Scientists analyzing samples from China’s Chang’e-6 mission have identified a new magnetic mineral called γ-Fe inside impact-glass particles on the Moon. Published in PNAS on September 16, the study led by Professor Haifeng Du reveals that this form of metallic iron can preserve magnetic signals, potentially recording ancient lunar magnetic conditions. The researchers used advanced microscopy techniques to find numerous nanoscale iron particles, with γ-Fe being dominant, suggesting it may serve as a microscopic fossil for studying the Moon's past magnetic history.
Written locally by qwen2.5:14b on 2026-10-06,
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About 4.25 billion years ago, the Moon possessed a powerful core dynamo with a field strength comparable to or even exceeding modern Earth's.
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Moon → possess → Earth
This magnetic field, generated by circulating molten metal, completely shut down as the interior cooled and core crystallisation ceased, leaving the Moon without a global magnetic field in the present.
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crystallisation → generate → present
While it no longer generates a global magnetic field, traces of its ancient magnetism still remain locked inside lunar soil and rocks.
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traces → generate → soil
Scientists have been studying these magnetic minerals preserved in the soil in order to reconstruct how the Moon's magnetic environment changed over time.
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environment → study → time
Researchers analysing metallic iron inside impact glass from Chang'e-6 lunar soil have now identified a previously unknown magnetic mineral in natural Moon samples.
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Researchers → analyse → samples
They have identified it as a form of metallic iron called γ-Fe.
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They → identify → iron
Found inside tiny impact-glass particles, the nanoscale iron can preserve a stable magnetic signal, potentially acting like a microscopic fossil of the Moon’s long-lost magnetic field, as per the findings published in the Proceedings of the National Academy of Sciences (PNAS) on September 16.
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iron → find → September
The study was led by Professor Haifeng Du of the High Magnetic Field Laboratory at the Hefei Institutes of Physical Science (HFIPS) of the Chinese Academy of Sciences (CAS).
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study → lead → Sciences
"This tiny magnetic fossil may help us better understand the Moon's ancient magnetic history," said Dr. Long Li from HFIPS, a member of the team.
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Li → help → team
A rare iron phase hidden in lunar glass
To examine the samples, the researchers used focused ion beam preparation, transmission electron microscopy, and chemical analysis.
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researchers → hide → preparation
These techniques revealed numerous nanoscale iron particles embedded throughout the glassy material.
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techniques → reveal → material
Closer examination showed that some of the particles consisted of face-centred cubic γ-Fe.
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some → show → Fe
In fact, γ-Fe was the dominant form of iron in the two impact-glass samples studied.
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Fe → study → samples
As the material cools, it typically changes into another form known as α-Fe.
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it → cool → Fe
The researchers found evidence that the unusual conditions produced by impacts on the Moon may allow γ-Fe to survive at the lunar surface.
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Fe → find → surface
They proposed that several factors could help stabilise the structure, including small amounts of carbon and other elements, the rapid cooling of molten material created during an impact, and protection from the surrounding glassy matrix.
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factors → propose → matrix
The team also used off-axis electron holography to investigate the magnetic behaviour of individual γ-Fe nanoparticles.
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team → use → nanoparticles
They found that relatively large γ-Fe particles could form a stable single-vortex magnetic state.
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particles → find → state
The particles also retained a consistent magnetic response when exposed to an external magnetic field.
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particles → retain → field
This stability suggests that γ-Fe could act as a previously unrecognised recorder of magnetic information in lunar material, holding clues to conditions that existed in the moon's past.
uncertain
that → suggest → past
A magnetic past
This discovery has broadened the known variety of magnetic minerals found in lunar samples.
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discovery → broaden → samples
Since γ-Fe and α-Fe form under different conditions and behave differently magnetically, each could potentially record information from separate stages of lunar impact events.
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each → form → events
According to scientists, future research is required to determine exactly how much these minerals can reveal about the moon's ancient magnetic field and how it evolved over time.
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it → accord → time