Lesson 1.1.2
1.1.2 Relative masses and mass spectrometry Quiz: Pearson Edexcel Chemistry, Unit 1
20 questions
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Lesson 1.1.2, Relative masses and mass spectrometry: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 1: Atomic Structure and the Periodic Table, written with Revision Ninja.
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The 20 questions
-
What is the main purpose of a mass spectrometer?
- To determine the relative masses and abundances of isotopes or ions
- To measure the boiling point of a liquid sample
- To identify functional groups by their absorption of infrared light
- To separate mixtures by their solubility in solvents
-
In a mass spectrum, what is plotted on the horizontal axis?
- Atomic number of the element
- Retention time of each component in minutes
- Mass-to-charge ratio, m/z
- Relative abundance of each ion
-
What is the relative atomic mass of an element?
- The sum of the masses of all the protons and neutrons found in one atom of the element
- The weighted mean mass of its atoms compared with 1/12 of the mass of a carbon-12 atom
- The mass in grams of one mole of its atoms, which is the same as its molar mass in grams
- The mass of its most abundant isotope measured in kilograms on the standard carbon scale
-
In the mass spectrum of an organic compound, which peak gives the relative molecular mass?
- The fragment ion peak with the smallest m/z value
- The base peak with the greatest relative abundance
- The peak at m/z 1 from hydrogen
- The molecular ion peak, M+
-
What type of substance is the term 'relative formula mass' used for?
- Only simple covalent molecules that contain a fixed number of atoms in each molecule
- Only individual monatomic gases such as the noble gases at room temperature and pressure
- Only gases at room temperature that consist of small molecules with a low molar mass
- Compounds with giant structures, such as ionic compounds
-
An element has isotopes 10 (abundance 20%) and 11 (abundance 80%). What is its relative atomic mass?
- 10.8
- 11.0
- 10.2
- 10.5
-
Element Y has isotopes of mass 63 (69%) and 65 (31%). What is its relative atomic mass to one decimal place?
- 63.3
- 64.0
- 63.6
- 63.1
-
Chlorine has isotopes 35Cl (75%) and 37Cl (25%). What is its relative atomic mass to two decimal places?
- 35.75
- 35.50
- 36.00
- 35.25
-
An element has relative atomic mass 24.3 and two isotopes, 24 and 25 only. What percentage of the sample is the 25 isotope?
- 25%
- 10%
- 30%
- 70%
-
What is the relative molecular mass of ethanol, CH3CH2OH? (Use C = 12, H = 1, O = 16.)
- 45
- 46
- 42
- 44
-
What is the relative formula mass of calcium nitrate, Ca(NO3)2? (Use Ca = 40, N = 14, O = 16.)
- 148
- 172
- 150
- 164
-
Chlorine molecules, Cl2, contain isotopes 35 and 37. At which m/z values do molecular ion peaks appear?
- 70, 74 and 76
- 35, 37 and 74
- 70, 72 and 74
- 68, 70 and 72
-
In the mass spectrum of Cl2, what is the expected ratio of peak heights at m/z 70 : 72 : 74?
- 1 : 2 : 1
- 9 : 6 : 1
- 3 : 2 : 1
- 9 : 3 : 1
-
Why does the mass spectrum of Cl2 show three molecular ion peaks rather than one?
- Chlorine has two isotopes, so molecules can contain 35Cl and 37Cl in different combinations
- Chlorine exists as a mixture of separate Cl atoms and Cl2 molecules, which both give peaks
- Each molecule fragments into three different charged pieces when it is ionised in the spectrometer
- Electrons in chlorine occupy three different shells, and each shell gives its own separate peak
-
A mass spectrum of benzene shows its M+ peak at m/z 78. What is the relative molecular mass of benzene?
- 79
- 78
- 77
- 6
-
Which statement about ions in a mass spectrometer is correct?
- All ions have the same m/z value
- A singly charged ion has z = 1, so its m/z value equals its mass
- Neutral molecules are deflected by the magnetic field
- A doubly charged ion always appears at the same m/z as its molecular ion
-
The relative atomic mass of boron is 10.8. Boron has isotopes 10B and 11B. Which isotope is more abundant?
- 10B, since its mass number is lower
- 11B, since the mean is closer to 11
- 10B, since the mean is closer to 10
- Both are equally abundant
-
Explain why the relative atomic mass of most elements is not a whole number.
- Atoms lose a small amount of mass when they form covalent bonds with neighbouring atoms
- The 12C scale is defined using decimal values, so all relative masses are non-integer values
- Most elements exist as mixtures of isotopes, so the value is a weighted mean of isotopic masses
- Electrons add a small fractional mass to the nucleus of each atom, which shifts the average value
-
What is the mass of 2.0 mol of carbon dioxide, CO2? (Use C = 12, O = 16.)
- 44 g
- 88 g
- 66 g
- 22 g
-
A compound has peaks at m/z 180 and 182 of almost equal height. Which conclusion is best?
- The compound contains two carbon atoms with different isotopes, which give two separate peaks
- The compound contains one chlorine atom, whose isotopes 35Cl and 37Cl are present in equal abundance
- The sample is a mixture of two different compounds, one of mass 180 and one of mass 182
- The compound contains one bromine atom, whose isotopes 79Br and 81Br are almost equally abundant
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