By the end of this chapter you'll be able to…

  • 1Explain equilibrium as equal forward and reverse rates in a closed system, and cite the isotope-exchange evidence that both directions keep running
  • 2Write and for homogeneous and heterogeneous systems, omitting pure solids and liquids, and convert with
  • 3Compute and predict the direction of net change from the against comparison, and link to thermodynamics through
  • 4Apply Le Chatelier's principle to concentration, pressure, temperature, catalyst and inert gas, distinguishing constant volume from constant pressure
  • 5Apply the Arrhenius, Bronsted-Lowry and Lewis definitions, use for conjugate pairs, and explain why neutrality means equal ion concentrations rather than pH 7
  • 6Calculate the pH of weak acids, buffers and hydrolysing salts, and predict precipitation by comparing the ionic product with
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Why this chapter matters in JEE Main
Equilibrium is not a reaction that stopped. Both directions continue at equal rates, one number K fixes where the balance sits, and every prediction in the chapter comes from comparing the current state Q against that fixed K. Le Chatelier's principle is not a separate law but the observation that K refuses to move when the system is disturbed, so the composition must move instead until Q equals K again. Hold that and the second half of the chapter becomes bookkeeping: a buffer, a solubility product and a hydrolysis calculation are the same equilibrium expression with different names attached. JEE Main favours Kp against Kc conversion, degree of dissociation, weak acid pH, Henderson-Hasselbalch, and precipitation from the ionic product.

Before you start — revise these

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Mole concept, concentration and partial pressure
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Gibbs energy and spontaneity from Chemical Thermodynamics
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Logarithms, and solving a quadratic when the approximation fails
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Ionic compounds and dissociation from Chemical Bonding

Equilibrium

A sealed flask holds 10 g of limestone heated to 1073 K. It decomposes until the carbon dioxide pressure settles at 1.16 atm.

Now open it, tip in another 90 g of limestone, reseal, and reheat to the same temperature. Ten times the solid. What is the new pressure?

Almost everyone says higher. Some say ten times higher.

The answer is 1.16 atm. Exactly what it was before.

A pure solid has a fixed density and a fixed molar concentration. Doubling the pile does not make it more concentrated, so it cannot appear in the expression, so it cannot move the answer. The flask does not know how much limestone is in it.

That is the shape of this whole chapter. is fixed by temperature and nothing else, so when you disturb the system, the composition is what has to move.

This chapter is really two chapters wearing one name. The first half is general equilibrium and Le Chatelier's principle. The second half is ionic equilibrium: acids, bases, buffers, solubility. They look unrelated and they are the same idea applied twice.

The machineWhat it does
depends on temperature aloneFixes the target
has the same form, evaluated nowSays where you currently are
Compare with Gives the direction, every time

Le Chatelier's principle is not a separate law. It is the observation that refuses to move when you disturb the system, so the composition must move instead until equals again.

Hold that and the second half becomes bookkeeping. A buffer, a solubility product and a hydrolysis calculation are the same equilibrium expression with different names attached.

1. Dynamic Equilibrium

Equilibrium. The state in which the forward and reverse rates have become equal, so concentrations stop changing.

Concentrations stop changing. Nothing stops happening. Those are very different claims and the chapter turns on the difference.

forward rate reverse rate equal rate time reactant product c time shaded band: equilibrium both curves flat, neither zero

The evidence that both directions keep running is direct, not inferred. Replace the water above a saturated salt solution with heavy water. Deuterium eventually shows up inside the crystals, although the mass of solid never changed by a milligram.

Equilibrium also requires a closed system. An open beaker never reaches liquid-vapour equilibrium, because the vapour leaves before the reverse rate can catch up.

Physical equilibria

The same idea covers phase changes and dissolution, none of which involve a chemical reaction at all.

ProcessEquilibrium condition
Solid to liquidMelting point, at the given pressure
Liquid to gasVapour pressure equals external pressure at boiling
Solid to gasSublimation pressure
Solute in solutionSaturated solution
Gas dissolved in liquidHenry's law

Henry's law. The partial pressure of a gas above a solution is proportional to its mole fraction in solution.

A larger means a less soluble gas, since sits on the pressure side. Gas solubility falls with rising temperature, which is why a warm fizzy drink goes flat faster than a cold one. The Solutions chapter works this quantitatively.

2. The Equilibrium Constant

For , the law of chemical equilibrium gives

with every concentration measured at equilibrium. For gases, partial pressures give , and the two are related by

where is the change in moles of gas, products minus reactants. When the two constants are numerically equal.

Trap. counts gases only. Solids and liquids in the equation contribute nothing to it, exactly as they contribute nothing to the expression itself.

Illustration 1

At 1073 K, atm for . Find the mass of carbon dioxide in a 10.0 L flask at equilibrium, and state what changes if the mass of limestone is increased tenfold.

Only the gas appears, so the equilibrium pressure is 1.16 atm directly.

Increasing the limestone changes nothing at all. Not the pressure, not the mass of gas, not . A pure solid has a fixed molar concentration set by its density, so adding more of it leaves every term in the expression untouched.

Reading the value

is a verdict on how far the reaction goes, and its magnitude is readable at a glance.

Value of Meaning
Above Essentially complete
Between and Both sides present in comparable amounts
Below Barely proceeds

depends only on temperature. It does not shift with concentration, with pressure, or with a catalyst. This single fact is what makes Le Chatelier's principle work.

Three manipulations recur, and all three follow from the algebra of the expression.

Operation on the equationEffect on
Reverse it
Multiply through by
Add two equationsConstants multiply

Illustration 2

For at 298 K, . Find for and for .

Halving the equation raises to the power one half.

Reversing the original inverts it.

Read the last number. Nitrogen and oxygen sit together in the air at room temperature and essentially none of them combines, while nitric oxide decomposes almost completely if only it can find a route. The exhaust of a car engine contains NO not because equilibrium wants it, but because the gases were briefly at 2000 K and then cooled too fast to come back.

Illustration 3

1.00 mol of is placed in a 2.00 L vessel and 40.0 per cent of it dissociates at 500 K. Find and for .

Set out the amounts. Dissociated: 0.400 mol. Remaining : 0.600 mol. Formed: 0.400 mol each of and .

Divide by 2.00 L for concentrations: 0.300, 0.200 and 0.200 M.

Gas moles rise from 1 to 2, so .

The units are not decoration. carries mol L and carries atm precisely because is not zero, and a question that asks you to convert is testing whether you noticed.

Heterogeneous equilibria

Pure solids and pure liquids are omitted from the expression, because their concentrations are fixed properties of the substance and do not change as the reaction proceeds.

The amount of limestone is irrelevant to the equilibrium pressure. That is the hook this chapter opened on, and it is a favourite exam point precisely because it feels wrong.

The reaction quotient

has exactly the same form as , but uses the concentrations at whatever moment you care about, not only at equilibrium.

K Q = K, no net change Q < K too few products, goes forward Q > K too many products, goes backward the system always moves towards K, never away

This comparison answers every direction-of-shift question in the chapter without any chemical intuition at all, which is exactly why it is more reliable than intuition.

Illustration 4

For , at 298 K. A vessel is found to contain M and M. Which way does the reaction go?

against , so and the reaction runs backward, consuming .

That margin is 9 per cent. No amount of staring at "0.5 M of one and 0.05 M of the other" would have told you which side of it fell on. Compute ; never estimate it.

A negative standard Gibbs energy change corresponds to . This is the bridge to Chemical Thermodynamics, and it is also the reason depends on temperature: the enthalpy term inside is effectively divided by .

Illustration 5

Use for at 298 K to find .

Positive, as a below 1 requires. But notice what the positive sign does not mean: the reaction is not forbidden. It ran until reached 4.6 per cent of the way there, and a sealed tube of is visibly brown. describes the standard state; is what reaches zero at equilibrium.

3. Le Chatelier's Principle

Le Chatelier's principle. A system at equilibrium, when disturbed, shifts in the direction that partly counteracts the disturbance.

DisturbanceEffect on Effect on position
Add reactant, remove productNoneForward, since drops below
Compress the systemNoneTowards fewer moles of gas
Raise the temperatureChanges Towards the endothermic direction
Add a catalystNoneNone, arrives sooner
Inert gas at constant NoneNone, partial pressures unmoved
Inert gas at constant NoneBehaves like expansion, towards more moles

Concentration. Adding a reactant makes , so the system moves forward. Removing a product does the same, which is why ammonia is continuously condensed out of the Haber loop.

Pressure. Compression shifts towards the side with fewer moles of gas. When both sides have equal gas moles, pressure has no effect whatsoever.

Temperature. The only disturbance that touches itself. Heating favours the endothermic direction, so for an exothermic forward reaction, heating reduces and lowers the yield.

Catalyst. It speeds both directions equally. Equilibrium arrives sooner and sits in exactly the same place. A catalyst has never improved a yield in the history of chemistry.

Illustration 6

sits at equilibrium in a sealed vessel. Argon is added, (a) holding the volume constant, (b) holding the total pressure constant. Predict each case.

(a) Constant volume. Argon takes part in nothing and occupies no space that was not already there. The partial pressures of and are each , and neither nor has changed. So is unchanged, and nothing happens. The total pressure rises, and that rise is entirely argon.

(b) Constant pressure. To keep total pressure fixed while adding argon, the vessel must expand. Now has increased, so every partial pressure falls, and the system shifts towards the side with more gas moles to push back: forward, making more .

Trap. "Adding an inert gas increases the pressure, so the equilibrium shifts" is wrong at constant volume and right at constant pressure. The phrase that decides it is which quantity is held fixed, and questions bury that phrase deliberately.

The industrial compromise

The Haber process, , is exothermic and cuts gas moles from 4 to 2.

Le Chatelier therefore wants low temperature and high pressure. Industry runs at roughly 700 K and 200 atm.

The pressure obeys the principle. The temperature flatly disobeys it.

equilibrium yield rate of reaction about 700 K neither is at its best here and that is the point temperature good yield, unusably slow

At the temperature Le Chatelier recommends, the rate is so slow that equilibrium would take years to arrive. A magnificent yield that never materialises is worth nothing. So the plant accepts a worse equilibrium in exchange for reaching it, recovers the ammonia by condensation, and recycles the unreacted gases.

This is the standard illustration that thermodynamics and kinetics can point in opposite directions, and examiners ask it in exactly that form.

4. Acids and Bases

Three definitions, each broader than the last.

ConceptAcidBaseWhat it added
ArrheniusGives in waterGives in waterThe first quantitative account
Bronsted-LowryProton donorProton acceptorWorks outside water
LewisElectron pair acceptorElectron pair donorWorks without a proton

Arrhenius fails outside water. Bronsted-Lowry handles ammonia acting as a base with no hydroxide anywhere in sight. Lewis covers combining with , where no proton moves at all.

Conjugate pair. Two species differing by exactly one proton.

A strong acid has a weak conjugate base, and the relationship is quantitative rather than a slogan.

Knowing either constant gives the other immediately, which halves the number of tables to remember.

Water and the pH scale

Water self-ionises slightly, and that reaction is itself an equilibrium.

The 14 is temperature specific, not universal. Self-ionisation is endothermic, so heating shifts it forward and rises to about at 373 K.

Both ion concentrations rise together, to about M, so the pH of pure boiling water is near 6.14.

Trap. That water is still exactly neutral. Neutrality means , not pH 7. The number 7 is a coincidence of 298 K.

Weak electrolytes

A weak acid ionises only partly, to a degree . Ostwald's dilution law relates the two.

So rises as the solution is diluted while stays fixed. Dilution increases the fraction ionised and decreases the hydrogen ion concentration at the same time.

That pair of statements sounds contradictory. It is not, and the arithmetic settles it in one line.

Illustration 7

Compare 0.10 M and 0.0010 M acetic acid, with .

Quantity0.10 M0.0010 M
0.01340.134
Percentage ionised1.3413.4
pH2.873.87

Dilution by a factor of 100 made the acid ten times more ionised and ten times less acidic.

The resolution: scales as while scales as . A larger share of a much smaller amount is still a smaller amount. There is no paradox, only two different questions being answered by two different quantities.

Polyprotic acids ionise in stages

An acid with more than one ionisable proton loses them one at a time, each stage carrying its own constant.

Stage for ConstantRatio to previous

The reason is electrostatic. Removing a proton from a neutral molecule is far easier than pulling a positive charge away from an ion that is already negative, and harder still from a doubly negative one.

The practical consequence: the first ionisation supplies essentially all the hydrogen ions, so the pH of a polyprotic acid can be computed from alone. Later stages matter only for the concentrations of the intermediate anions.

5. Common Ion Effect and Buffers

Common ion effect. The suppression of the ionisation of a weak electrolyte by adding a strong electrolyte that shares one of its ions.

Add sodium acetate to acetic acid and the acetate concentration jumps, pushing above , so the acid ionises less. That is Le Chatelier applied to an ionic equilibrium, and it is the mechanism behind both buffers and controlled precipitation.

Buffers

Buffer. A solution that resists pH change when small amounts of acid or base are added. It holds a weak acid together with its conjugate base, or a weak base with its conjugate acid.

That is the Henderson-Hasselbalch equation, and three consequences fall straight out of it.

Read off the equationConsequence
Salt equals acid, so the log is zero exactly, and capacity is maximal
Only the ratio appearsDilution does not change the pH
A ten-to-one ratio gives Useful range is
pKa 7 half equivalence equivalence buffer region pKa plus or minus 1 salt of a weak acid, so this lands above 7 pH base added

Basic buffers work identically with the roles reversed. Ammonia with ammonium chloride obeys

and the pH follows by subtracting from 14. Choosing a buffer for a target pH means choosing a weak acid whose lies near it, which is why phosphate and carbonate buffers dominate biology.

Illustration 8

One litre of buffer holds 0.200 mol acetic acid and 0.200 mol sodium acetate, with . Add 0.0100 mol of HCl. Find the new pH, and compare with adding the same HCl to a litre of pure water.

The starting pH is , since the ratio is 1.

Added is mopped up by the acetate, converting it to acetic acid mole for mole.

The same 0.0100 mol of HCl in a litre of pure water gives M and a pH of 2.00.

SystempH beforepH afterChange
Buffer4.744.700.04
Pure water7.002.005.00

A hundred-fold difference in response, from a solution containing nothing exotic. The acetate is a reservoir that absorbs protons without letting them stay free, and the buffer fails only when that reservoir runs out.

Salt hydrolysis

A salt's solution need not be neutral, because its ions may react with water.

Salt fromSolutionReason
Strong acid, strong baseNeutralNeither ion hydrolyses
Weak acid, strong baseBasicAnion accepts a proton from water
Strong acid, weak baseAcidicCation donates a proton to water
Weak acid, weak baseDepends on the two constantsThe stronger partner wins

Sodium acetate gives a basic solution and ammonium chloride an acidic one. Both are the conjugate relationship at work: a weak acid has a conjugate base strong enough to matter.

The extent of hydrolysis is governed by a hydrolysis constant, which for the anion of a weak acid is . Working the equilibrium through gives compact pH expressions.

Note what vanished from the third one. The concentration has dropped out entirely.

Illustration 9

Find the pH of ammonium acetate solution and of ammonium cyanide solution. Take for acetic acid, for HCN, and for ammonia.

For ammonium acetate the two constants are equal.

Exactly neutral, and at any concentration you like. Both ions hydrolyse, and they do it to precisely the same extent, so the two effects cancel.

For ammonium cyanide, cyanide is the conjugate base of a very weak acid.

Distinctly basic. Both salts are made from a weak acid and a weak base, and swapping one partner has moved the solution more than two pH units. In this family the identity of the ions decides everything and the dilution decides nothing.

6. Solubility Product

For a sparingly soluble salt, the solid is in equilibrium with its ions and, being a pure solid, is omitted.

Salt type in terms of Solubility
AB
AB or AB
AB

Trap. Comparing values directly is legitimate only within one formula type. A 1:2 salt and a 1:1 salt with the same have very different solubilities, because the expressions carry different powers of .

Precipitation occurs when the ionic product exceeds , which is the against comparison again in different clothes.

The common ion effect cuts solubility sharply, which is why silver chloride is far less soluble in dilute hydrochloric acid than in water, and why qualitative analysis separates cations by controlling sulphide concentration with pH.

Illustration 10

100 mL of 0.0100 M is mixed with 100 mL of 0.0100 M . Will silver chromate precipitate? Take for .

Mixing doubles the volume, so every concentration halves before anything reacts.

The salt is , so the silver term is squared.

exceeds by five orders of magnitude, so a precipitate forms copiously.

Two steps decide this question and both are routinely skipped. Halve the concentrations for the dilution on mixing, and square the ion that carries a subscript 2. Miss either and the answer can flip.

Summary

Equilibrium is dynamic. Both directions keep running at equal rates in a closed system, so concentrations become constant without anything stopping.

depends only on temperature. Concentration, pressure and catalysts leave it untouched, which is precisely why disturbing the system forces the composition to change instead. Reversing an equation inverts , multiplying it by raises to the power , and adding equations multiplies their constants.

converts between the two forms, counting gases only. Pure solids and liquids are omitted from every expression, so limestone decomposition depends on the carbon dioxide pressure and not at all on how much limestone is present.

Comparing with answers every direction question mechanically, and connects the chapter to thermodynamics.

Le Chatelier's principle covers concentration, pressure and temperature, with temperature alone changing . An inert gas does nothing at constant volume and acts like expansion at constant pressure. A catalyst never improves a yield, and the Haber conditions are a deliberate compromise between yield and rate.

Bronsted-Lowry extends acids and bases beyond water, Lewis beyond protons entirely, and links any conjugate pair. Neutrality means equal hydrogen and hydroxide concentrations, not pH 7, which is why boiling water is neutral at pH 6.14.

Ostwald's dilution law makes rise on dilution while falls, because scales as and as . A weak acid's pH is , and a polyprotic acid's pH comes from alone.

Buffers work by the common ion effect, sit at when salt and acid are equal, are unaffected by dilution, and are useful within one pH unit of .

Solubility product predicts precipitation whenever the ionic product exceeds it, a common ion can cut solubility by orders of magnitude, and values are comparable only between salts of the same formula type.

Key formulas & results

Everything to memorise for the exam hall, in one card. Screenshot this for revision.

The organising principle
$K$ is fixed by temperature alone, so a disturbed system moves its composition, never its $K$
Le Chatelier's principle is this sentence restated. Every prediction in the chapter reduces to comparing $Q$ with $K$ and moving towards it.
Equilibrium constant
$K_c = \dfrac{[C]^c[D]^d}{[A]^a[B]^b}$ for $aA + bB \rightleftharpoons cC + dD$
Concentrations at equilibrium only. Above $10^3$ the reaction is essentially complete, below $10^{-3}$ it barely proceeds, and in between both sides are present in comparable amounts.
Kp against Kc
$K_p = K_c\,(RT)^{\Delta n_g}$
$\Delta n_g$ counts moles of gas only, products minus reactants, so solids and liquids in the equation contribute nothing to it. When $\Delta n_g = 0$ the two are numerically equal.
Manipulating K
reverse: $K \rightarrow 1/K$; multiply by $n$: $K \rightarrow K^n$; add equations: constants multiply
All three follow from the algebra of the expression, not from chemistry. Halving an equation takes the square root of $K$, which is where sign and power slips usually happen.
Heterogeneous equilibria
$\mathrm{CaCO_3(s) \rightleftharpoons CaO(s) + CO_2(g)} \quad\Rightarrow\quad K_p = p_{\mathrm{CO_2}}$
A pure solid has a fixed molar concentration set by its density, so adding more of it changes nothing. The equilibrium pressure of carbon dioxide is the same over 10 g of limestone as over 100 g.
Reaction quotient
$Q < K$ forward, $Q = K$ no net change, $Q > K$ backward
Same form as $K$, evaluated at any moment. This answers every direction-of-shift question mechanically, and margins can be under 10 per cent, so compute $Q$ rather than estimating it.
Thermodynamic link
$\Delta G^\circ = -RT\ln K$
Negative $\Delta G^\circ$ means $K > 1$. A positive $\Delta G^\circ$ does not forbid the reaction, it only places equilibrium on the reactant side; $\Delta G$, not $\Delta G^\circ$, is what reaches zero at equilibrium.
Water and pH
$K_w = [\mathrm{H^+}][\mathrm{OH^-}], \qquad \mathrm{p}K_a + \mathrm{p}K_b = \mathrm{p}K_w$
$K_w = 1.0\times10^{-14}$ at 298 K but rises to about $5.1\times10^{-13}$ at 373 K because self-ionisation is endothermic. Neutral boiling water has pH 6.14 and is still exactly neutral.
Ostwald's dilution law
$K_a = \dfrac{c\alpha^2}{1-\alpha} \approx c\alpha^2 \quad\Rightarrow\quad \alpha = \sqrt{K_a/c}$
Valid below about 5 per cent ionisation. On dilution $\alpha$ scales as $c^{-1/2}$ while $[\mathrm{H^+}] = c\alpha$ scales as $c^{+1/2}$, so the acid gets more ionised and less acidic at once.
Weak acid pH
$[\mathrm{H^+}] = \sqrt{K_a c}, \qquad \mathrm{pH} = \tfrac{1}{2}\left(\mathrm{p}K_a - \log c\right)$
For a polyprotic acid, use $K_{a1}$ alone. Successive constants fall by roughly $10^5$ each time because pulling a proton off an already negative ion costs far more electrostatic work.
Henderson-Hasselbalch
$\mathrm{pH} = \mathrm{p}K_a + \log\dfrac{[\text{salt}]}{[\text{acid}]}, \qquad \mathrm{pOH} = \mathrm{p}K_b + \log\dfrac{[\text{salt}]}{[\text{base}]}$
Only the ratio appears, so dilution leaves the pH unchanged. Capacity peaks at $\mathrm{pH} = \mathrm{p}K_a$ and the useful range is $\mathrm{p}K_a \pm 1$, where the minor component is outnumbered ten to one.
Salt hydrolysis
$\mathrm{pH} = 7 + \tfrac{1}{2}\left(\mathrm{p}K_a + \log c\right)$ and $\mathrm{pH} = 7 + \tfrac{1}{2}\left(\mathrm{p}K_a - \mathrm{p}K_b\right)$
First form for a weak acid with a strong base, using $K_h = K_w/K_a$. In the weak-weak case the concentration drops out entirely, so ammonium acetate is neutral at every dilution and ammonium cyanide is basic at every dilution.
Solubility product
AB: $K_{sp} = s^2$; AB$_2$: $K_{sp} = 4s^3$; A$_2$B$_3$: $K_{sp} = 108\,s^5$
Compare $K_{sp}$ values only within one formula type, since the expressions carry different powers of $s$. Precipitation occurs when the ionic product exceeds $K_{sp}$, which is $Q$ against $K$ once more.
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Traps JEE Main sets — and how to dodge them

These are the exact option-traps and misreads that cost marks under negative marking.

WATCH OUT
Putting a pure solid or liquid into the equilibrium expression
A pure solid or liquid has a fixed molar concentration set by its density, which cannot change as the reaction proceeds, so it folds into the constant. This is why the carbon dioxide pressure over decomposing limestone is identical whether the flask holds 10 g or 100 g of it, and why in the conversion counts only gases.
Why it happens: Every other species in the equation appears, so leaving one out looks like an omission.
WATCH OUT
Believing a catalyst improves the yield
A catalyst lowers the activation energy of the forward and reverse steps by exactly the same amount, so it multiplies both rates equally and leaves untouched. Equilibrium arrives sooner and sits in precisely the same place. That is commercially valuable and thermodynamically irrelevant, and it is why the Haber plant still needs 200 atm despite its iron catalyst.
Why it happens: A catalyst clearly helps the reaction, so it feels as though it should help the outcome too.
WATCH OUT
Saying that adding an inert gas shifts the equilibrium
At constant volume the partial pressures of the reacting gases are each , and neither nor has changed, so is unchanged and nothing happens; the extra pressure is all argon. At constant pressure the vessel must expand, every partial pressure falls, and the system shifts towards the side with more gas moles. Find which quantity the question holds fixed before answering.
Why it happens: The total pressure does rise, and pressure is known to shift equilibria.
WATCH OUT
Assuming pH 7 always means neutral
Neutrality means . Self-ionisation is endothermic, so rises with temperature, and at 373 K both ion concentrations reach about M, giving pure water a pH of 6.14 while it remains exactly neutral. The 7 is a coincidence of 298 K, and is equally temperature specific.
Why it happens: The pH scale is introduced at 298 K and the number 7 is never presented as conditional.
WATCH OUT
Concluding that diluting a weak acid makes it more acidic because rises
Both statements are true and they are not in conflict. From , diluting acetic acid a hundredfold takes from 1.34 per cent to 13.4 per cent, while falls from to and the pH rises from 2.87 to 3.87. A larger share of a much smaller amount is still a smaller amount.
Why it happens: Ostwald's law genuinely does say the degree of ionisation increases on dilution.
WATCH OUT
Comparing values across different formula types, or forgetting the dilution on mixing
AB gives while AB gives , so identical values can mean a fiftyfold difference in solubility. And mixing equal volumes halves every concentration before any reaction is considered, so a precipitation check must dilute first, then raise each ion to the power of its subscript.
Why it happens: looks like a solubility, and two solutions poured together look like they keep their concentrations.

Exam-pattern practice

PYQ-style questions with full solutions. Work through them as a readiness check — mark yourself honestly and get your gap report at the end.

Readiness check

Are you exam-ready for Equilibrium?

12 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

12 questions~8 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Equilibrium is dynamic: rates equal, concentrations constant, nothing stopped; closed system required
  • depends on temperature alone; reverse inverts it, multiplying by powers it, adding equations multiplies constants
  • , counting gases only; pure solids and liquids are omitted, so limestone amount is irrelevant
  • forward, backward; margins can be under 10 per cent, so compute rather than estimate
  • ; a positive places equilibrium on the reactant side, it does not forbid the reaction
  • Le Chatelier: temperature alone changes ; catalysts never change yield; inert gas does nothing at constant and acts like expansion at constant
  • Haber runs at 700 K against Le Chatelier's advice, because a yield that takes years is worth nothing
  • Bronsted-Lowry beyond water, Lewis beyond protons; for any conjugate pair
  • Neutral means , not pH 7; boiling water is neutral at pH 6.14
  • rises on dilution while falls; polyprotic pH comes from alone
  • : dilution-proof, capacity peaks at , useful over
  • Precipitate when ionic product exceeds ; halve concentrations on mixing and raise each ion to its subscript

JEE Main question blueprint

How this topic is asked, tier by tier — so you can prep to the pattern.

Typical weightage: 8

Question styleMarks eachTypical countWhat it tests
Acids, bases and pH31
Equilibrium constant and Le Chatelier21
Buffers and salt hydrolysis21
Solubility product and common ion effect11

Exam-hall strategy

Battle-tested tips from mentors and toppers for this topic under the sectional clock.

  1. Write the expression before anything else, omitting pure solids and liquids, and count from gases only. Most and errors are committed before any arithmetic starts.
  2. For direction questions, compute and compare with rather than reasoning about which species looks abundant. The margin is often under 10 per cent and intuition cannot resolve that.
  3. In Le Chatelier questions, find which quantity is held fixed. Constant volume and constant pressure give opposite answers for an inert gas, and the phrase deciding it is usually buried mid-sentence.
  4. For weak acid pH, use but check afterwards; above 5 per cent, go back and solve the quadratic. For polyprotic acids use alone.
  5. In precipitation questions, halve the concentrations for mixing before doing anything else, then raise each ion to the power of its subscript. Both steps are routinely skipped and either one can flip the answer.

Beyond the exam

Where this skill shows up in the job you're competing for — and in life.

The Haber process runs at about 700 K and 200 atm

The Haber process runs at about 700 K and 200 atm, deliberately accepting a poor equilibrium yield in exchange for a workable rate, then condensing ammonia out and recycling the unreacted gases so the loop is continuously pulled forward by Le Chatelier

Blood is held near pH 7

Blood is held near pH 7.4 by the carbonic acid and bicarbonate buffer, with the lungs and kidneys adjusting each component independently, and a drift of even a few tenths of a unit in either direction is a medical emergency

Qualitative analysis separates metal cations by controlli…

Qualitative analysis separates metal cations by controlling sulphide concentration through pH, since the common ion effect and the solubility product together decide which sulphides precipitate and which stay dissolved

Where else this topic is tested

Prepare once, score in every exam that asks it.

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Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

By labelling the atoms. Put a saturated salt solution under heavy water and the deuterium eventually turns up inside the crystals, although the mass of solid never changed by a milligram. The same trick works with radioactive isotopes: label the iodine in a hydrogen iodide equilibrium and the label redistributes itself across all three species while the concentrations sit perfectly still. Concentrations stopping and reactions stopping are different claims, and every experiment of this kind separates them.

Because what appears in an equilibrium expression is a concentration, and the concentration of a pure solid is fixed by its density and molar mass. A gram of limestone and a kilogram of limestone have exactly the same moles per litre of limestone, so doubling the pile changes no term in the expression. It changes how long the equilibrium can be sustained, since more solid can be consumed before it runs out, but not where the equilibrium sits. This is why the carbon dioxide pressure over decomposing limestone is a property of the temperature alone.

Because refers to a specific hypothetical state, every species at unit activity, and no real mixture is in that state. What must be negative for a reaction to proceed is , which starts negative when only reactants are present and climbs to zero at equilibrium. A positive merely places that zero on the reactant-rich side, giving . Dinitrogen tetroxide has near kJ mol for its dissociation at 298 K and a sealed tube of it is still visibly brown.

Because the Henderson-Hasselbalch equation contains only the ratio of salt to acid, and dilution divides both by the same factor, leaving the ratio untouched. Add water to a buffer of pH 4.74 and it stays at 4.74. What dilution does destroy is buffer capacity: the same ratio now describes far fewer moles of each component, so a given addition of acid or base consumes a much larger fraction of the reservoir and the pH moves further. A dilute buffer holds the same pH and defends it far more weakly.

The shortcut comes from dropping against 1 in the denominator of Ostwald's law, and it is safe while ionisation stays below about 5 per cent. That fails when the acid is not very weak or the solution is very dilute, since grows as shrinks. Then solve the full quadratic for . The practical test is to compute with the shortcut first: if it comes out above 0.05, the shortcut has just told you not to trust it.

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