Market Failures, Externalities, and Public Goods
Markets are amazing — but sometimes they get it spectacularly wrong
Markets are amazing — but sometimes they get it spectacularly wrong
In your textbook, markets sound like a beautiful, self-correcting machine. Supply meets demand, price adjusts, resources flow to their best use. Efficient. Elegant. Automatic.
But here’s the thing economists don’t always shout loudly enough: markets only work perfectly under a very specific set of conditions. When those conditions break down, we get market failure — situations where the free market produces outcomes that are genuinely bad for society.
This matters enormously for policy. Climate change, vaccines, air pollution, traffic jams, street lighting — all of these involve some kind of market failure. Understanding market failures is basically understanding when and why the government might need to step in.
Imagine a factory that produces cheap steel. Great for the economy, right? But the factory also pumps toxic smoke into the air. Nearby residents get respiratory problems. Hospital bills rise. Crop yields fall. Property values drop.
The factory doesn’t pay for any of this. It’s not in their accounts. But it’s a real cost — just one that gets shunted onto people who had nothing to do with the transaction. This is a negative externality.
The result? The factory produces too much steel relative to what’s socially optimal. Because it only sees its private costs (labour, materials, energy) — not the full social costs. Society would be better off with less steel and less pollution.
Here’s the key insight:
Arthur Pigou’s (1920) solution is elegant: tax the polluter exactly the amount of damage they cause. If every tonne of CO₂ causes £80 of damage to society, add an £80 tax per tonne. Now the factory internalises the external cost — it acts as if the social cost is the private cost. Market output falls to the socially optimal level.
Optimal Pigouvian Tax = External damage per unit (at the socially optimal quantity)
A chemical plant produces with PMC = £20/unit. It causes £8 of pollution damage per unit. Demand: P = 50 − 0.04Q.
Now flip it. Vaccines don’t just protect you — they protect everyone around you. When enough people are vaccinated, diseases can’t spread (herd immunity). So when you get vaccinated, you create a benefit for every person you would otherwise have infected. They didn’t pay for that benefit. You didn’t charge them for it.
This is a positive externality. And the problem is the opposite of pollution: because the person making the decision doesn’t get all the social benefits, they don’t do enough of the activity. People get vaccinated at lower rates than is socially optimal. The market underproduces.
The fix? A subsidy to make the activity cheaper and bring quantity up to the social optimum. Or just provide it publicly — which is exactly why governments run free vaccination programmes.
In 1960, Ronald Coase made a provocative argument. Forget Pigouvian taxes, he said. If property rights are clear and it’s easy for people to negotiate, then private bargaining will fix externalities automatically — and government intervention isn’t needed.
Example: A train emits sparks that burn a farmer’s crops. Damage = £500. Installing spark-catchers costs the railway £200.
The point: the efficient solution (install the spark-catchers) happens regardless of who has the legal right, as long as they can talk to each other.
Fireworks on New Year’s Eve. National defence. Flood defences. Street lighting. What do these have in common?
They’re all public goods:
The problem? Because nobody can be excluded from benefiting, nobody has an incentive to pay voluntarily. Everyone waits for someone else to pay — hoping to free-ride on their contribution. If everyone free-rides, nobody provides the good — even though everyone wants it.
This is why national defence, street lighting, flood defences and basic scientific research are government-funded. Private markets won’t supply them adequately — or at all.
George Akerlof’s 1970 paper “The Market for Lemons” is one of the most clever economics papers ever written. It asks: what happens in the used car market when sellers know more about the quality of the car than buyers?
Buyers can’t tell a good car from a bad one (“lemon”). So they offer the average expected price. But sellers of good cars think: “My car is worth more than that.” So they pull out. Now the average quality in the market falls. Buyers figure this out and lower their offers. More good cars leave. Eventually only lemons remain — or the market collapses entirely.
This “adverse selection” problem shows up everywhere: health insurance (sick people are more eager to buy), credit markets (riskier borrowers are more eager for loans), hiring (bad workers are more eager to take any job).
Sugary drinks cause obesity and tooth decay — costs that fall partly on the NHS (a negative externality). In 2018, the UK introduced a tiered sugar tax: 18p/litre for drinks with 5–8g sugar per 100ml, and 24p/litre above 8g.
Here’s the brilliant part: companies didn’t mainly raise prices — they reformulated their drinks to reduce sugar content before the tax even kicked in. Scarborough et al. (2020) found sugar content in covered drinks fell by 43.7%. The Pigouvian tax worked — not just by discouraging consumption, but by changing how products are made.
The EU Emissions Trading System (EU ETS) is a cap-and-trade scheme. The government sets a total cap on carbon emissions and issues permits up to that cap. Companies that emit less can sell spare permits to companies that emit more. The price of a permit equals the market’s marginal abatement cost.
Dechezleprêtre et al. (2018) found that firms covered by the ETS invested 15–25% more in clean technology than uncovered firms. The carbon price creates an incentive to innovate — which is exactly what Pigouvian taxation is supposed to do.
Sources: Scarborough et al. (2020). PLOS Medicine. Dechezleprêtre et al. (2018). NBER Working Paper 24194.
A power station produces electricity with PMC = £40/MWh and causes £15/MWh of pollution damage. Demand is P = 100 − 0.05Q. Find: (a) the market equilibrium quantity, (b) the socially optimal quantity, (c) the Pigouvian tax, (d) the deadweight loss.
(a) 40 = 100 − 0.05Q → QM = 1,200 MWh
(b) SMC = 40 + 15 = 55 = 100 − 0.05Q → Q* = 900 MWh
(c) Pigouvian tax = £15/MWh (the external damage per unit)
(d) DWL = ½ × (1,200 − 900) × (55 − 40) = ½ × 300 × 15 = £2,250 per day
Is a firework display a public good? Explain using the two key properties and why private markets would underprovide it.
Non-rival: One person watching fireworks doesn’t stop anyone else from watching them. The display is consumed simultaneously by thousands — it’s not used up by one person’s viewing.
Non-excludable: Once the fireworks are in the sky, you can’t prevent anyone in the area from seeing them — even people who didn’t buy a ticket or contribute to the cost.
Why markets underprovide: Because non-excludability creates a free-rider problem. Rational people won’t voluntarily pay for the display knowing they’ll get to watch for free anyway. If a private company tried to sell fireworks displays, they’d struggle to collect revenue from all the people who benefit. So private provision leads to fewer displays (or none) than society actually wants — a classic market failure requiring public funding or a subsidy.
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