Guide Liquid nitrogen

Where to get liquid nitrogen, what it costs, and how to not hurt anyone.

This is the question that stops most people buying a superconductor kit. The honest answer is that liquid nitrogen is cheaper, more available and less exotic than nearly everyone expects — and that it does need to be treated with respect. Both things are true.

77 K
Boiling point (−196 °C)
$1–3
Typical cost per litre
0.5–2 L
Per demonstration
None
Licence required*

* In the US, UK and EU. Suppliers may still require a trade account and evidence of a suitable dewar.

The basics

Air, with the interesting parts removed.

Liquid nitrogen is ordinary atmospheric nitrogen — 78% of the air you’re breathing — cooled until it condenses at 77 kelvin, or −196 °C. It’s produced industrially in enormous quantities as a by-product of separating oxygen from air, which is why it costs roughly what milk costs.

It is non-toxic, non-flammable and chemically inert. It won’t corrode anything, react with anything, or poison anyone. The hazards it does have come entirely from two properties: it is extremely cold, and it expands enormously when it warms up.

For superconductor work it’s the ideal coolant. YBCO becomes superconducting below 92 K; liquid nitrogen sits at 77 K, comfortably underneath, with fifteen degrees of margin. Conventional superconductors need liquid helium at 4 K — vastly more expensive, harder to obtain, and requiring a cryostat rather than a polystyrene tray. That gap is the entire reason a tabletop quantum levitation demonstration is possible at all.

The expansion figure worth internalising. One litre of liquid nitrogen becomes about 694 litres of gas at room temperature. That single number explains nearly every safety rule below — why you never seal it, and why ventilation matters.
Sourcing

Four places that will sell you some.

In rough order of how likely they are to work for you. Prices vary considerably by country and by whether you’re collecting or having it delivered.

Most reliable

Industrial & welding gas suppliers

The default answer nearly everywhere. Airgas and Praxair in the US; BOC in the UK and Ireland; Linde and Air Liquide across Europe and much of Asia. Every industrial town has a depot.

Cost
$0.50–$2 / litre collected
Minimum
Usually a full dewar fill
Catch
May want a trade account and proof you own a proper dewar
Cheapest, if you have access

University stores or physics departments

Almost every university with a physics, chemistry or biology department has liquid nitrogen on tap, usually from a bulk tank. If you’re at one, or can befriend someone who is, this is far and away the easiest route.

Cost
Often free or near-free internally
Minimum
Whatever you can carry
Catch
Internal users only, generally
Surprisingly common

Ice cream shops and specialist caterers

Nitrogen ice cream is made by the litre. Plenty of independent shops will fill a dewar for a small charge if you turn up with one and explain what it’s for — teachers report a high success rate.

Cost
Often $10–20 for a few litres
Minimum
Whatever they’ll spare
Catch
Entirely at their discretion — call first
Worth trying locally

Vets, fertility and dermatology clinics

Cryopreservation and wart removal both use liquid nitrogen, so small clinics keep dewars. Not a route to large volumes, but a possibility if you need two litres for a one-off demonstration and everything else has failed.

Cost
Varies wildly
Minimum
Small quantities only
Catch
Many will decline on liability grounds

Find a supplier near you

Searches Google Maps for liquid nitrogen and industrial gas vendors in your area — the most reliable source in most countries.

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You will also need a dewar. Suppliers will not decant liquid nitrogen into a thermos flask, a cool box or anything else you’ve brought hopefully. A vacuum-insulated cryogenic dewar is the only acceptable container — expect roughly $150–400 for a 5–10 litre one, or ask your supplier about rental, which is often cheaper for occasional use.
Quantities

Less than you think, but it doesn’t keep.

Cooling a single levitator disc takes remarkably little — perhaps 100–200 ml poured into a shallow tray, most of which boils off during the cooling itself. The disc reaches 77 K in under a minute and then holds its superconducting state for three to fifteen minutes depending on the kit.

Where consumption adds up is repetition. A single demonstration to a lecture theatre might use half a litre. A hands-on session where thirty students each cool and re-cool a levitator over ninety minutes will comfortably get through two litres, sometimes three.

Rough planning figures

  • One demonstration, one levitator: 0.2–0.5 litres
  • A single lesson, teacher-led: 0.5–1 litre
  • A class of 30 in small groups, 90 minutes: 2–3 litres
  • A museum running three shows a day: 3–5 litres daily
  • A science fair stand, full day: 4–6 litres
It evaporates whether you use it or not. A small dewar loses somewhere between 1% and 5% of its contents per day — that’s not a fault, it’s the physics of a boiling liquid in an imperfect vacuum flask. Buy it a day or two before you need it, not a fortnight. There is no way to store it long term without a much more serious tank.
Storage & transport

Never sealed. Never in a lift with people.

Both of those rules follow from the same fact: 1 litre of liquid becomes 694 litres of gas.

Never seal a container of liquid nitrogen. A dewar has a loose cap that lets gas escape while keeping warm air out. Fit a tight lid and you have built a bomb — this is not hyperbole, sealed cryogenic containers have caused serious injuries and structural damage. If a container doesn’t vent, don’t put liquid nitrogen in it.

Never travel in an enclosed space with an open dewar. That means no lifts with passengers, and not in the cabin of a car. Nitrogen gas is odourless, colourless and gives no warning whatsoever — it simply displaces oxygen. In a lift or a sealed car, a spill can reduce oxygen concentration to dangerous levels within minutes, and the first symptom of oxygen deficiency is impaired judgement, which means you may not recognise what is happening to you.

Transport by car: secure the dewar upright in the boot or luggage area, never the passenger compartment, and open a window. Send the lift up empty and meet it on the other floor. These two rules cover the overwhelming majority of real-world liquid nitrogen incidents.

Storage checklist

  • Vacuum-insulated cryogenic dewar, loosely capped, upright
  • Well-ventilated room — not a cupboard, not a small store room
  • Stable surface where it can’t be knocked over
  • Away from where students pass or congregate
  • Signed, so nobody moves it or investigates it
Handling

The rules that matter.

Liquid nitrogen is handled routinely by teenagers in university open days and by ice cream vendors in shopping centres. It is manageable. It is not casual.

  • Do
    Work in a well-ventilated room

    Ordinary classroom ventilation is fine. Basements, cupboards and sealed labs are not.

  • Do
    Pour slowly, at arm’s length

    Fast pouring onto a warm surface causes violent boiling and splashing.

  • Do
    Use the tweezers supplied

    For moving the superconductor while it’s cold. Never fingers.

  • Do
    Let spills evaporate

    A small spill on the floor boils off in seconds and is harmless. Don’t mop it.

  • Do
    Brief everyone in the room first

    Including the adults. Especially the adults.

  • Never
    Seal it in any container

    Pressure builds until the container fails. This is the one that causes serious injuries.

  • Never
    Touch cold metal with bare skin

    Cold metal bonds to moist skin instantly. The tweezers are not optional.

  • Never
    Put it in your mouth or swallow it

    People have been very seriously injured by cocktails and snacks served before the nitrogen fully boiled off.

  • Never
    Wear it — no open shoes, no watches, no rings

    Anything that traps liquid against skin turns a splash into a burn.

  • Never
    Leave it unattended around children

    It’s fascinating, which is exactly the problem.

Personal protective equipment

Required

Eye protection

Safety goggles or a face shield. Boiling liquid splashes, and an eye has no protective reflex fast enough. A face shield is better if you’re pouring larger volumes.

Required

Cryogenic gloves

Loose-fitting, so you can shake them off instantly if liquid gets inside. Ordinary lab gloves are worse than useless — they trap the liquid against your skin.

Required

Closed shoes, long trousers

Trousers worn outside the shoes, not tucked in, so any splash runs off rather than collecting. No sandals, no bare ankles.

Recommended

Lab coat or apron

Long sleeves, unbuttoned cuffs. Mostly this is about avoiding a splash reaching your forearms.

Recommended

Tongs or tweezers

Supplied with every kit. For anything that has been in contact with the liquid.

For larger volumes

Oxygen monitor

Only necessary for substantial quantities in confined spaces. A classroom demonstration with two litres does not need one.

If something goes wrong

Cold burn on skin. Flood the area with lukewarm — not hot — water for at least fifteen minutes. Do not rub. Do not apply direct heat. Seek medical attention for anything beyond brief redness; cold burns are assessed like thermal burns.

Someone feels dizzy or confused. Get them into fresh air immediately and ventilate the room. Oxygen deficiency impairs judgement before it produces obvious distress, so treat confusion as the warning sign, not as an overreaction.

Large spill indoors. Leave the room, prop the door open, and let it ventilate for fifteen minutes before returning. The visible fog is condensed water vapour, not nitrogen — the nitrogen itself is invisible, so the fog is a poor guide to where the gas actually is.

This guide is general information, not a substitute for your institution’s own procedures. Any school, university or museum will have a safety officer and a risk-assessment process. Involve them early — in our experience they’re rarely the obstacle people expect, because liquid nitrogen is genuinely well-understood and routinely approved for teaching use.
Approval

Getting it past your safety officer.

Teachers tell us this is the step they dread and it’s usually the easiest. Liquid nitrogen is not an unusual request — it is used in schools for cryogenics demonstrations, in universities constantly, and in food service publicly. Your safety officer has almost certainly seen a request before.

What tends to work:

  • Go early, with a written plan rather than a verbal request the week before
  • Name the quantity. “Two litres, used within one hour, in room 14” reassures far more than “some liquid nitrogen”
  • Specify the ventilation and the PPE you’ll have on hand
  • Say who handles it. Most approvals are conditional on the teacher pouring and students only observing or handling the already-cooled superconductor — which is fine, and loses nothing pedagogically
  • Include the supplier’s safety data sheet, which they’ll provide on request

We supply a pre-filled risk assessment template covering the hazards, controls and emergency procedures for exactly this scenario. It’s written for a teaching setting rather than an industrial one, so it should need editing rather than writing from scratch.

Risk assessment template

Pre-filled for liquid nitrogen use in a classroom or outreach setting — hazards, controls, PPE, emergency procedures and a sign-off block. Editable, and written to be handed straight to a safety officer.

Which kits

Some of this is optional.

If the cryogenics is the obstacle, several kits demonstrate magnetic levitation using permanent magnets alone — no liquid nitrogen, no PPE, no risk assessment. They show less physics, but they show it to anyone.

KitLiquid nitrogenWhat it demonstratesFrom
Magnetic Train Science Fair Kit Not needed Magnetic repulsion, stable levitation via geometry $69
Magnetic Levitation Kit — DIY Not needed Magnetic repulsion, track building $69
DIY Maglev Desktop Toy Not needed Magnetic levitation, hands-on play $69
Handheld Magnetic Device Not needed Field interaction, group work $299
Chladni Plates Kit Not needed Standing waves, resonance — different physics entirely $549
YBCO Meissner & Flux Pinning Disk Required Quantum locking, flux pinning, Meissner effect $349
Economy Superconductivity Kit Required Quantum locking, frictionless motion $139
Quantum Locking Starter Kit Required Full flux pinning demonstration with track $587
4-point Tc Setup Required Quantitative resistance-vs-temperature measurement $587
Mini Maglev Kit Required Circular maglev track, sustained levitation $1,497
Worth being clear about the trade-off. The permanent-magnet kits are genuinely good for teaching magnetic levitation, and they’re what maglev trains actually use. But they don’t show quantum locking — the magnet held at an angle, upside down, refusing to fall. That effect requires a superconductor, and a superconductor requires liquid nitrogen. If the quantum behaviour is the point of the lesson, there’s no way around the cryogenics.
Questions

Asked often.

Do I need a licence to buy liquid nitrogen?

No, not in the US, UK or EU — it’s an ordinary industrial gas, not a controlled substance. What suppliers often do require is a trade account and evidence that you own a proper cryogenic dewar, which is a commercial and liability precaution rather than a legal one.

Rules elsewhere vary, so check locally if you’re outside those regions.

Can I use dry ice instead?
No. Dry ice sits at 195 K (−78 °C), which is nowhere near cold enough — YBCO needs to be below 92 K. Dry ice is excellent for other demonstrations but it will not make a superconductor superconduct.
Can students handle the liquid nitrogen themselves?

That’s your institution’s decision, not ours, and most approvals we hear about have the teacher pouring while students handle the already-cooled superconductor and the magnets.

Pedagogically you lose very little. The memorable moment is the magnet locking in mid-air, not the pouring.

How long does a dewar of liquid nitrogen last?
Days, not weeks. A small vacuum dewar loses roughly 1–5% per day to boil-off even sealed away untouched. Plan to buy it shortly before you need it. There’s no practical way to stockpile it without a large pressurised tank and a supply contract.
Is it dangerous to breathe near it?
In a normally ventilated room, no — you’re already breathing 78% nitrogen. The risk is oxygen displacement in enclosed spaces: small rooms, cupboards, lifts, car interiors. Ventilation is the entire control measure, and in a classroom it’s usually already adequate.
What if a student puts their hand in it?

Brief contact with liquid nitrogen often causes no injury at all — the Leidenfrost effect creates an insulating gas layer, which is why you sometimes see people pour it over a hand as a party trick. We would strongly discourage relying on that.

Sustained contact, or contact with cold metal, causes serious cold burns quickly. Treat any contact with lukewarm water for fifteen minutes and get medical advice for anything beyond brief redness.

Can I fly with it, or post it?
No. Liquid nitrogen is prohibited on passenger aircraft and cannot be shipped by ordinary courier or post. Source it locally at your destination — which is generally easy, and one reason we ship the superconductors warm and dry rather than pre-cooled.
What does the fog actually consist of?
Condensed water vapour from the air, not nitrogen. The nitrogen gas itself is completely invisible. This matters for safety: the fog shows you where cold air is pooling, but the gas that displaces oxygen may extend well beyond it.