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Inside Earth: New Experiments Suggest Core Holds Vast ‘Oceans’ of Life-Sustaining Element

New experiments show Earth’s core may hold vast ‘oceans’ of an essential element for life

Earth’s core may contain vast hidden reserves of hydrogen, reshaping theories about planet’s water origins. Beneath our feet lies a hidden reservoir that could dwarf all of Earth’s oceans. The discovery could transform our understanding of how Earth formed and where its water came from.

Far below the crust and mantle, at depths unreachable by drilling technology, Earth’s core remains one of the least accessible regions of our planet. Yet new scientific findings suggest that this remote and extreme environment may hold an extraordinary secret: a vast store of hydrogen potentially equivalent to several times the volume contained in all of Earth’s oceans. Researchers recently proposed that the core could harbor the equivalent of at least nine global oceans’ worth of hydrogen, and possibly as many as 45. If confirmed, this would make the core the largest hydrogen reservoir on Earth and significantly reshape prevailing theories about the planet’s early development and the origin of its water.

Hydrogen, the lightest and most abundant element in the universe, plays a central role in the chemistry of life and planetary evolution. On Earth’s surface, it is primarily found bonded with oxygen in water. However, the new estimates indicate that substantial quantities of hydrogen may be locked deep within the metallic core, accounting for approximately 0.36% to 0.7% of the core’s total mass. Though this percentage may appear modest, the immense size and density of the core mean that even a fraction of a percent translates into an enormous quantity of hydrogen.

These findings hold far-reaching consequences for interpreting when and by what processes Earth obtained its water, and they touch on a long-running debate over whether most of the planet’s water was delivered after its formation by impacts from comets and water-rich asteroids or whether hydrogen had already been built into Earth’s initial materials. The new research favors this second scenario, indicating that hydrogen existed as the planet was taking shape and became incorporated into the core during its earliest developmental stages.

Reevaluating how Earth’s water first came into existence

More than 4.6 billion years ago, the solar system was a turbulent environment filled with dust, gas and rocky debris orbiting a young sun. Through countless collisions and gradual accumulation, these materials coalesced into larger bodies, eventually forming the terrestrial planets, including Earth. During this formative period, the planet differentiated into layers: a dense metallic core sank toward the center, while lighter materials formed the mantle and crust above.

For hydrogen to be present in the core today, it must have been available during this critical window of planetary growth. As molten metal separated from silicate material and descended inward, hydrogen would have needed to dissolve into the liquid iron alloy that became the core. This process could only occur if hydrogen was already incorporated into the planet’s building blocks or delivered early enough to participate in core formation.

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If the majority of Earth’s hydrogen existed from the outset, it indicates that water and volatile elements were likely not just late arrivals brought by cosmic collisions. Rather, they may have formed essential ingredients of the primordial materials that came together to build the planet. In this view, the core would have drawn in a substantial share of the hydrogen within the first million years of Earth’s evolution, well before stable surface oceans emerged.

This interpretation challenges models that rely heavily on cometary bombardment as the primary source of Earth’s water. While impacts from icy bodies likely contributed some water and volatile elements, the new estimates imply that a substantial fraction of hydrogen was already embedded within the planet’s interior during its earliest stages.

Probing an inaccessible frontier

Studying the makeup of Earth’s core poses immense difficulties, as it starts about 3,000 kilometers below the surface and reaches the planet’s center, a realm where sun‑like temperatures and pressures millions of times greater than those at the surface prevail. Because direct sampling remains beyond today’s technological capabilities, scientists must depend on indirect investigative techniques and controlled laboratory experiments.

Hydrogen presents an especially challenging measurement issue, as its extremely small and light nature allows it to slip out of materials during experimentation. Its minute atomic scale also makes conventional analytical instruments struggle to detect it. For years, scientists tried to deduce hydrogen’s presence in the core by analyzing the density of iron subjected to intense pressures. The core exhibits a density slightly below that of pure iron and nickel, implying that lighter elements must be mixed in. Silicon and oxygen have traditionally been viewed as the primary possibilities, yet hydrogen has remained a persistent suspect.

Previous experimental strategies frequently depended on X-ray diffraction to examine how iron’s crystal lattice responds when hydrogen becomes embedded within it. As hydrogen diffuses into the atomic framework, the lattice expands in detectable ways. Yet the interpretation of these shifts has produced highly inconsistent estimates, spanning from minimal traces to exceptionally large quantities comparable to more than 100 ocean volumes. These discrepancies arose from methodological constraints and the inherent challenges of accurately reproducing genuine core conditions.

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A new atomic-scale approach

Researchers refined these estimates by employing a technique that allows materials to be examined at the atomic scale; in controlled laboratory settings, they reproduced the immense pressures and temperatures thought to prevail in Earth’s deep interior, using a diamond anvil cell to squeeze iron samples to staggering pressures and then heating them with lasers until they liquefied, effectively simulating the molten metal of the planet’s early core.

After the samples cooled, scientists turned to atom probe tomography, a technique capable of producing near-atomic-resolution three-dimensional images and detailed chemical profiles. The materials were crafted into extremely fine, needle-shaped specimens measuring only a few dozen nanometers across. Through the use of precisely regulated voltage pulses, individual atoms were ionized and captured sequentially, allowing researchers to directly quantify hydrogen and map its distribution alongside elements like silicon and oxygen.

This approach differs fundamentally from earlier methods because it counts atoms directly rather than inferring hydrogen content from structural changes. The experiments revealed that hydrogen interacts closely with silicon and oxygen within iron under high-pressure conditions. Notably, the observed ratio between hydrogen and silicon in the experimental samples was approximately one to one.

By integrating this atomic-scale data with separate geophysical assessments of how much silicon is present in the core, the researchers derived a revised interval for hydrogen abundance, and their findings indicate that hydrogen comprises roughly 0.36% to 0.7% of the core’s mass, an amount that equates to several ocean volumes when described in more familiar terms.

Consequences for the magnetic field and the potential for planetary habitability

The presence of hydrogen within the core not only reframes existing ideas about how water reached the planet but also affects scientific views on the development of Earth’s magnetic field, as the core’s outer layer of molten metal circulates while releasing internal heat, a motion that produces the geomagnetic field responsible for protecting the planet from damaging solar and cosmic radiation.

The interplay between hydrogen, silicon and oxygen in the core could affect how heat was transferred from the core to the mantle in the planet’s early history. The distribution of light elements influences density gradients, phase transitions and the dynamics of core convection. If hydrogen played a significant role in these processes, it may have contributed to establishing the long-lived magnetic field that made Earth more hospitable to life.

Understanding the distribution of volatile elements such as hydrogen also informs broader models of planetary formation. Hydrogen, along with carbon, nitrogen, oxygen, sulfur and phosphorus, belongs to a group of elements considered essential for life. Their behavior during planetary accretion determines whether a world develops surface water, an atmosphere and the chemical ingredients necessary for biology.

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Weighing uncertainties and future directions

Despite the sophistication of the new experimental methods, uncertainties remain. Laboratory simulations can approximate but not perfectly replicate the conditions of Earth’s deep interior. Additionally, some hydrogen may escape from samples during decompression, potentially leading to underestimates. Other chemical interactions within the core, not fully captured in the experiments, could also alter hydrogen concentrations.

Some researchers note that independent studies have produced hydrogen estimates within a similar range, though occasionally higher. Differences in experimental design, assumptions about core composition and treatment of hydrogen loss can lead to variations in calculated values. As analytical techniques continue to advance, future experiments may refine these estimates further and narrow the uncertainty.

Geophysical observations may also provide indirect constraints. Seismic wave measurements, which reveal density and elastic properties of the core, can help test whether proposed hydrogen concentrations are consistent with observed data. Integrating laboratory results with seismic models will be crucial for building a comprehensive picture of the core’s composition.

A deeper perspective on Earth’s formation

If these projected hydrogen concentrations prove correct, they bolster the idea that Earth’s volatile reserves formed early and became widely dispersed within its interior, suggesting that hydrogen was not merely a late addition from icy impactors but may have existed within the planet’s original building materials, with gas from the solar nebula and inputs from asteroids and comets each contributing to different degrees.

The idea that the core contains the majority of Earth’s hydrogen also reframes how scientists think about the distribution of water within the planet. While oceans dominate the surface visually and biologically, they may represent only a small fraction of Earth’s total hydrogen budget. The mantle likely holds more, and the core could contain the largest share of all.

This perspective emphasizes that Earth’s deep interior is not merely a static foundation beneath the crust but an active participant in the planet’s chemical and thermal evolution. The processes that unfolded during the first million years of Earth’s existence continue to influence its structure, magnetic field and capacity to support life.

As research progresses, the emerging picture is one of a planet whose defining characteristics were shaped from the inside out. By peering into the atomic architecture of iron under extreme conditions, scientists are gradually revealing how the smallest element in the periodic table may have played an outsized role in shaping Earth’s destiny.

By Penelope Nolan

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