Rock to product, traced
The Materials Atlas
Materials Mines & deposits Processing & refining Custody journeys Supply chains Companies Countries News
Materials by shelf Battery Materials Rare Earth Elements Copper & Electrical Semiconductor Materials Nuclear Materials Aerospace & Defence Precious Metals Steel & Alloy Metals Industrial Minerals Agricultural Minerals Energy Raw Materials Ore minerals Periodic table
Demand End markets Technologies Material calculator Maps Screener
Learn & tools LearnGlossary Ask the DataAI agents Research & dataAPI ★ Saved
About About usMethodology Data sourcesContact Disclaimer
Reading options
🧭 Guided View New to this — ore grades, concentrate, refining, by-products? We explain every term as you browse, in plain English. Same data, with the help built in.
⚡ Expert View You already know the industry. Just the data — clean, fast and compact, with no extra explanations. This is the default view.
Theme
Interface language
Depth Material pages are written at four levels. Pick one on any material page and it is remembered.
★ Saved Research & data
Helium

Industrial Minerals

Helium He · 2

The only element cold enough to keep an MRI magnet superconducting, and the only one light enough to escape Earth's gravity for good once released.

ISS Magnet · Ordan, Julien Marius · CC BY 4.0 · Wikimedia Commons

What is it?

The only element cold enough to keep an MRI magnet superconducting, and the only one light enough to escape Earth's gravity for good once released.

Why does it matter?

Helium is extracted as a by-product of natural gas. When it is vented it is gone from the planet permanently.

Where it is in the Earth

Helium is not a mineral in any conventional sense. It does not crystallise, it does not bond with other elements, and it leaves no trace in rock chemistry the way copper or iron does. Instead, it accumulates as a gas, and it does so because of radioactive decay deep in the Earth's crust. Uranium and thorium, both present in granites and certain other ancient rocks, shed alpha particles as they decay over geological time. An alpha particle is simply a helium nucleus — two protons, two neutrons — and once it captures a pair of electrons from its surroundings it becomes a helium atom. That atom is chemically inert and extraordinarily small, so it migrates slowly upward through rock until something stops it.

What stops it is the same thing that traps natural gas: an impermeable cap rock — typically a dense shale, evaporite, or tight carbonate — arching over a porous reservoir. Helium collects in the pore spaces of that reservoir alongside methane and other gases. The key geological requirement is that the cap rock must be tight enough to hold a molecule even smaller than hydrogen, and the geological setting must be old enough for meaningful volumes to have accumulated. This is why the most productive helium provinces sit on ancient stable platforms — the mid-continent United States, the Siberian craton, the great gas fields beneath the Qatar peninsula — where thick sequences of source rock have had hundreds of millions of years to generate helium and where structural geology has provided the right traps. Younger, tectonically disturbed terrains rarely hold it in economic concentrations because the cap rocks have been fractured and the gas has long since seeped away.

A useful recent addition to the picture is the discovery that the East African Rift system can deliver large helium accumulations through a different mechanism: volcanic heat accelerates degassing from ancient crustal rocks, and the helium migrates into shallow sedimentary traps. Tanzania's discovery showed that not all prospective provinces are already known, and that geologists are still refining their understanding of where the gas can concentrate.

Getting it out

Helium is never mined in isolation. Because it occurs as a component of natural gas — usually a small fraction of the total gas stream — it is recovered at whatever point natural gas is being produced and processed. There is no helium mine in the way there is a copper mine. The primary operation is a gas well, drilled and completed using conventional petroleum techniques, and the helium is extracted as a by-product of that operation. The natural gas field is developed for its methane content; the helium comes along because it is there.

The concentration of helium in the raw gas stream — its grade, in the language of mining — varies considerably between fields. Ordinary natural gas contains only trace amounts, far too little to be worth separating. The fields that produce commercial helium contain materially higher concentrations, though the exact percentages differ by location and are not uniform even within a single reservoir. What matters economically is that the concentration must be high enough that the cost of separating helium from the other gases is recovered in the value of the helium sold. Fields that sit just below that threshold may become viable if the gas is being processed anyway for other reasons, or may never be developed specifically for helium at all.

Because helium production is tied to natural gas production, the rate at which helium is extracted is not set by helium demand alone. When natural gas output at a host field falls — because the reservoir pressure drops, because methane prices make production uneconomic, or because a facility is shut for maintenance — helium output falls with it. This dependency is structural and cannot be engineered away without developing dedicated helium wells, which remain uncommon.

What pulls on it

The single largest use of helium is cooling the superconducting electromagnets inside magnetic resonance imaging (MRI) scanners. A superconducting magnet carries electrical current with no resistance, but only when it is kept below a critical temperature that, for the alloys used in MRI, requires immersion in liquid helium. The global installed base of MRI machines is large and growing, particularly as middle-income countries expand their health infrastructure, so this demand is persistent and relatively insensitive to price. Hospitals cannot simply switch off their magnets or substitute another coolant without replacing the machine entirely.

The semiconductor industry is the second major consumer, in two distinct ways. Helium is used in the process chambers where silicon wafers are etched and deposited upon, because its inertness and thermal conductivity help control temperature precisely without contaminating the substrate. It is also used to detect leaks in equipment and pipelines, a role that exploits its small atomic radius — helium passes through the finest imperfection that a larger molecule would not. As semiconductor manufacturing has moved toward ever smaller feature sizes and more demanding process conditions, the gas-phase requirements of fabrication have grown. The processing plants listed in the accompanying table — TSMC's Fab 18 in Taiwan and Samsung's Pyeongtaek campus — are representative of the high-volume chip fabs that depend on a reliable helium supply.

Uses in data centres and in emerging fields such as hard-disk drive manufacturing and certain aspects of AI infrastructure add further demand, though these remain smaller in aggregate than medicine and semiconductors. What would have to change for demand to fall sharply is either the commercial availability of MRI magnets that do not require liquid helium coolant — a technology that has been demonstrated at small scale but not yet deployed widely — or a significant shift away from superconducting magnets in medical imaging. Neither appears imminent. In the other direction, demand could rise sharply if novel superconducting technologies — for power transmission, quantum computing, or particle physics — move from laboratory to commercial scale.

Read the numbers correctly. Reported in million cubic metres of gas, not tonnes. Crude helium, refined Grade A gas, and liquid helium at 4.2 K.

Who produces it

See it on a map →

Helium Production

Helium Productionmillion cubic meters 2025 (estimated) World total 190.0 million cubic meters

USGS Mineral Commodity Summaries 2026 · Reported in million cubic metres of gas, not tonnes. · source ↗

Scroll the table sideways for the remaining columns.

CountryProduction Share of world
United States 81.00 42.6%
Qatar 63.00 33.2%
Russia 18.00 9.5%
Algeria 11.00 5.8%
Canada 6.00 3.2%
Poland 3.00 1.6%
China 3.00 1.6%
South Africa s
World total 190.0100%

“Withheld” means the USGS suppressed the figure to avoid disclosing an individual company's data — it does not mean zero. Country rows do not always sum to the world total because the source rounds each figure independently and does not always break out an “other countries” line.

Who holds the reserves

“Reserves” is a strict word. It means the part of a known deposit that could be extracted economically right now, with today’s prices and today’s technology — not everything that exists in the ground. Reserves grow when prices rise or a new process is invented, and shrink when they fall.

Helium Reserves

Helium Reservesmillion cubic meters 2025

USGS Mineral Commodity Summaries 2026 · source ↗

CountryReservesShare of world
United States 8,500
Algeria 1,800
Russia 1,700
South Africa 400.0
Poland 24.00
Qatar Large
China Not applicable
Canada Not applicable
World total Not applicable100%

Where it is processed and refined

PlantKind StageCountryRole
Samsung Pyeongtaek Campus Semiconductor fabComponent South KoreaInput
TSMC Fab 18, Tainan Semiconductor fabComponent TaiwanInput

What it is used for

All end markets →
End marketWhat it does thereImportance
Medicine & Health Cooling superconducting MRI magnets Defining
Semiconductors Cooling and leak detection Important
Data Centres & AI Used in some drive designs and in chip manufacturing Present

How much of it a technology needs

“Intensity” just means how much material one unit of something contains. These are indicative ranges — real designs vary by maker and model year, and every one of them is falling as engineers learn to use less.
TechnologyQuantity QuotedBasis
Leading-Edge Logic Chip Consumed as gas, not incorporated. trace per 300 mm waferProcess cooling and leak detection

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. Run these numbers at any scale in the material calculator →

Materials

All materials Critical minerals Rare earths Battery materials Ore minerals Periodic table Screener

The ground

Mines & deposits Processing & refining Countries Maps

The economy

Custody journeys Supply chains End markets Technologies Companies Material calculator

Learn

LearnGlossary Ask the DataAI agents Research & dataOpen API News★ Saved

About us

About usContact MethodologyData sources Editorial policy Privacy policyTerms of use Disclaimer