Q.Complete and balance the following equations :
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Start your 14-day free trial to unlock the full solution →Concept understanding — Inorganic Synthesis
Inorganic Synthesis – What It Really Means
Imagine you want to build a house. You need bricks, cement, steel, and a plan to put them together. Inorganic synthesis is exactly that — but for making chemical compounds that do not contain carbon-hydrogen bonds (the domain of organic chemistry). You take simple starting materials (elements or simple compounds) and, through a controlled chemical reaction, build a more complex inorganic product.
The intuition is simple: you are a chemist-craftsman. You decide what to make, choose the right ingredients, set the right conditions (temperature, pressure, solvent, time), and then isolate the pure product. The "synthesis" part is the entire journey from idea to pure substance.
The Precise Statement
Inorganic synthesis is the branch of chemistry concerned with the design, planning, and execution of chemical reactions to prepare inorganic compounds — including metals, alloys, coordination complexes, main-group compounds, solid-state materials, and nanomaterials — with controlled purity, structure, and properties.
It is not just "mixing chemicals." It involves:
- Choosing the correct starting materials (precursors) — often simple salts, oxides, or elements.
- Selecting a reaction method — solid-state heating, solution precipitation, electrochemical deposition, sol-gel, hydrothermal, etc.
- Controlling reaction conditions — temperature, pressure, pH, concentration, atmosphere (inert gas, air, vacuum).
- Purifying the product — recrystallization, distillation, sublimation, chromatography.
- Characterising the product — proving you actually made what you intended (X-ray diffraction, spectroscopy, elemental analysis).
A Concrete Example: Making Copper(II) Sulfate Pentahydrate
You want to make the familiar blue crystal, .
Intuition: You have copper metal (a wire) and dilute sulfuric acid. Copper does not react with dilute acid directly — you need an oxidising agent. So you add nitric acid or simply heat copper with concentrated sulfuric acid.
Reaction:
Then you evaporate the solution carefully. Blue crystals of appear.
What you did: You synthesised an inorganic compound from elemental copper and an acid. You controlled the concentration, temperature, and evaporation rate. You then filtered and dried the crystals.
Why It Matters
Inorganic synthesis is the foundation of:
- Catalysts (e.g., on alumina for car exhausts)
- Electronic materials (silicon wafers, gallium arsenide for LEDs)
- Medicinal compounds (cisplatin for cancer therapy)
- Pigments (titanium dioxide white, Prussian blue)
- Batteries (lithium cobalt oxide electrodes)
Without inorganic synthesis, modern technology would not exist.
A Common Misconception …
Why this formula?
Inorganic Synthesis: Why the Key Formulae Hold
Inorganic synthesis is the branch of chemistry concerned with the preparation of inorganic compounds — from simple salts to complex coordination compounds, organometallics, and solid-state materials. The key formulae in this field are not arbitrary; they arise from fundamental principles of stoichiometry, thermodynamics, kinetics, and coordination chemistry.
Let’s break down the reasoning behind the most important formulae.
1. The Yield Formula: Why It’s Not Just “Product/Reactant”
The most basic formula in any synthesis is:
Why this holds:
- Theoretical yield is calculated from the limiting reagent — the reactant that runs out first. This is based on the law of conservation of mass and the stoichiometric coefficients from the balanced chemical equation.
- Actual yield is always less than theoretical because of:
- Side reactions (competing pathways)
- Incomplete reactions (equilibrium limitations)
- Loss during purification (filtration, crystallization, etc.)
- The formula is a ratio because yield is a fractional measure of efficiency — it tells you how much of the maximum possible product you actually obtained.
Key insight: The formula works only if you correctly identify the limiting reagent. For example, in the synthesis of from and , if you have 1 mol Fe and 2 mol , Fe is limiting (1:1.5 stoichiometry), so theoretical yield is based on Fe.
2. The Atom Economy Formula: Why It Measures “Greenness”
Why this holds:
- This formula was introduced by Barry Trost (1991) to quantify how much of the starting materials ends up in the product.
- It is not a yield — it’s a theoretical maximum based on the balanced equation. It assumes 100% yield.
- The denominator includes all reactants (including solvents if they are consumed, but usually only stoichiometric reagents).
- A high atom economy (e.g., 100% for addition reactions like ) means less waste. A low atom economy (e.g., substitution reactions with leaving groups) means more byproducts.
Example: In the synthesis of from and :
Atom economy = — because all atoms end up in the product.
3. The Solubility Product and Precipitation: Why Controls Synthesis
For a sparingly soluble salt like :
Why this holds:
- is an equilibrium constant derived from the law of mass action. It applies only to saturated solutions.
- In synthesis, you use to predict whether a precipitate will form when mixing solutions. If the ion product exceeds , precipitation occurs.
- The formula is temperature-dependent (because ). So you must control temperature to control precipitation.
Reasoning: The equilibrium constant arises from the balance between the lattice energy (holding the solid together) and the hydration energy (stabilizing ions in solution). A very small means the solid is very stable — useful for gravimetric synthesis.
4. The Coordination Number and Ligand Field Stabilization Energy (LFSE)
For an octahedral complex, the LFSE is:
Why this holds:
- This formula comes from crystal field theory (CFT). In an octahedral field, the five orbitals split into two sets: the lower-energy (three orbitals) and the higher-energy (two orbitals).
- The splitting energy is the energy difference between these sets.
- Electrons fill the orbitals first (Hund’s rule), and each electron in stabilizes the complex by relative to the barycenter (average energy). Each electron in destabilizes by .
- The formula explains why certain coordination numbers are preferred: for example, (high-spin ) has LFSE = , while (tetrahedral) has a smaller LFSE — so the octahedral form is more stable. …
Part (a): (i) hot conc. oxidises carbon: ; (ii) fluoride transfer gives .
Part (b): (i) ; (ii) .
(i) (conc.)
Sulphur in is in its highest oxidation state (+6). Hot concentrated sulphuric acid is therefore a good oxidising agent. Carbon (0) is oxidised to (+4) while S(+6) is reduced to (+4):
Atom check: C 1=1; S 2=2; H 4=4; O 8 = (2)+(4)+(2). Balanced.
(ii)
is a fluoride-ion donor and a strong Lewis acid. A fluoride is transferred to phosphorus, giving the hexafluorophosphate salt:
F check: 2 + 5 = 7 = 1 (in ) + 6 (in ); charge 0 = (+1)+(−1).
Part (a): (i) hot conc. oxidises carbon: ; (ii) fluoride transfer gives .
Part (b): (i) ; (ii) .
(i) Fluorine gas reacts with water
Fluorine, the most reactive halogen, oxidises water to oxygen (it cannot be displaced by anything, so it oxidises the O of water):
(With a small amount of fluorine some ozone/ can also form, but the main products are and .) …
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