligands.

Complete Table 5.2.

Table 5.2

metal ioncoordination numberformula of complex ioncharge of complex ion
Ag+\text{Ag}^+2
Fe2+\text{Fe}^{2+}4–
(e)

The complex ion [Au(CN)2Br2][\text{Au}(\text{CN})_2\text{Br}_2]^- displays geometrical (cis/trans) isomerism.

Draw the structure of trans-[Au(CN)2Br2][\text{Au}(\text{CN})_2\text{Br}_2]^-. State its shape and the Br-Au-Br bond angle.

shape ..............................Br-Au-Br bond angle = ..............................\text{shape ..............................} \quad \text{Br-Au-Br bond angle = ..............................}
(f)(i)

Calculate the percentage by mass of vanadium in the 0.250 g0.250 \text{ g} of impure sample.

Assume the impurities do not contain any vanadium ions.

Show your working.

percentage of vanadium = ..............................\text{percentage of vanadium = ..............................}
(f)(ii)

Complete the equation for the reaction between acidified VO3\text{VO}_3^- ions and Zn metal.

...... VO3+...... Zn+.................. V2++...... Zn2++..............\text{...... VO}_3^- + \text{...... Zn} + \text{............} \rightarrow \text{...... V}^{2+} + \text{...... Zn}^{2+} + \text{..............}
Similar questions
Q12025 Oct/Nov·P4413 partsEasy
(a)

Define a transition element.

(b)(i)

Define the term degenerate.

(b)(ii)

Complete the electronic configuration of Cu2+\text{Cu}^{2+}.

1s21\text{s}^2 ...............................................................................................................................

(c)(i)

State the colours of the aqueous solutions for the two copper(II) complex ions shown.

  • [Cu(NH3)4(H2O)2]2+(aq)[\text{Cu}(\text{NH}_3)_4(\text{H}_2\text{O})_2]^{2+}(\text{aq}) .............................................................................................
  • [CuCl4]2(aq)[\text{CuCl}_4]^{2-}(\text{aq}) .............................................................................................................
(c)(ii)

Explain why aqueous complex ions of transition elements are usually coloured.

(d)(i)

When an excess of NH3(aq)\text{NH}_3(\text{aq}) is added to a solution of [CuCl4]2(aq)[\text{CuCl}_4]^{2-}(\text{aq}), [Cu(NH3)4(H2O)2]2+(aq)[\text{Cu}(\text{NH}_3)_4(\text{H}_2\text{O})_2]^{2+}(\text{aq}) is formed.

State the type of reaction.
Complete the equation for this reaction. State symbols are not required.

type of reaction ..................................................................................................................

equation

[CuCl4]2+[\text{CuCl}_4]^{2-} + ..................................... [Cu(NH3)4(H2O)2]2++\rightarrow [\text{Cu}(\text{NH}_3)_4(\text{H}_2\text{O})_2]^{2+} + .....................................

(d)(ii)

The [Cu(NH3)4(H2O)2]2+[\text{Cu}(\text{NH}_3)_4(\text{H}_2\text{O})_2]^{2+} complex ion shows stereoisomerism.

Complete the three-dimensional diagrams in Fig. 1.1 to show the two different stereoisomers of [Cu(NH3)4(H2O)2]2+[\text{Cu}(\text{NH}_3)_4(\text{H}_2\text{O})_2]^{2+}.

(d)(iii)

Deduce which stereoisomer in (d)(ii) is polar.

Explain your answer.

polar isomer ......................................................................................................................

explanation ........................................................................................................................

(e)(i)

Suggest how P\mathbf{P} can form three dative covalent bonds.

(e)(ii)

22 moles of dianion P\mathbf{P}, C4H5NO42\text{C}_4\text{H}_5\text{NO}_4^{2-}, react with 11 mole of aqueous cobalt(III) ions, [Co(H2O)6]3+[\text{Co}(\text{H}_2\text{O})_6]^{3+} to form 11 mole of complex ion Q\mathbf{Q}.

Deduce the formula and charge of Q\mathbf{Q}.

(f)(i)

Define the stability constant of a complex.

(f)(ii)

Use the information in Table 1.1 to identify the most stable silver(I) complex.

Explain your answer.

most stable ........................................................................................................................

explanation ........................................................................................................................

(g)

Sodium sulfite, Na2SO3\text{Na}_2\text{SO}_3, is used as a food preservative.

A 3.75 g3.75\text{ g} sample of impure Na2SO3\text{Na}_2\text{SO}_3 is dissolved in distilled water and made up to 250 cm3250\text{ cm}^3 in a volumetric flask.

10.0 cm310.0\text{ cm}^3 of this solution requires 18.70 cm318.70\text{ cm}^3 of acidified 0.0150 mol dm30.0150\text{ mol dm}^{-3} MnO4(aq)\text{MnO}_4^-(\text{aq}) to reach the end-point.

The equation for the reaction is shown.

2MnO4+5SO32+6H+2Mn2++5SO42+3H2O2\text{MnO}_4^- + 5\text{SO}_3^{2-} + 6\text{H}^+ \rightarrow 2\text{Mn}^{2+} + 5\text{SO}_4^{2-} + 3\text{H}_2\text{O}

Calculate the percentage by mass of Na2SO3\text{Na}_2\text{SO}_3 in the sample.

Similar questions
Q32024 Feb/Mar·P4210 partsEasy
(a)(i)

Explain why iron has variable oxidation states.

(a)(ii)

Complete the shorthand electronic configurations of Fe\text{Fe} and Fe3+\text{Fe}^{3+}.

Fe[Ar]Fe3+[Ar]\begin{aligned} \text{Fe} &\quad [\text{Ar}] \\ \text{Fe}^{3+} &\quad [\text{Ar}] \end{aligned}
(b)(i)

Define complex.

(b)(ii)

State the coordination number of Fe\text{Fe} in [Fe(H2O)6]3+[\text{Fe}(\text{H}_2\text{O})_6]^{3+}.

(b)(iii)

The H—O—H bond angle in water is 104.5104.5^\circ.

Suggest the H—O—H bond angle in [Fe(H2O)6]3+[\text{Fe}(\text{H}_2\text{O})_6]^{3+}.

Explain your answer.

(b)(iv)

Explain why iron complexes are coloured.

(b)(v)

Aqueous solutions of complexes [Fe(H2O)6]3+[\text{Fe}(\text{H}_2\text{O})_6]^{3+} and [Fe(H2O)5SCN]2+[\text{Fe}(\text{H}_2\text{O})_5\text{SCN}]^{2+} are different colours.

Explain why these complexes are different colours.

(c)(i)

[Fe(H2O)5(H2PO4)]2+[\text{Fe}(\text{H}_2\text{O})_5(\text{H}_2\text{PO}_4)]^{2+} can form when H3PO4\text{H}_3\text{PO}_4 reacts with [Fe(H2O)6]3+[\text{Fe}(\text{H}_2\text{O})_6]^{3+}.

Write an equation for this reaction.

(c)(ii)

Write an expression for KstabK_{\text{stab}} of [Fe(H2O)5SCN]2+[\text{Fe}(\text{H}_2\text{O})_5\text{SCN}]^{2+} and give its units.

(c)(iii)

Use the stability constant data in Table 3.1 to calculate the value of the equilibrium constant, KcK_{\text{c}}, for the following equilibrium.

[Fe(H2O)5(H2PO4)]2++SCN[Fe(H2O)5SCN]2++H2PO4[\text{Fe}(\text{H}_2\text{O})_5(\text{H}_2\text{PO}_4)]^{2+} + \text{SCN}^- \rightleftharpoons [\text{Fe}(\text{H}_2\text{O})_5\text{SCN}]^{2+} + \text{H}_2\text{PO}_4^-
Similar questions
Q42024 May/Jun·P428 partsMedium-Easy
(a)(i)

Explain why transition elements have variable oxidation states.

(a)(ii)

Sketch the shape of a 3dz23\text{d}_{z^2} orbital in Fig. 4.1.

(b)

Samples of [Cu(H2O)6]2+(aq)[\text{Cu}(\text{H}_2\text{O})_6]^{2+}(\text{aq}) are reacted separately with an excess of solution A\mathbf{A} and with an excess of solution B\mathbf{B}.

The reaction of [Cu(H2O)6]2+(aq)[\text{Cu}(\text{H}_2\text{O})_6]^{2+}(\text{aq}) with solution A\mathbf{A} is a precipitation reaction.

The reaction of [Cu(H2O)6]2+(aq)[\text{Cu}(\text{H}_2\text{O})_6]^{2+}(\text{aq}) with solution B\mathbf{B} is a ligand substitution reaction.

Suggest a possible identity for solution A\mathbf{A} and for solution B\mathbf{B}. Give relevant observations and the formula of the copper-containing product for each reaction.

solution A\mathbf{A} ..................................................................................................................

observations .............................................................................................................................

formula of the copper-containing product .................................................................................

solution B\mathbf{B} ..................................................................................................................

observations .............................................................................................................................

formula of the copper-containing product .................................................................................

(c)

Solutions containing the [Ag(NH3)2]+[\text{Ag}(\text{NH}_3)_2]^+ complex are colourless.

Explain why this complex is colourless.

(d)

Two bidentate ligands are shown in Fig. 4.2.

Explain what is meant by a bidentate ligand.

(e)(i)

Complete the three-dimensional diagrams in Fig. 4.3 to show the three different stereoisomers of [Ru(dpys)2Cl2]+[\text{Ru}(\text{dpys})_2\text{Cl}_2]^+.

The dpys ligand can be represented using

(e)(ii)

State the different types of stereoisomerism shown by [Ru(dpys)2Cl2]+[\text{Ru}(\text{dpys})_2\text{Cl}_2]^+.

(e)(iii)

Deduce which stereoisomers in (e)(i) are non-polar. Explain your answer.

Similar questions
Q52024 Oct/Nov·P414 partsEasy
(a)

Label one bond angle on each of complexes P\mathbf{P}, Q\mathbf{Q}, R\mathbf{R} and S\mathbf{S}, and identify the size of the angle in degrees.

(b)

Identify the shapes of complexes P\mathbf{P}, Q\mathbf{Q}, R\mathbf{R} and S\mathbf{S}.

P\mathbf{P} ...............................................................................................................................................

Q\mathbf{Q} ...............................................................................................................................................

R\mathbf{R} ...............................................................................................................................................

S\mathbf{S} ...............................................................................................................................................

(c)

Two L\mathbf{L} ligands are exchanged with two different monodentate ligands X\mathbf{X} and Y\mathbf{Y} in each of complexes P\mathbf{P}, Q\mathbf{Q}, R\mathbf{R} and S\mathbf{S}.

Identify all the complexes which form new complexes that show geometrical isomerism.

(d)

Three L\mathbf{L} ligands are exchanged with three different monodentate ligands X\mathbf{X}, Y\mathbf{Y} and Z\mathbf{Z} in each of complexes P\mathbf{P}, Q\mathbf{Q} and R\mathbf{R}.

Identify all the complexes which form new complexes that show optical isomerism.

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