Atoms, elements and compounds
Specification
AQA: 4.1.1.1
• use the names and symbols of the first 20 elements in the periodic table, the elements in Groups 1 and 7, and other elements in this specificationame compounds of these elements from given formulae or symbol equations
• write word equations for the reactions in this specification
• write formulae and balanced chemical equations for the reactions in this specification.
(HT) write balanced half equations and ionic equations where appropriate.
Edexcel: 1.18 | 1.19 | 1.25 | 1.25 | 1.28
1.18 — understand how elements are arranged in the Periodic Table: • in order of atomic number • in groups and periods.
1.19 — understand how to deduce the electronic configurations of the first 20 elements from their positions in the Periodic Table
1.25 — write word equations and balanced chemical equations (including state symbols): • for reactions studied in this specification • for unfamiliar reactions where suitable information is provided.
1.26 — calculate relative formula masses (including relative molecular masses) (Mr) from relative atomic masses (Ar)
1.28 — understand how to carry out calculations involving amount of substance, relative atomic mass (Ar) and relative formula mass (Mr)
Cambridge: 2.2.6 | 3.2.2 | 3.3.3 (E) | 8.1.1 | 8.1.4
2.2.6 — State that: (a) Group VIII noble gases have a full outer electron shell (b) the number of outer shell electrons is equal to the group number in Groups I to VII (c) the number of occupied electron shells is equal to the period number
3.2.2 — Define relative molecular mass, Mr, as the sum of the relative atomic masses. Relative formula mass, Mr, will be used for ionic compounds
3.3.3 (E) — Use the relationship mass (g) amount of substance (mol) = molar mass (g / mol) to calculate: (a) amount of substance (b) mass (c) molar mass (d) relative atomic mass or relative molecular / formula mass (e) number of particles, using the value of the Avogadro constant
8.1.1 — Describe the Periodic Table as an arrangement of elements in periods and groups and in order of increasing proton number / atomic number
8.1.4 — Explain similarities in the chemical properties of elements in the same group of the Periodic Table in terms of their electronic configuration
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Structure of an Atom |
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• An atom consists of a central nucleus containing protons and neutrons, with electrons orbiting the nucleus. |
The Periodic Table |
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• There are around 100 different elements, all organised into the periodic table where each box represents a different element. |
Atomic Number |
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• The atomic number is the number of protons in the nucleus of an atom and is unique to each element. |
What Are Isotopes? |
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• Isotopes are different forms of the same element that have the same number of protons but a different number of neutrons. |
Isotopes of Carbon |
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• Carbon-12, the most common form of carbon, has six protons, six neutrons, and six electrons, giving it a mass number of 12. |
Isotopic Abundance |
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• Isotopic abundance refers to how common or rare a particular isotope is within a sample of an element, usually expressed as a percentage. |
Calculating Relative Atomic Mass |
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• The relative atomic mass (Aᵣ) is the average mass of all the isotopes of an element, taking into account their relative abundances. |
Exam Focus – RAM
Supporting Material
Exam Question
Check Point
C________ has six protons, six neutrons, and six electrons
Carbon-12 Carbon 12
Carbon-13 is an isotope of carbon that has six protons and s____ neutrons
seven 7
Different isotopes of the same element have different masses because they contain different numbers of n_______
neutrons
H_____ has two protons and two neutrons in its nucleus, with two electrons orbiting it
Helium
H_______ is the smallest element, with one proton and one electron
hydrogen
I_______ are different forms of the same element that have the same number of protons but a different number of neutrons
isotopes
The number of p______ in an atom determines which element it is
protons
The relative atomic mass is calculated using the equation: sum of (isotope abundance x isotope mass) d______ by the sum of all isotope abundances
divided
The relative atomic mass of copper, calculated from its two stable isotopes, is 6_
63
There are around 1__ different elements, organised into the periodic table
100 one hundred
Mixtures
Specification
AQA: 4.1.1.2
• describe, explain and give examples of the specified processes of separation
• suggest suitable separation and purification techniques for mixtures when given appropriate information.
Edexcel: 1.10 | 1.25 | 1.31
1.10 — describe these experimental techniques for the separation of mixtures: • simple distillation • fractional distillation • filtration • crystallisation • paper chromatography.
1.25 — write word equations and balanced chemical equations (including state symbols): • for reactions studied in this specification • for unfamiliar reactions where suitable information is provided.
1.31 — understand how the formulae of simple compounds can be obtained experimentally, including metal oxides, water and salts containing water of crystallisation
Cambridge: 12.4.1 | 12.4.2
12.4.1 — Describe and explain methods of separation and purification using: (a) a suitable solvent (b) filtration (c) crystallisation (d) simple distillation (e) fractional distillation
12.4.2 — Suggest suitable separation and purification techniques, given information about the substances involved
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What is a Molecule? |
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• A molecule is a group of two or more atoms held together by chemical bonds. |
What is a Compound? |
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• A compound is a substance that contains two or more different elements chemically bonded together. |
Chemical Formulae |
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• Chemical formulae use element symbols and subscript numbers to show how many atoms of each element are in a molecule, e.g. |
Molecular vs Non-Molecular Compounds |
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• Some compounds, such as sodium chloride (NaCl), exist as giant structures containing millions or billions of atoms rather than small individual molecules. |
What is a Mixture? |
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• A mixture consists of two or more substances that are not chemically combined together. |
Separating Mixtures FiltrationSeparating Mixtures crystallisationSeparating Mixtures distillationSeparating Mixtures ChromatographySeparating Mixtures Chromatogram |
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• Mixtures can be separated using physical methods such as filtration, crystallisation, distillation or Chromatography. |
Key Differences: Molecules, Compounds & MixturesKey Differences: Molecules, Compounds & Mixtures |
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• A molecule contains two or more atoms bonded together, whereas a compound specifically requires two or more different elements. |
Check Point
A c_______ is a substance that contains two or more different elements held together by chemical bonds
compound
In a chemical formula, a s________ number indicates how many atoms of that element are present in one molecule
subscript
In chemical formulas containing brackets, the number o______ the brackets indicates how many of those groups are present
outside
In the formula H____, each molecule of sulfuric acid contains two hydrogen atoms, one sulfur atom, and four oxygen atoms
H2SO4
Oxygen exists as d_______ molecules, meaning two oxygen atoms are bonded together
diatomic
Oxygen, chlorine, and nitrogen are molecules but not compounds because they contain only one type of e______
element
The chemical formula for carbon dioxide is C__, indicating one carbon atom and two oxygen atoms
CO2
Sodium chloride is a non-molecular compound that exists as a giant i____ structure containing millions of atoms
ionic
The chemical formula for water is H__, indicating two hydrogen atoms and one oxygen atom
H2O
The substances in a mixture can be separated using physical methods such as filtration, crystallisation, or d___________
distillation
The development of the model of the atom
Specification
AQA: 4.1.1.3
• describe why the new evidence from the scattering experiment led to a change in the atomic model
• describe the difference between the plum pudding model of the atom and the nuclear model of the atom.
Edexcel: 1.16
1.16 — know what is meant by the terms atomic number, mass number, isotopes and relative atomic mass (Ar)
Cambridge: 2.2.1 | 2.2.2 | 2.2.3 | 2.2.4 | 2.2.5
2.2.1 — Describe the structure of the atom as a central nucleus containing neutrons and protons surrounded by electrons in shells
2.2.2 — State the relative charges and relative masses of a proton, a neutron and an electron
2.2.3 — Define proton number / atomic number as the number of protons in the nucleus of an atom
2.2.4 — Define mass number / nucleon number as the total number of protons and neutrons in the nucleus of an atom
2.2.5 — Determine the electronic configuration of elements and their ions with proton number 1 to 20, e.g. 2,8,3
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Democritus and Early Atomic Theory |
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• The ancient Greek philosopher Democritus (around 500 BC) first proposed that all matter is made up of tiny, indivisible particles called atoms, separated by empty space. |
Dalton’s Solid Sphere Model |
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• In the early 1800s, John Dalton described atoms as solid spheres, proposing that different types of spheres corresponded to the different chemical elements. |
Thomson’s Plum Pudding Model (1897) |
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• In 1897, J.J. Thomson conducted experiments that proved atoms could not be solid spheres, leading to the discovery of negatively charged particles called electrons. |
Rutherford’s Gold Foil Experiment (1909) |
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• Ernest Rutherford and his students fired positively charged alpha particles at a thin sheet of gold foil, expecting them to pass straight through if Thomson’s model were correct. |
The Flaw in Rutherford’s Nuclear Model |
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• A key problem with Rutherford’s nuclear model was that it could not explain why the negatively charged electrons were not pulled into the positively charged nucleus, which would cause the atom to collapse. |
Bohr’s Atomic Model (1913) |
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• In 1913, Niels Bohr proposed that electrons orbit the nucleus in fixed energy levels called shells, in a similar way to how planets orbit the Sun. |
Discovery of Protons and Neutrons |
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• Further experiments by Rutherford revealed that the positive charge within the nucleus is made up of small, discrete particles called protons. |
Check Point
A flaw in Rutherford’s nuclear model was that it could not explain why electrons did not c_______ into the positive nucleus
collapse
Dalton proposed that different types of solid spheres make up the different e_______
elements
Electrons are negatively charged particles that o_____ shells around the nucleus of an atom
occupy
Ernest Rutherford fired positively charged a____ particles at a thin sheet of gold foil in 1909
alpha
In Rutherford’s gold foil experiment, some alpha particles were d________ to the side and a small number were deflected back the way they had come
deflected
John Dalton described atoms as s____ spheres in the 1800s
solid
Niels Bohr proposed in 1913 that electrons orbit the nucleus in f____ shells, similar to how planets orbit the Sun
fixed
The idea that matter is composed of tiny indivisible particles is known as a_____ theory
atomic
The n______ of an atom contains both protons and neutrons
nucleus
Thomson’s experiments showed that atoms contained n_________ charged particles, which we now call electrons
negatively
Relative electrical charges of subatomic particles
Specification
AQA: 4.1.1.4
• Students should be able to use the nuclear model to describe atoms.
Edexcel: 1.16
1.16 — know what is meant by the terms atomic number, mass number, isotopes and relative atomic mass (Ar)
Cambridge: 2.2.1 | 2.2.2 | 2.2.3 | 2.2.4 | 2.2.5
2.2.1 — Describe the structure of the atom as a central nucleus containing neutrons and protons surrounded by electrons in shells
2.2.2 — State the relative charges and relative masses of a proton, a neutron and an electron
2.2.3 — Define proton number / atomic number as the number of protons in the nucleus of an atom
2.2.4 — Define mass number / nucleon number as the total number of protons and neutrons in the nucleus of an atom
2.2.5 — Determine the electronic configuration of elements and their ions with proton number 1 to 20, e.g. 2,8,3
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What is an Atom? |
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• Everything — living or non-living — is made up of incredibly tiny particles called atoms. |
Basic Structure of an Atom |
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• An atom consists of a central nucleus surrounded by electrons that orbit in regions called shells. |
Relative Mass of Subatomic Particles |
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• Protons and neutrons both have a relative mass of 1, as they are similar in size. |
Relative Charge of Subatomic Particles |
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• Protons carry a relative charge of +1 — both ‘proton’ and ‘positive’ begin with the letter P, which helps you remember this. |
Overall Charge of an Atom |
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• In a neutral atom, the number of protons always equals the number of electrons, so the positive and negative charges cancel out. |
Ions — Charged Atoms |
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• When an atom gains or loses electrons, the charges no longer balance and the atom becomes a charged particle called an ion. |
Elements and the Periodic Table |
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• Each different type of atom is called an element, and every element has its own box in the periodic table. |
Atomic Number |
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• The atomic number, found in the bottom left of the nuclear symbol, tells you the number of protons in an atom of that element. |
Mass Number and Calculating Neutrons |
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• The mass number, found in the top left of the nuclear symbol, gives the total number of protons and neutrons in the nucleus. |
Quick Reference: Subatomic Particles Summary |
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• Protons: located in the nucleus, relative mass = 1, relative charge = +1. |
Check Point
A positive ion is formed when an atom l____ one or more electrons, giving it more protons than electrons
loses
An atom consists of a central n______ surrounded by electrons that orbit in shells
nucleus
Electrons have a n_________ relative mass and a relative charge of minus one
negligible
Most of the volume of an atom is e____ space between the nucleus and the orbiting electrons
empty
The a_____ number of an element tells us the number of protons in the nucleus of its atoms
atomic
The m___ number of an atom is the total number of protons and neutrons in its nucleus
mass
The nucleus of an atom is made up of protons and n_______ packed tightly together
neutrons
The number of neutrons in an atom is calculated by s__________ the atomic number from the mass number
subtracting
The relative mass of an electron is approximately 2____ times smaller than that of a proton or neutron
2,000 2000, two thousand
When an atom loses or gains electrons, it becomes a charged particle called an i__
ion
Size and mass of atoms
Specification
AQA: 4.1.1.5
• Students should be able to calculate the numbers of protons, neutrons and electrons in an atom or ion, given its atomic number and mass number.
• Students should be able to relate size and scale of atoms to objects in the physical world.
Edexcel: 1.16
1.16 — know what is meant by the terms atomic number, mass number, isotopes and relative atomic mass (Ar)
Cambridge: 2.2.1 | 2.2.2 | 2.2.3 | 2.2.4 | 2.2.5
2.2.1 — Describe the structure of the atom as a central nucleus containing neutrons and protons surrounded by electrons in shells
2.2.2 — State the relative charges and relative masses of a proton, a neutron and an electron
2.2.3 — Define proton number / atomic number as the number of protons in the nucleus of an atom
2.2.4 — Define mass number / nucleon number as the total number of protons and neutrons in the nucleus of an atom
2.2.5 — Determine the electronic configuration of elements and their ions with proton number 1 to 20, e.g. 2,8,3
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What is an Ion? |
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• An ion is a charged particle that can be a single atom, such as Na⁺, or a group of atoms, such as the hydroxide ion (–OH ). |
The Periodic Table and Outer Shell Electrons |
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• The group number in the periodic table tells you how many electrons an atom has in its outermost shell — for example, Group 1 elements have one outer electron. |
Which Groups Commonly Form Ions? |
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• Group 1 elements (alkali metals) lose one electron to form 1+ ions, as this requires very little energy. |
Writing Equations for Ion Formation |
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• When an atom loses electrons to form a positive ion, the electron(s) are written on the right-hand side of the equation, e.g. |
Check Point
Alkali metals l___ one electron to form 1+ ions
lose
An ion is a c______ particle that can be a single atom or a group of atoms
charged
Elements in groups three, four, and five r_____ form ions because gaining or losing three or four electrons requires too much energy
rarely
Forming ions requires energy, so atoms that only need to lose or gain one or two electrons form ions more r______
readily
Group one elements are called the a_____ metals
alkali
Group s__ elements gain two electrons to form 2- ions
six
Ions are formed when atoms gain or lose e________
electrons
The g____ number in the periodic table indicates how many electrons an atom has in its outermost shell
group
When a chlorine atom gains one electron, it forms a c_______ ion with a charge of 1-
chloride
When a s_____ atom loses an electron, it forms a sodium ion with a charge of 1+
sodium
Relative atomic mass
Specification
AQA: 4.1.1.6
• Students should be able to calculate the relative atomic mass of an element given the percentage abundance of its isotopes.
Edexcel: 1.16 | 1.17
1.16 — know what is meant by the terms atomic number, mass number, isotopes and relative atomic mass (Ar)
1.17 — be able to calculate the relative atomic mass of an element (Ar) from isotopic abundances
Cambridge: 2.3.4 (E) | 3.2.2
2.3.4 (E) — Calculate the relative atomic mass of an element from the relative masses and abundances of its isotopes
3.2.2 — Define relative molecular mass, Mr, as the sum of the relative atomic masses. Relative formula mass, Mr, will be used for ionic compounds
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Introduction |
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• The mass number of an element is the total number of protons and neutrons in its nucleus, found in the top left of its nuclear symbol. |
What is Relative Formula Mass |
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• Relative formula mass (Mr) is the average mass of an entire compound, calculated by adding together the Ar values of all atoms in its molecular formula. |
Calculating Mr : Magnesium Chloride Example |
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• Magnesium chloride has the formula MgCl₂, containing one magnesium atom (Ar = 24) and two chlorine atoms (Ar = 35.5 each). |
Calculating Mr : Sulfuric Acid Example |
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• Sulfuric acid has the formula H₂SO₄, containing two hydrogen atoms (Ar = 1), one sulfur atom (Ar = 32), and four oxygen atoms (Ar = 16). |
Calculating Percentage Mass of an Element |
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• The percentage mass of an element in a compound is calculated using the formula: (Ar × number of atoms of that element) / Mr × 100 For sulfur in sulfuric acid: 32 × 198 × 100 = 32.7%, meaning sulfur makes up 32.7% of the mass of sulfuric acid. |
Percentage Mass: Calcium Hydroxide Example |
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• Calcium hydroxide has the formula Ca(OH)₂, meaning the subscript 2 applies to both the oxygen and hydrogen inside the brackets. |
Key Tips for Exam Success |
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• Always use the periodic table to look up Ar values rather than trying to memorise them. |
Exam Focus – RFM
Supporting Material
Exam Question
Check Point
Calcium hydroxide has the molecular formula C______
Ca(OH)2
Chlorine has a relative atomic mass of 35.5 because it is the w_______ average of its isotopes with mass numbers 35 and 37
weighted
Sulfuric acid has the molecular formula H____
H2SO4
The mass number of an element is the total number of protons plus n_______ in its nucleus
neutrons
The molecular formula of magnesium chloride is M____
MgCl2
The percentage mass of oxygen in calcium hydroxide (Ca(OH)2) is 4____, calculated as (16 x 2 / 74) x 100
43
The percentage mass of sulfur in sulfuric acid (H2SO4) is 3____, calculated as (32 x 1 / 98) x 100
32
The relative atomic mass (Ar) is the average mass of all the isotopes of an element, weighted by their a________
abundance
The relative atomic mass differs from the mass number because it accounts for the existence of i_______ of that element
isotopes
The relative formula mass of magnesium chloride (MgCl2) is 9_, calculated as 24 + (35.5 x 2)
95
Electronic structure
Specification
AQA: 4.1.1.7
• represent the electronic structures of the first twenty elements of the periodic table using numbers and diagrams.
Edexcel: 1.16
1.16 — know what is meant by the terms atomic number, mass number, isotopes and relative atomic mass (Ar)
Cambridge: 2.2.1 | 2.2.2 | 2.2.3 | 2.2.5 | 2.2.6
2.2.1 — Describe the structure of the atom as a central nucleus containing neutrons and protons surrounded by electrons in shells
2.2.2 — State the relative charges and relative masses of a proton, a neutron and an electron
2.2.3 — Define proton number / atomic number as the number of protons in the nucleus of an atom
2.2.5 — Determine the electronic configuration of elements and their ions with proton number 1 to 20, e.g. 2,8,3
2.2.6 — State that: (a) Group VIII noble gases have a full outer electron shell (b) the number of outer shell electrons is equal to the group number in Groups I to VII (c) the number of occupied electron shells is equal to the period number
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Review |
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• Every shell is a different energy level. |
Rules for Filling Electron Shells |
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• The first shell, closest to the nucleus and with the lowest energy level, fills first and can hold a maximum of 2 electrons. |
Writing Electron Configurations |
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• The electron arrangement of an atom can be written as a series of numbers separated by commas, each number representing the electrons in successive shells. |
Stability and the Full Outer Shell |
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• An atom is considered stable when its outermost shell (the shell furthest from the nucleus) is completely full. |
Noble Gases: The Stable Exception |
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• The noble gases, found in Group 0 of the periodic table, are the exception because they already have completely full outer shells. |
Worked Example: Argon |
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• Argon has an atomic number of 18, so it has 18 electrons arranged as 2, 8, 8 across three shells. |
Worked Example: Calcium |
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• Calcium has an atomic number of 20, giving it the electron arrangement 2, 8, 8, 2 across four shells. |
Ions and Ionic Charge |
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• An ion is formed when an atom gains or loses electrons, resulting in an overall positive or negative charge. |
Worked Example: Fluorine |
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• Fluorine has an atomic number of 9, giving it the electron arrangement 2, 7, meaning its outer shell has 7 out of a possible 8 electrons. |
Check Point
An atom is described as u_______ when its outermost shell is not completely full
unstable
Argon has an atomic number of 1_ and an electron arrangement of 2, 8, 8
18
Atoms with i_________ outer shells will react with other atoms to gain or lose electrons
incomplete
Because n____ gases have full outer shells, they do not react with other elements
noble
Electron arrangements can be represented n__________, for example sodium is written as 2, 8, 1
MgCl2
Fluorine has an atomic number of _ and an electron arrangement of 2, 7
9
Sodium has an atomic number of 1_, giving it an electron arrangement of 2, 8, 1
11
The atomic number of an element tells you both the number of protons and the number of electrons in a n______ atom
neutral
The first electron shell can hold a maximum of t__ electrons
two
When fluorine gains one electron, it forms a f_______ ion with a charge of 1-
fluoride

