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Electroless Nickel Plating
Charlie

Creato da

Charlie

6. agosto 2026DE
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Electroless Nickel Plating

Every plating process before this one had the same blind spot: current. Electricity does not distribute itself evenly over an awkward shape — it crowds onto edges and corners and barely reaches into recesses. Plate a threaded blind hole and the mouth gets thick, the bottom gets nothing. Plate the inside of a long tube and you cannot reach it at all.

Electroless nickel removes the current. The bath reduces nickel chemically, using sodium hypophosphite as the reducing agent, and the reaction is autocatalytic — it happens only on a catalytic surface, and freshly deposited nickel is itself catalytic. So it starts on the part, and it keeps going on what it has already laid down.

The consequence is the point: with no current there is no current distribution, so the coating is the same thickness everywhere the liquid touches. Inside bores, in threads, in blind holes, on complex castings. It will also plate non-conductors once they are catalysed, which electroplating cannot do at all.

Abner Brenner and Grace E. Riddell at the US National Bureau of Standards found it in 1946 while trying to plate the inside of tubes — the hypophosphite was there to do something else, and its reducing behaviour was the surprise. US 2,532,283, "Nickel plating by chemical reduction", filed 5 May 1947, granted 5 December 1950.

Intermedio
90 minutes

Istruzioni

1

Mix the bath

In 1 litre of distilled water dissolve, in this order:

25 g nickel sulfate — the metal source.
25 g sodium hypophosphite — the reducing agent, doing the job the power supply used to do.
15 g sodium citrate — a complexing agent, which holds nickel in solution so it plates on the part instead of precipitating everywhere at once.

Adjust to pH 4.5–5.0. Goggles and gloves.

Materiali per questo passaggio:

Nickel Sulfate HexahydrateNickel Sulfate Hexahydrate25 g
Sodium HypophosphiteSodium Hypophosphite25 g
Sodium CitrateSodium Citrate15 g
Distilled Water (1 Liter)Distilled Water (1 Liter)1000 ml

Strumenti necessari:

Borosilicate Glass BeakerBorosilicate Glass Beaker
Anti-Fog Safety GogglesAnti-Fog Safety Goggles
Nitrile Disposable GlovesNitrile Disposable Gloves
2

Choose a part with a hole in it

Use a steel part with a deep recess, a bore or a thread — not a flat plate. Clean to bare metal and degrease.

A flat coupon will not show you anything. The recess is the experiment: it is the place electroplating cannot reach.

Materiali per questo passaggio:

Mild Steel Flat BarMild Steel Flat Bar1 pezzo
3

Heat the bath and immerse — no wiring at all

Bring the bath to 88–92 °C and hold it there. Lower the part in.

There is no power supply and no anode. Nothing is clipped to the part. Steel is catalytic, so deposition begins on contact and then sustains itself on the nickel it has just laid down — that is what autocatalytic means.

Temperature is the throttle: below about 85 °C the reaction stalls, above 95 °C the whole bath decomposes and plates the glass.

Strumenti necessari:

Hot Plate (Laboratory/Kitchen)Hot Plate (Laboratory/Kitchen)
Cooking Thermometer (0-200°C)Cooking Thermometer (0-200°C)
4

Plate for a measured time

Deposition runs at roughly 15–25 µm per hour. Run 45 minutes for about 15 µm.

The bath depletes as it works — nickel and hypophosphite are consumed and are not replaced by an anode, unlike a copper plating bath. A tired bath slows and then stops.

5

Measure the thickness in the hard place

Rinse and dry. The finish is uniform matt silver, slightly warmer in tone than bright electroplated nickel.

Now do the measurement that matters: compare coating thickness on an outside face against the bottom of the recess.

Expect them to be the same within a few per cent. On an electroplated part the same comparison typically shows several times more metal on the edge than in the recess. That single number is the whole reason the process exists.

6

History & Context

The patent. US 2,532,283, "Nickel plating by chemical reduction", Abner Brenner and Grace E. Riddell, filed 5 May 1947, granted 5 December 1950. The specification argues its own case commercially — no "generators and rheostats" — and claims the deposit "has the same protective value as the plate secured by electrodeposition" in salt-spray testing.

It was an accident, and the record is unusually clear about it. Brenner and Riddell were at the National Bureau of Standards in 1946 trying to plate the inner walls of tubes with a nickel-tungsten alloy, using a citrate bath and an insoluble anode. The hypophosphite was in the bath for another purpose. Its reducing behaviour was the unexpected observation, and they followed it.

Not the first chemical nickel — the first controlled one. Chemical reduction of nickel had been seen before, by Wurtz in 1844 and in Roux's patent. The US Patent Office distinguished those as spontaneous and complete reactions — the bath dumps its metal everywhere and dies — from Brenner and Riddell's catalytic process, where deposition happens only on catalytic surfaces immersed in the bath. Controllability is the invention, not the chemistry.

Grace Riddell should be named. The process is frequently written as "Brenner's". The patent names them both, in that order.

What it is really used for now. Not decoration. The deposit is a nickel-phosphorus alloy, typically 7–12% phosphorus, and heat-treating it to about 400 °C precipitates nickel phosphide and takes the hardness up toward hardened steel. Oil-field valves, hydraulic bores, moulds, and the aluminium substrates of hard-disk platters are all electroless nickel — chosen for uniformity in places a current will not go.

Materiali

5

Strumenti richiesti

5

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