ART
BEAUTY & WELLNESS
CRAFT
CULTURE & HISTORY
ENTERTAINMENT
ENVIRONMENT
FOOD & DRINKS
REVERSE ENGINEERING
SCIENCES
SPORTS
TECHNOLOGY
WEARABLES
Transistor
Volt

Yaremwe na

Volt

28. Nyakanga 2026SE
0
0
0
0
0

Transistor

A vacuum tube amplifies beautifully and is a small heater with a filament that eventually burns out. A machine with eighteen thousand of them fails somewhere every few minutes and consumes the power of a small factory. Electronics in 1947 was limited by the physical properties of hot metal in a glass bottle.

The transistor does the same job in a piece of cold solid. No filament, no vacuum, no warm-up, nothing to burn out — a crystal in which a small current at one terminal controls a much larger current between two others. The energy that was heating a cathode simply is not needed.

US Patent 2,524,035, "Three-electrode circuit element utilizing semiconductive materials", filed 17 June 1948 and granted 3 October 1950 to John Bardeen and Walter H. Brattain. This blueprint builds a point-contact detector and a working crystal radio, then measures why the third contact changes everything.

Hejuru
8 hours

Amabwiriza

1

Read US 2,524,035 and note the word 'semiconductive'

Bardeen and Brattain claim a three-electrode element in a semiconductive body. Three electrodes, like the Audion — but in a solid, and that is the whole difference.

Tools needed:

Notebook and PencilNotebook and Pencil
2

Count the cost of doing it with tubes

Work out the heater power for 18,000 tubes at a few watts each. That is tens of kilowatts before any computing happens, and a failure every few minutes.

3

Build a cat's whisker detector first

Press a fine springy wire onto a galena or silicon crystal. Probe around: some spots rectify well, most do nothing. This is a two-electrode semiconductor device.

Materials for this step:

Galena CrystalGalena Crystal1 piece
Steel WireSteel Wire1 meter
4

Measure it in both directions

Check resistance forward and reverse. A good contact conducts one way and blocks the other — rectification, from a point touching a crystal.

Tools needed:

MultimeterMultimeter
5

Build a crystal radio around it

Add an aerial, a tuned coil and a high-impedance earpiece. It works with no power supply at all — but it cannot be made louder, because there is no gain anywhere in it.

Materials for this step:

Enamelled Copper WireEnamelled Copper Wire30 meter
6

State the limitation precisely

A two-terminal device can only pass or block. You need a third terminal to CONTROL — this is the same conclusion De Forest reached about the vacuum diode in 1906.

7

Prepare a clean germanium or silicon surface

Polish and clean the crystal face carefully. Surface contamination dominates point-contact behaviour, and Bardeen's insight about surface states is what unlocked the whole thing.

Tools needed:

Sandpaper (1000 Grit)Sandpaper (1000 Grit)
8

Bring TWO fine contacts down very close together

Place two springy wires on the surface a fraction of a millimetre apart, with a third connection to the base. Brattain used gold foil on a plastic wedge split with a razor.

Materials for this step:

Copper WireCopper Wire1 meter
9

Understand why the spacing is critical

Charge carriers injected at one contact must reach the other before recombining. Too far apart and nothing happens — the separation must be smaller than the diffusion length.

Tools needed:

Magnifying GlassMagnifying Glass
10

Bias one contact forward and the other reverse

Set the emitter slightly forward-biased and the collector reverse-biased against the base. This asymmetry is the operating condition, not an arbitrary choice.

11

Vary the emitter current and watch the collector

Change the small emitter current and measure the collector current. A small change at one terminal produces a much larger change at the other — that ratio is the gain.

12

Confirm the output exceeds the input

Compare input and output power. Greater than unity is the moment solid-state electronics begins, and Bell Labs saw it on 16 December 1947.

13

Note how fragile the point-contact device is

Nudge it and the operating point moves. Point contacts are mechanically delicate and irreproducible — which is why they were superseded within a few years.

14

Compare against a modern bipolar transistor

Put a commercial small-signal transistor in the same test circuit. Same three terminals, same behaviour, vastly better consistency — the physics is identical, the manufacturing is not.

15

Compendium — the third contact, in a solid

The patent. US 2,524,035, "Three-electrode circuit element utilizing semiconductive materials", filed 17 June 1948 and granted 3 October 1950 to John Bardeen and Walter H. Brattain of Bell Telephone Laboratories. The working demonstration was on 16 December 1947. William Shockley led the group and is not on this patent — a genuine and lasting sore point. Shockley, working separately and partly out of irritation at being excluded, devised the junction transistor within a few weeks, and it is HIS device, not the point-contact one, that industry actually built. All three shared the 1956 Nobel Prize in Physics.

What the crystal detector already did, and what it could not. Point-contact rectifiers were old technology by 1947 — cat's whisker detectors ran radio from the 1900s, and silicon and germanium point-contact diodes were mass-produced for wartime radar. What none of them had was a control terminal. A two-terminal device can only pass or block; the entire step from detection to amplification is the addition of a third electrode, which is precisely the same conceptual move De Forest made in the vacuum tube forty years earlier.

Why the contacts must be close. Current injected at the emitter enters the semiconductor as minority carriers, which diffuse through the material and are collected by the reverse-biased collector — but only if they arrive before recombining. The permitted separation is set by the carrier diffusion length, which is why Brattain's contacts had to be within roughly a tenth of a millimetre and why the assembly used gold foil split with a razor blade on a plastic wedge. Bardeen's theoretical contribution was recognising that surface states were pinning the semiconductor's behaviour and finding a way past them.

Why it mattered so much more than it looked. A vacuum tube needs a heated cathode, and heat means power, warm-up time, bulk and eventual failure. A transistor is a cold solid with none of those. That difference alone would have been significant; what made it transformative is that solid devices can be made photolithographically, many at once, on a single wafer — which the integrated circuit exploited a decade later. Bell Labs licensed the technology broadly and cheaply, including to a small Japanese firm that became Sony. The point-contact transistor itself was obsolete within five years; the principle it proved is in every device you own.

Ibikoresho

4

Ibikoresho bikenewe

4

Blueprint zijyanye

Izi blueprint zisangira ubumenyi — uburyo, ibikoresho cyangwa amahame

CC0 Umurenge rusange

Iyi blueprint yasohowe munsi ya CC0. Ushobora gukoporora, guhindura, gukwirakwiza no gukoresha nta kwemererwa.

Shyigikira Umuremyi ugura ibicuruzwa binyuze muri Blueprint ye Komisiyo y'Umuremyi byashyizweho n'Abacuruzi, cyangwa kora verisiyo nshya y'iyi Blueprint ukayinjiza nk'isano muri Blueprint yawe kugira ngo musangire inyungu.

Ibiganiro

(0)

Injira kugira ngo ujye mu biganiro

Gutegura ibitekerezo...