IB Chemistry HLTopic 4 — Energy from FuelsPaper 1 & 2Materials~11 min read
Biofuels
The promise of a biofuel is elegant: the carbon dioxide it releases when burnt is the same carbon dioxide the plant absorbed while growing, so the net addition to the atmosphere is zero. The chemistry behind that claim is worth knowing properly — including the reasons it is never quite true.
📘 What you need to know
Renewable resources are replaced over a short timescale and are sustainable; non-renewable (finite) resources are not.
The three biofuels to know are bioethanol, biodiesel and biogas. All are made from organic matter fixed by biological carbon fixation.
Bioethanol: photosynthesis makes glucose, then fermentation converts glucose to ethanol.
Carbon neutral means the CO2 released on burning equals the CO2 absorbed during growth.
Biodiesel is made by transesterification: triglycerides from vegetable oils react with methanol to give fatty acid methyl esters (FAME) plus glycerol.
Transesterification is catalysed by an acid or an alkali (usually NaOH or KOH), is reversible, and uses excess methanol to shift the equilibrium. Yields can reach 98%.
Biogas comes from anaerobic decomposition of organic waste by microorganisms, and is mostly CH4 and CO2.
Biofuels generally have a lower specific energy than fossil fuels and compete with food crops for land.
Renewable, non-renewable, sustainable
Three words that get used loosely in conversation and precisely in exams.
Renewable — can be replaced over a relatively short period, so will not run out in the foreseeable future. Sometimes called infinite.
Non-renewable or finite — supplies are limited and cannot be replaced within a short time. Fossil fuels are the obvious example.
Sustainable — can be produced at the same rate as, or faster than, it is used. This is the key idea: renewability is about replacement, sustainability is about the rate.
Biofuels are developed to reduce pollution from fossil fuel combustion, to limit contributions to global warming, and because fossil reserves are running down. Whether they truly deliver on the first two points is a question of engineering as much as chemistry.
Bioethanol and the carbon-neutral claim
The route runs in two biological steps. First, green plants absorb carbon dioxide and convert it into glucose:
Then yeast ferments the glucose, anaerobically, into ethanol:
Fermentation
C6H12O6(aq) → 2C2H5OH(aq) + 2CO2(g)
The word bioethanol means nothing more than ethanol made from a biological source. Chemically it is identical to ethanol from crude oil. What differs is the origin of its carbon — and that is what makes the carbon-neutral argument possible.
The loop only closes if the crop is replanted. Cut down a forest to grow the crop and you have released decades of stored carbon that will not be recaptured for decades more.
Be careful with “carbon neutral” in an answer. It is true for the combustion step considered alone. It is not true for the whole life cycle: ploughing, fertiliser manufacture, harvesting, transporting the crop and distilling the ethanol are all usually powered by fossil fuels. The honest phrase is “closer to carbon neutral than petrol”.
Bioethanol as a practical fuel
It burns with an almost invisible flame, which is a genuine safety problem — you cannot see whether a spill is alight.
Its specific energy is lower than petrol, so vehicles need a larger tank or more frequent refuelling.
Blending it with petrol or diesel raises the energy content and makes the flame visible, which is why fuels are sold as blends rather than neat ethanol.
It can be made from sugar cane, maize or waste plant material, so it is genuinely renewable — but the land used raises food-versus-fuel questions.
Biodiesel: transesterification
Vegetable oils are triglycerides — three long fatty-acid chains all attached to one glycerol backbone. You could in principle burn the oil directly, but the molecules are large and the oil is far too viscous to atomise properly in an injector.
The solution is to cut each chain off the glycerol and attach it to a small methanol molecule instead. Three big chains on one backbone become three separate, much less viscous methyl esters. This swap of one ester’s alcohol for another is called transesterification.
FAME stands for fatty acid methyl esters. Note the mole ratio: one triglyceride needs three methanol molecules, because there are three ester linkages to break.
Two details about the catalysis are worth remembering:
Acid catalysis works by protonating the carbonyl group, making the carbon more open to attack.
Alkali catalysis works by deprotonating the methanol, generating a much more reactive methoxide. Alkalis (NaOH, KOH) are the more common industrial choice.
Because the reaction is reversible, excess methanol is used to shift the position of equilibrium towards the products — a direct application of Le Chatelier’s principle.
Biogas
Biogas needs no crop at all. Microorganisms break down organic waste — food waste, animal slurry, sewage — in the absence of oxygen. These anaerobic conditions are essential; with oxygen present the waste would simply oxidise to CO2 and water, and no methane would form.
The product is mostly methane and carbon dioxide, with traces of gases such as hydrogen sulfide. The proportions depend on what was fed in, and you can calculate them from a balanced equation.
Anaerobic digestion of a carbohydrate
C6H12O6(s) → 3CO2(g) + 3CH4(g)
Carbohydrates give a 50 : 50 mixture. Fats and fatty acids, which contain far more hydrogen per carbon, give a much richer gas — and a richer gas burns better.
WORKED EXAMPLE
Stearic acid, C17H35COOH, decomposes in moist anaerobic conditions according to: C17H35COOH(s) + 8H2O(l) → 5CO2(g) + 13CH4(g) Verify the equation is balanced and calculate the percentage of methane in the biogas by moles. Compare with the value for glucose.
Step 1: Check the balance (formula is C₁₈H₃₆O₂)C: 18 left, 5 + 13 = 18 right ✓H: 36 + 16 = 52 left, 13 × 4 = 52 right ✓O: 2 + 8 = 10 left, 5 × 2 = 10 right ✓Step 2: Percentage methane by moles13 ÷ (5 + 13) × 100 = 72.2%Step 3: Compare with glucoseglucose: 3 ÷ 6 × 100 = 50.0%72.2% methane, against 50.0% from glucosethe fatty acid has far more hydrogen per carbon, so more of it ends up as CH₄
WORKED EXAMPLE
Calculate the maximum mass of ethanol obtainable by fermenting 1.00 kg of glucose. (M: glucose 180.16, ethanol 46.07 g mol−1)
Step 1: Moles of glucosen = 1000 ÷ 180.16 = 5.551 molStep 2: Mole ratio from the equation is 1 : 2n(ethanol) = 2 × 5.551 = 11.10 molStep 3: Convert to massm = 11.10 × 46.07 = 511 g511 g of ethanol, a 51.1% yield by massthe rest of the mass leaves as CO₂ − which is why fermentation vessels bubble
Advantages
Disadvantages
Carbon
Close to carbon neutral and sustainable if crops or trees are replanted; reduces greenhouse gas emissions overall
Farming, fertiliser, transport and processing all consume fossil fuel, so it is not truly neutral
Resources
Renewable; biodiesel and biogas can be made from waste, reducing landfill
Land used for fuel crops may be needed for food; demand can drive deforestation
Economics
Can generate income and jobs in countries with land available for crops
Expensive to convert engines and machinery; harvesting and transport are costly
Performance
Biodiesel and bioethanol work in adapted conventional engines
Lower specific energy than fossil fuels, so more fuel is needed per kilometre
Environment
Biogas turns a waste-disposal problem into an energy source
Crops deplete soil nutrients and usually need fertilisers and pesticides
💡 Exam tip
Define carbon neutral precisely: the CO2 absorbed during growth equals the CO2 released on combustion.
For evaluation questions, always give both sides and then a short judgement. “Advantages and disadvantages” questions expect balance.
Name the process transesterification and the products fatty acid methyl esters and glycerol. Vague answers about “reacting with methanol” score less.
Remember the 1 : 3 ratio of triglyceride to methanol.
For biogas, the essential word is anaerobic, and the reason excess methanol is used in biodiesel is to shift a reversible reaction.
Percentage composition of biogas is worked out from moles, not masses, unless the question says otherwise.
If a question asks whether biofuels solve climate change, mention life-cycle emissions and land use. That is where the higher marks sit.
⚠ Common mix-up
Saying biofuels release no CO2. They release plenty — the claim is about the net change, not the emission.
Treating “renewable” and “carbon neutral” as the same thing. A fuel can be renewable and still have a large carbon footprint from its processing.
Confusing bioethanol with biodiesel. Ethanol comes from fermenting sugars; biodiesel comes from transesterifying oils.
Forgetting that glycerol is a product of transesterification. It is often worth a mark on its own.
Saying biogas is pure methane. It is mostly methane and carbon dioxide.
Allowing oxygen into the biogas argument. Digestion must be anaerobic or you get no methane at all.
Claiming biofuels have higher energy content than fossil fuels. Their specific energy is generally lower.
Up next: Fuel Cells — a way of getting energy out of a fuel without burning it at all, which sidesteps the combustion losses entirely.
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