Lesson 3.2.5.4
3.2.5.4 Formation of coloured ions Quiz: AQA Chemistry, Unit 2
20 questions
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Lesson 3.2.5.4, Formation of coloured ions: 20 multiple choice questions for the AQA Chemistry (7405), Unit 2: Inorganic chemistry, written with Revision Ninja.
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The 20 questions
-
Why are transition metal compounds coloured?
- Some wavelengths of visible light are absorbed and the remaining wavelengths are transmitted or reflected
- They emit light when heated only
- All wavelengths of visible light are absorbed
- They reflect ultraviolet light only
-
What happens to d electrons when light is absorbed by a transition metal ion?
- They move from the excited state to a higher shell
- They are removed from the ion completely
- They are converted to neutrons
- They move from the ground state to an excited state
-
Which equation gives the energy difference between the ground and excited d electron states?
- delta E = nRT
- delta E = kT
- delta E = mc^2
- delta E = h x nu = hc/lambda
-
Which factor does NOT directly change the energy gap delta E in a transition metal complex?
- The colour of the sample container
- The oxidation state of the metal
- The co-ordination number
- The identity of the ligand
-
What is the wavelength of light absorbed when delta E = 3.98 x 10^-19 J? (h = 6.63 x 10^-34 J s, c = 3.00 x 10^8 m s-1)
- 600 nm
- 700 nm
- 500 nm
- 400 nm
-
A solution absorbs mainly red light. What colour does it appear?
- Yellow
- Red
- Blue-green
- Black
-
What is a simple colorimeter used for in transition metal chemistry?
- Measuring the melting point of a solid
- Counting the number of ligands around a metal
- Determining the concentration of coloured ions in solution
- Measuring the pH of a solution directly
-
What does a colorimeter calibration graph plot?
- Temperature against time
- Absorbance against concentration of the coloured solution
- Concentration against pH
- Mass against volume
-
Why does the colour of [Cu(H2O)6]2+ change when it reacts with ammonia to form [Cu(NH3)4(H2O)2]2+?
- Ammonia removes the d electrons from copper
- A gas is evolved that changes the light transmitted
- The copper ion is reduced to copper metal
- The change of ligand alters the energy gap delta E between d levels, so a different wavelength is absorbed
-
Why is the colour of [Cu(H2O)6]2+ different from that of [CuCl4]2-?
- The copper ion has different electrons in each complex
- The different ligands change delta E, so different wavelengths of visible light are absorbed
- The water ligands are coloured but the chloride ligands are not
- The chloride ions are colourless so they remove all colour
-
A solution has an absorbance reading that is directly proportional to concentration. Which law is being obeyed?
- Charles's law
- Hess's law
- Boyle's law
- Beer-Lambert law
-
Why is Zn2+(aq) colourless when Cu2+(aq) is coloured?
- Zn2+ does not form any aqueous complexes
- Zn2+ absorbs all visible wavelengths
- Zn2+ is a gas in aqueous solution
- Zn2+ has a full 3d10 sub-level, so no d-d transition in visible light occurs
-
What is the energy gap delta E for absorption of light with wavelength 600 nm? (h = 6.63 x 10^-34 J s, c = 3.00 x 10^8 m s-1)
- 9.9 x 10^-19 J
- 3.3 x 10^-19 J
- 6.6 x 10^-19 J
- 1.1 x 10^-19 J
-
A change in co-ordination number alters the colour of a complex because it changes what?
- The mass of the metal ion
- The number of protons in the nucleus
- The energy gap delta E between the d-electron levels
- The number of electrons in the outer s sub-level only
-
Explain why a colorimeter needs a calibration graph before measuring an unknown copper(II) solution.
- The calibration graph converts colour into a temperature
- The absorbance must be compared with standard solutions of known concentration to find an unknown concentration
- The colorimeter cannot measure absorbance without knowing the pH
- The calibration graph gives the mass of copper directly
-
Which statement explains why the colour of a transition metal complex depends on its ligand?
- Ligands add extra electrons that absorb all light
- Ligands change the splitting of d orbitals, which alters the energy of light absorbed
- Ligands remove the d electrons completely from the metal
- Ligands are always colourless so they do not affect the colour
-
Which transition metal ion gives a blue colour in aqueous solution?
- Na+
- Zn2+
- Ca2+
- Cu2+
-
Which statement about the absorption of visible light is correct?
- Visible light is never absorbed by transition metal ions
- Absorption only occurs at wavelengths shorter than ultraviolet
- Absorption makes all solutions colourless
- Absorption of visible light is used in spectroscopy to identify and measure substances
-
Explain why the absorption of light in a transition metal complex is linked to d electrons.
- The d electrons emit light in the visible region as they fall
- d electrons only absorb ultraviolet radiation
- Absorbed photons supply exactly the energy gap between two d-electron levels, promoting an electron
- Absorbed photons remove d electrons from the metal
-
What is the approximate wavelength in nm for light of energy 2.0 x 10^-19 J? (h = 6.63 x 10^-34 J s, c = 3.00 x 10^8 m s-1)
- 1000 nm
- 100 nm
- 3000 nm
- 500 nm
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