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Thermal Printing
Mary

Creato da

Mary

30. agosto 2026FI
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Thermal Printing

Every other printing process brings the colourant with it. Thermal printing does not: the colourant is already in the paper, sitting in two layers that are not allowed to touch. One is a leuco dye, a colourless ring-closed molecule; the other is a weak acid developer. Warm the coating past about 90 degrees Celsius, the matrix holding them apart melts, the two meet, the dye ring opens, and that spot turns black. Cool it and it stays black. So the print head has nothing to deliver. It is a row of small resistors on an alumina substrate under a hard wear glaze, and printing is just switching them. Texas Instruments shipped that as the Silent 700 in 1969: a terminal with no ribbon, no ink, no hammers and almost no noise, at a time when the alternative on a desk was a teleprinter you could hear through a wall. The interesting engineering is not the dye, it is the pulse. Heat spreads sideways through the substrate as fast as it goes forward into the paper, so if you drive an element for too long the warm patch grows wider than the dot spacing and the dots merge. Working that out sets the pulse length at a fraction of a millisecond, which in turn sets the element resistance, the drive voltage, and how many elements you can afford to fire at the same instant. It also explains the two things everyone notices about thermal prints. They fade, because anything that made the dye change once - heat, sunlight, a solvent, the plasticiser in a wallet - can go on changing it. And a long receipt goes darker towards the end, unless the firmware shortens its pulses as the head warms up.
Principiante
2 hours

Istruzioni

1

Find the threshold by hand

Stretch a short length of nichrome across two terminals and press a strip of receipt paper against it, coated side down. Pulse it from the bench supply through the MOSFET, starting far too short. Lengthen the pulse until a mark appears, then keep going until it browns and spreads. Record the threshold and the smear point; the working window sits between them.

Materiali per questo passaggio:

Thermal Printer Paper - 34'Thermal Printer Paper - 34'1 rotolo
Nichrome WireNichrome Wire100 mm

Strumenti necessari:

Bench Power Supply (30V/5A)Bench Power Supply (30V/5A)
IRF540N N-Channel MOSFET (10-Pack)IRF540N N-Channel MOSFET (10-Pack)
Function Generator (10MHz)Function Generator (10MHz)
Digital OscilloscopeDigital Oscilloscope
Magnifying Loupe (10x)Magnifying Loupe (10x)
2

Prove the paper is doing the work

Take three marked strips. Leave one on a sunny windowsill, tape one inside a book, and wipe one with hand sanitiser. Also touch a soldering iron at 120 C to a scrap of ordinary copy paper: nothing. The chemistry is in the sheet, not in the head - which is the entire trade this process makes.

Materiali per questo passaggio:

Thermal Printer Paper - 34'Thermal Printer Paper - 34'1 rotolo
PaperPaper3 fogli

Strumenti necessari:

Soldering IronSoldering Iron
Digital Microscope (USB, 250x)Digital Microscope (USB, 250x)
3

Diffusion length, drive current, and four ways to mark paper

Loading Jupyter Notebook...

Strumenti necessari:

Desktop ComputerDesktop Computer
4

Compendium: what fades, and what replaced the developer

The reaction is not locked. The leuco dye and the developer are still mixed together in the melted matrix, so anything that mobilises them keeps working: sunlight, a warm car, the plasticiser in a PVC wallet, an alcohol wipe, or the oil from a fingerprint. A receipt black from heat can go white again from solvent. This is a chemistry with no fixing step, which is why no archive is kept on it and why shops photocopy warranty slips. The classic developer was bisphenol A, chosen for being a cheap solid acid with the right melting point. Because it sits unbound on the surface it transfers to skin, and the EU banned it in thermal paper from January 2020. Replacements - bisphenol S, then non-phenolic developers such as Pergafast 201 and urea-urethane types - had to hit the same melting window, so the physics in the notebook is unchanged while the molecule underneath it has been swapped twice.

Strumenti necessari:

Notebook and PencilNotebook and Pencil

Materiali

3

Strumenti richiesti

9
Totale stimato
€6.00

CC0 Pubblico dominio

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