The final chapter, and the most directly useful one — how doped silicon becomes a diode, a transistor, and eventually every logic gate inside a computer.
In a solid, electron energy levels merge into continuous bands rather than the sharp lines seen in a single atom. What separates a metal, a semiconductor, and an insulator is the size of the energy gap (Eg) between the highest filled band (valence band) and the next available band (conduction band).
A pure semiconductor crystal (silicon or germanium, undoped) is called intrinsic. At room temperature, thermal energy occasionally frees an electron from a covalent bond, leaving behind a hole — an effective positive charge carrier, since a neighbouring electron can hop in to fill it, shifting the "gap" like a bubble moving through liquid.
Deliberately adding a tiny, controlled amount of impurity — doping — dramatically boosts conductivity and lets you choose which charge carrier dominates.
Join a p-type and n-type semiconductor together, and near the junction, electrons from the n-side diffuse across and combine with holes on the p-side (and vice versa), leaving behind fixed, uncompensated ions. This creates a narrow depletion region with no free carriers, and a built-in electric field (potential barrier) that eventually stops further diffusion — this junction, once formed, is the basis of practically every semiconductor device.
A p-n junction with two terminals is a diode — it conducts current in essentially one direction only.
This one-way behaviour makes a diode a natural rectifier — converting AC to DC.
A transistor sandwiches three doped regions in sequence — either n-p-n or p-n-p — creating three terminals: emitter (heavily doped, injects carriers), base (very thin, lightly doped), and collector (moderately doped, collects carriers).
Because a small change in base current produces a large, proportional change in collector current, a transistor can turn a weak input signal into a much stronger output — the basic principle of every electronic amplifier, from hearing aids to guitar amps.
Run a transistor at its extremes instead of its linear middle region — fully on (saturation) or fully off (cut-off) — and it behaves as an electronic switch, the building block for every digital logic circuit, including the ones in the next section.
Digital circuits work with only two voltage levels — logic 1 (HIGH) and logic 0 (LOW) — built from transistor switches combined into logic gates.
In a transistor, the base current is 20 µA and the collector current is 2 mA. Find the current gain β and the emitter current.
Solution: β = IC/IB = 2000 µA / 20 µA = 100.
IE = IB + IC = 20 µA + 2000 µA = 2020 µA = 2.02 mA.
Silicon has a band gap of 1.1 eV. Find the maximum wavelength of light that can generate an electron-hole pair in silicon.
Solution: A photon needs at least Eg of energy, so the longest usable wavelength is λmax = hc/Eg = (6.63×10⁻³⁴ × 3×10⁸) / (1.1 × 1.6×10⁻¹⁹) ≈ 1.13×10⁻⁶ m ≈ 1130 nm.
This falls just beyond visible light, in the near-infrared — which is why silicon solar cells and photodiodes respond well across most of the visible spectrum and a bit beyond.
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