IB Chemistry SL Topic 7 — Experimental Techniques Paper 1 & 2 Practical skill ~11 min read

Safety, Ethical and Environmental Considerations

Nearly every student writes “wear goggles and a lab coat” and nearly every student loses the mark. What examiners actually want is the thing you were protecting yourself from, and why the precaution deals with it.

📚 What you need to know

Hazard is not risk

These two words get used interchangeably in ordinary speech and they are not interchangeable here. Take hydrochloric acid. Concentrated, it is corrosive; moderately concentrated, it is an irritant; dilute, it is not classified as hazardous at all. That is the hazard, and it is a property of the bottle.

Now think about what you do with it. Pouring it into a burette held above your head is far more likely to end badly than filling the burette below eye level. Nothing about the acid changed — the risk did.

TWO WORDS THAT ARE NOT THE SAME WORDHAZARDRISKa property of the substancea property of the situationconcentrated HCl: corrosivehow much of it are you using?less concentrated: an irritantis it above or below eye level?dilute: not classifiedwill it be heated? who by?you cannot change thisthis is what you controlgoggles do not make the acid less corrosive, only less likely to reach youevery precaution you suggest is a change to the right-hand column, never the left
The only way to reduce the hazard is to change the substance itself — use a lower concentration, or a different chemical altogether.
If a question says “state the hazard”, name a property: corrosive, flammable, toxic. If it says “state the risk”, describe a situation: acid splashing into the eyes while the burette is filled. Getting these the wrong way round costs marks that cost nothing to keep.

Hazard warning symbols

Standardised symbols appear on labels and on safety data sheets so that the hazard is obvious without reading anything. They sit in a red diamond with a white background, and there are nine altogether. These are the ones you are most likely to meet.

SymbolWhat it warns aboutTypical example
Corrosiveburns skin and causes permanent eye damageconcentrated acids and alkalis
Health hazardskin rashes, eye irritation, harmful if swallowedmany dilute laboratory solutions
Flammablecatches fire when heated or near a flameethanol, hexane, propanone
Acute toxicitylife-threatening even in small amountscyanide salts, methanol
Oxidisingmay cause fire or explosion in contact with fuelpotassium manganate(VII), nitrates
Hazardous to the environmenta threat to aquatic life and ecosystemsheavy metal ions, halogenated solvents

Carrying out a risk assessment

🧩 The three stages

  1. Identify the hazards. List every chemical you will use and every one you will produce, then note which are classified as hazardous.
  2. Assess the risks. Judge how likely and how severe harm would be. Consider the amount used, whether it will be heated, the experience of the person doing it, and whether a gas is given off that could be inhaled. Grade each as low, medium or high.
  3. Implement control measures. Choose precautions that bring each risk down to an acceptable level, and plan what to do if something is spilt.

Do not skip the products. A reaction can start with two harmless-looking solutions and generate a toxic gas, and it is the gas that determines whether the step belongs in a fume cupboard.

CONTROL MEASURES, MOST EFFECTIVE FIRST12345ELIMINATEdo not use the chemical at allSUBSTITUTEswap in a weaker or safer alternativeGOOD PRACTICEcap bottles, keep flammables from heatSAFETY EQUIPMENTfume cupboard, safety screen, water bathPPEgoggles, gloves, lab coat: the last lineremoving the hazard beats protecting yourself from itPPE only works while it is worn correctly, which is why it comes last
PPE is not wrong, it is simply the weakest measure. If a question asks you to reduce a risk, look for a change higher up the ladder first.
Every laboratory chemical has a material safety data sheet (MSDS). It lists the hazards, the safe handling conditions and what to do after a spill or exposure, and it is the proper source for a risk assessment — not memory. Anything you decant into another container must be labelled with the chemical name, its concentration and any hazard symbols.

Environmental impact

The investigation does not end when the results are recorded. Unused reactants and products have to go somewhere, and “down the sink” is often the wrong answer — heavy metal ions and halogenated solvents in particular are a threat to aquatic life.

Green chemistry is the framework for designing processes that avoid the problem rather than clean it up afterwards. There are twelve principles in the full set; these are the ones you can actually apply to a school investigation.

What you changeWhy it helps
Work on a smaller scale (micro-scale apparatus)less waste produced and less material at risk in a spill
Reduce volumes and concentrations of reagentslowers the hazard as well as the amount of waste
Choose water or a simple alcohol as the solventavoids halogenated and highly volatile solvents
Use a catalyst where one existsa lower temperature means less energy consumed
Reuse excess reactants and productsless new material has to be made or disposed of
Look at the atom economy of the routea higher atom economy means fewer atoms end up as waste

Ethical considerations

These are less obvious in chemistry than in biology, but they still exist and the syllabus expects you to have thought about them. If human participants are involved in any way — even a taste test or a survey — you need their informed consent. If animals are involved, the established guidelines and protocols for animal experimentation must be followed.

WORKED EXAMPLE

Explain, using hydrochloric acid as an example, the difference between a hazard and a risk. State whether wearing eye protection changes the hazard, the risk, or both.

The hazard The potential of the acid to cause harm, which comes from the substance itself. Concentrated HCl is corrosive; dilute HCl is not classified as hazardous. set by the chemical and its concentration The risk The likelihood that harm actually occurs, which comes from how the acid is used: the volume, whether it is heated, and whether the burette is filled above eye level. set by the procedure The eye protection it reduces the risk only The acid is exactly as corrosive as it was. All the goggles do is make it less likely to reach an eye.
WORKED EXAMPLE

A student plans to heat concentrated hydrochloric acid with manganese(IV) oxide, which releases chlorine gas. Suggest a suitable safety precaution and justify it.

Name the hazard first Chlorine gas is toxic and it is produced in the reaction, so the hazard comes from the product rather than the starting materials. Then the precaution carry the reaction out in a fume cupboard Then the justification The fume cupboard draws the toxic gas away so that it cannot be inhaled, which reduces the risk of harm. “Wear goggles and a lab coat” would score nothing here. It is standard practice in any laboratory, and it does not address the gas.
WORKED EXAMPLE

An investigation uses 250 cm3 of 1.0 mol dm–3 copper(II) sulfate solution per trial. Suggest two changes that would reduce the environmental impact, and explain each.

Change 1 — scale it down Run the trials with micro-scale apparatus so that a fraction of the volume is needed. less copper-containing waste to dispose of Change 2 — collect the waste Copper ions are hazardous to aquatic life, so the solution should go into a labelled waste container for proper disposal, not down the sink. keeps heavy metal ions out of the water supply A third option worth having ready: use a lower concentration, since that reduces the hazard as well as the waste.

💡 Exam tip

⚠️ Common mix-up

Up next: Measuring Variables — once the plan is safe, the question becomes whether the numbers it produces are any good. That comes down to choosing the right instrument and reading it properly.

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