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Samarium

Seltene-Erden-Elemente · Light rare earth

Samarium Sm · 62

The rare earth in the magnet that works where neodymium cannot: very hot, or very cold, or in a place that must not corrode.

Samarium shards · brainandforce · CC0 · Wikimedia Commons

Was ist das?

The rare earth in the magnet that works where neodymium cannot: very hot, or very cold, or in a place that must not corrode.

Warum ist das wichtig?

Samarium-cobalt magnets are weaker than neodymium ones but hold their strength past 300 C, which is why they are in missiles, aircraft actuators and downhole tools.

Where it is in the Earth

Samarium belongs to the lanthanide series, the group of fifteen chemically similar metals that sit together in the periodic table and behave in broadly similar ways in nature. Because they are so alike chemically, the lanthanides rarely separate from one another during geological processes; they travel together and concentrate together. The result is that samarium is not found in its own dedicated mineral the way copper or lead might be. Instead it rides along as a minor constituent inside minerals whose dominant metals are cerium, lanthanum, and neodymium.

The two minerals that matter most are bastnasite and monazite. Bastnasite is a fluorocarbonate — a carbonate mineral that also contains fluorine — and it forms primarily in unusual igneous rocks called carbonatites, which originate from carbonate-rich magmas deep in the mantle. These magmas are rare, but when they cool and crystallise they produce exceptionally high concentrations of rare earth elements relative to ordinary granite or basalt. Monazite is a phosphate mineral that forms in granites and in metamorphic rocks, but it also survives erosion well enough to accumulate as a heavy mineral in river and beach sands, called placers, over geological time. In both cases, samarium concentrates because the crystal structures of these minerals accommodate lanthanide ions rather readily, pulling them out of solution or melt as the mineral grows.

The largest known accumulations of these minerals are in China, principally in the Bayan Obo deposit in Inner Mongolia, which is a carbonatite-related iron-niobium-rare earth system of unusual scale. Significant bastnasite and monazite resources also exist in the United States, Australia, India, Brazil, and parts of Africa. The geographical distribution of samarium resources therefore mirrors the distribution of rare earth deposits generally, because samarium cannot be separated from the other lanthanides at the mining stage.

Getting it out

Because samarium occurs inside bastnasite and monazite rather than as its own mineral, mining it means mining whichever rare earth deposit contains those minerals in sufficient quantity. Large carbonatite-hosted bastnasite deposits are typically worked by open-pit methods: the rock is blasted, loaded, and trucked to a processing facility. Monazite in hard rock follows similar open-pit practice where the rock type allows. Monazite recovered from coastal or riverine placer sands uses dredging or wet gravity methods rather than blasting, because the mineral grains are already liberated from the surrounding material by natural weathering.

Grade, in rare earth mining, is usually expressed as a percentage of total rare earth oxide in the ore. Samarium oxide makes up only a small share of the total rare earth oxide content of any given bastnasite or monazite deposit; the dominant rare earths are cerium and lanthanum, with neodymium also present in significant quantities. This means that even at a richly mineralised deposit, the samarium fraction is modest. For every tonne of samarium oxide eventually recovered, very large quantities of ore must move and very large quantities of the other rare earth oxides — particularly cerium and lanthanum, for which demand is comparatively thin — must also be produced. This by-product arithmetic shapes the economics of samarium supply in ways that go well beyond the grade of samarium itself.

What pulls on it

The principal use of samarium is in samarium-cobalt permanent magnets, a material class that trades somewhat lower magnetic strength than the more familiar neodymium-iron-boron magnets in exchange for substantially superior performance at high temperatures and in corrosive environments. Neodymium-iron-boron magnets lose their magnetisation above roughly 80 to 200 degrees Celsius depending on grade, whereas samarium-cobalt retains useful magnetic properties well beyond 300 degrees Celsius. This makes samarium-cobalt the material of choice in environments where a neodymium magnet would simply stop working: jet engine actuators, guidance systems in missiles, sensors embedded in oil and gas drilling equipment, and compact motors operating in chemically aggressive surroundings.

Beyond magnets, samarium has established roles in two quite different areas. Samarium-153, a radioactive isotope produced in nuclear reactors, is used in cancer treatment — specifically in palliative care for bone pain caused by cancer that has spread to the skeleton. Samarium also appears in control rods and shielding applications in nuclear reactors, where its capacity to absorb neutrons is the relevant property. These non-magnet uses are individually small but technically specific, meaning samarium cannot easily be left out of them.

Demand growth in magnets depends heavily on whether defence and aerospace procurement programmes expand, and on whether robotics and high-reliability industrial motors shift toward samarium-cobalt rather than alternatives. Growth in neodymium magnet demand driven by electric vehicles does not directly pull samarium along, because the operating conditions of most automotive motors do not require samarium-cobalt's temperature tolerance. A sharp change in samarium demand would most plausibly come from a sustained increase in defence spending in markets that rely on precision-guided weapons, or from a materials shift in downhole drilling as oil and gas exploration moves into hotter reservoirs.

Turning ore into product Ebene 3

Ore leaving the mine is first crushed and ground — a stage called comminution — to liberate individual mineral grains from the surrounding waste rock, or gangue. The resulting slurry then passes through a sequence of physical separation steps. For bastnasite, froth flotation is the standard approach: air bubbles are used to float the target mineral away from gangue after the surfaces are conditioned with chemical reagents. Monazite in placer deposits is separated using gravity tables and magnetic and electrostatic separators, taking advantage of differences in density and surface electrical properties between mineral species. These steps produce a mineral concentrate — a physical mixture of bastnasite or monazite particles still containing all the lanthanides together.

The concentrate then enters hydrometallurgical processing, which means chemical extraction using aqueous solutions. Bastnasite concentrates are typically cracked by roasting followed by acid or caustic leach; monazite is resistant to acid and is usually digested in hot concentrated sulfuric acid or caustic soda at elevated temperature. Either route dissolves the rare earth content into solution, separating it from phosphate, thorium (which is mildly radioactive and requires careful management), and other impurities. The mixed rare earth solution then undergoes solvent extraction — a sequence of many mixer-settler stages in which organic solvents selectively pull individual lanthanides out of the aqueous phase. Because samarium sits in a particular region of the lanthanide series, it must be separated from neighbouring elements such as neodymium, europium, and gadolinium, which have similar chemical behaviour. The number of solvent extraction stages required, and therefore the capital and operating cost, grows with the purity specification. Samarium oxide is traded at purities of 99.5 percent and above, which demands a thorough separation train. Final product is precipitated, filtered, and calcined to produce the oxide powder that the market trades.

Processing losses occur at each stage: mineral grains too fine to float efficiently, solvent extraction stages that do not achieve complete separation, and precipitations that are not quantitative all reduce overall recovery. The concentration of the solvent extraction circuit in China reflects the substantial capital investment, chemical infrastructure, and accumulated process knowledge that the industry there has built over several decades. Facilities outside China capable of separating individual lanthanides to specification remain limited in number.

Substitution and recycling Ebene 3

Within the permanent magnet application, the functional substitute for samarium-cobalt is neodymium-iron-boron with high-temperature stabilisation additives such as dysprosium or terbium. This substitution works across a wide temperature range if the designer accepts larger magnets or some loss of efficiency, but it fails in the most demanding environments — above roughly 200 to 250 degrees Celsius, or where corrosion resistance cannot be compromised — where samarium-cobalt has no practical magnet substitute. Alnico magnets (aluminium-nickel-cobalt alloys) and ceramic ferrite magnets can handle higher temperatures than neodymium-iron-boron in some configurations, but their energy density is so much lower that they would require redesign of the surrounding components, not a simple material swap. The physics of the application therefore sets a floor beneath which substitution cannot go without significant engineering change to the system that uses the magnet.

Recycling of samarium from end-of-life products is at an early stage and contributes a negligible share of supply. The barriers are structural rather than technical. Samarium-cobalt magnets are used in devices — missiles, aircraft actuators, downhole tools — that are often not returned to a central point at end of life, that are present in small quantities per unit, and whose disassembly is not organised around materials recovery. The economics of collecting, disassembling, and reprocessing these dispersed, small-volume streams are unfavourable when oxide prices are low. Higher and more stable prices could improve the economics of recycling, but the collection infrastructure would still need to be built. For nuclear and medical isotope uses, recycling is not applicable in the conventional sense.

Where the chain is fragile Ebene 4

Samarium supply carries the structural vulnerabilities common to the rare earth group and some that are specific to its position within that group. Because samarium is not mined for its own sake but is recovered as one constituent among many from bastnasite and monazite, its production rate is set by the economics of the whole rare earth basket, not by samarium demand alone. If demand for cerium or lanthanum — the high-volume, low-value lanthanides that dominate most ore compositions — weakens or collapses, mine operators have incentive to curtail output, and samarium availability falls regardless of whether samarium demand is healthy. Conversely, samarium cannot be produced much faster than the overall rare earth operation allows without running the rest of the lanthanide output into surplus. This by-product dependence means that supply cannot respond to price signals for samarium in isolation.

The separation and refining infrastructure capable of producing samarium oxide to commercial specification is heavily concentrated in China. Facilities outside China that can perform the full sequence from mixed rare earth solution to separated individual oxides at scale are few, and their capacity relative to global demand is a matter of active policy concern in the United States, Europe, Japan, and elsewhere. Reported production and reserve figures for samarium specifically are difficult to find in the public domain; the data provided to this page's tables shows that world production and reserve figures are not available at the samarium-specific level in the sources consulted, which itself reflects how rarely samarium is reported separately from total rare earth oxide output.

Permitting and construction lead times for new rare earth separation capacity outside established centres are long. The chemistry is specialised, the reagent supply chains are themselves not trivial to establish, and the management of thorium-bearing waste streams from monazite processing adds a regulatory dimension that extends timelines further. The combination of by-product dependence, geographic concentration of separation capacity, and long lead times for new capacity means that a disruption to supply — whether from trade policy, regulatory change, or operational interruption — would take years rather than months to remedy through new capacity. Published price data show that samarium oxide prices have moved within a relatively narrow range in recent years, but historical experience across the rare earth sector demonstrates that such periods of stability can be interrupted sharply.

Die Zahlen richtig lesen. Reported as samarium oxide (Sm2O3) equivalent. Oxide and SmCo alloy.

Wo es im Gestein vorkommt

Alle Erzminerale →

Dies sind die Mineralien, die tatsächlich samarium. Eine Lagerstätte ist nur dann ein Erzkörper, wenn eines der Minerale ausreichend konzentriert ist, um den Abbau wirtschaftlich zu rechtfertigen.

Preis

average, dollars per kilogram: Samarium oxide, 99.5% minimum

Jahresdurchschnittdollars per kilogram

2021 · 2.03 hoch 3.34 dollars per kilogram 2025 · 2.82

Grundlage: average, dollars per kilogram: Samarium oxide, 99.5% minimum. Jahresdurchschnitte gemäß Veröffentlichung in USGS Mineral Commodity Summaries 2026 · Quelle ↗. Dies sind jährliche Referenzdurchschnittswerte, kein Live-Marktpreis.

Wofür es verwendet wird

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