A Review of H2 Generation and H2O Distribution in the Earth’s Interior
Abstract
1. Introduction
2. Generation of Natural Hydrogen
2.1. Serpentinization
| Factors | Product H2 | Source of Factors | References |
|---|---|---|---|
| T | Increases first, then decreases with T | Geothermal energy | [10] |
| water: rock | Increases with this ratio | Infiltration/dehydration | [10] |
| pH | Decreases with pH | Alteration of olivine | [15] |
| CO2 | Suppressed at low T; the effect disappears at >270 °C | CO2-rich hydrothermal fluids | [14,17,18] |
| Al | Increases with Al | Coexisting minerals | [11] |
| SiO2 | Decreases (<400–515 °C) with SiO2 | Coexisting minerals | [16] |
2.2. Radiolysis of Water
2.3. Rock Fracturing
2.4. Other Reactions
3. Hydrogen Occurrence
4. Hydrogen in the Deep Earth
4.1. The Crust
4.2. The Upper Mantle
| Mineral | Water Solubility | T (K) | P (GPa) | Data Source |
|---|---|---|---|---|
| Olivine | 40–385 ppm | 1373–1623 | 1–7 | [75] |
| Orthopyroxene | 101–269 ppm | 973–1373 | 1.5 | [76] |
| 867 ppm | 1373 | 7.5 | [77] | |
| 785–1647 ppm | 1673 | 12–14 | [78] | |
| 75–219 ppm | 1373 | 2–3 | [66] | |
| Clinopyroxene | 714 ppm | 1373 | 10 | [77] |
| 84–394 ppm | 1373 | 2–3 | [66] | |
| Pyrope | 99–1024 ppm | 1373–1473 | 5–9 | [79] |
| 14–31 ppm | 1073–1273 | 1.5–3 | [74] | |
| Wadsleyite | 1.8–2.3 wt% | 1673 | 16.5 | [80] |
| 0.9–2.2 wt% | 1173–1673 | 15 | [81] | |
| 4475–9370 ppm | 1673 | 12–14 | [78] | |
| 0.58–2.42 wt% | 1500–2100 | 17.5–21 | [82] | |
| Ringwoodite | 1–1.25 wt% | 1673 | 16.5 | [80] |
| 0.25–2.06 wt% | 1600–2000 | 23 | [54] | |
| Majorite | 900–3000 ppm | 1670–2270 | 20 | [83] |
| Bridgmanite | 1099 ppm | 3690 | 33 | [84] |
| 0.19–0.24 wt% | 1873–1923 | 25.5 | [85] | |
| 100 ppm | 1573 | 25 | [86] | |
| Aluminous bridgmanite | 1100–1400 ppm | 1473 | 25–26 | [86] |
| Fe-, Al-bearing bridgmanite | 1400–1800 ppm | 1673–1873 | 25 | [86] |
| 90–110 ppm | 1273–1473 | 26 | [86] | |
| 1020 ppm | 2073 | 24 | [87] | |
| Stishovite | 1.3 wt% | 623–823 | 10 | [88] |
| 128–521 ppm | 1573–2373 | 22 | [89] | |
| Aluminous stishovite | 844 ppm | 1473–1673 | 10–15 | [90] |
| 296–3611 ppm | 1600–2100 | 23–32 | [91] | |
| Davemaoite | 0.37–0.38 wt% | 1873–1893 | 25.5 | [85] |
| 5100 ppm | 2173 | 25 | [86] | |
| 0.5–1 wt% | 1400–2200 | 19–120 | [92] | |
| Periclase | 21–112 ppm | 1673–2073 | 25 | [86] |
| Ferropericlase | 25–180 ppm | 1673–2073 | 25 | [86] |
| 0.19 wt% | 1923 | 25.5 | [85] | |
| 14–79 ppm | 1673–2273 | 25 | [93] |
4.3. The Transition Zone
4.4. The Lower Mantle
4.5. The Earth’s Core
5. Hydrogen Cycle in the Earth’s Interior
5.1. Input of Surface Water into the Earth’s Interior
5.2. Upward Migration of Hydrogen
6. Summary and Prospectives
- (1)
- The mechanisms for natural hydrogen formation, particularly for abiotic origin, as well as the impact factors affecting hydrogen generation should be further explored.
- (2)
- Uncertainty in origin and distribution: While hydrogen in the Earth’s interior is a carbon-free, sustainable resource, current research on natural hydrogen primarily focuses on surface occurrences. The genetic mechanisms and distribution patterns of hydrogen in the Earth’s interior are not yet fully understood and more work is required.
- (3)
- Limited understanding of production mechanisms: Hydrogen production by the serpentinization process has been studied in detail. By contrast, other hydrogen generation pathways have not yet obtained adequate research. To facilitate the exploitation and exploration of hydrogen energy resources within the Earth, comprehensive studies on these other production processes are also important.
- (4)
- Discrepancies in water content estimates: Water contents in nominally anhydrous minerals measured under experimental conditions often vary largely among different studies. Accordingly, water content estimates for each layer of the Earth’s interior determined by different methods (e.g., physical property, petrology, geochemistry) have remarkable discrepancies. For accurate determination of the water content in primary constituent minerals and estimates of the water content in the Earth’s interior, the integration of various analytical methods and disciplines is needed.
- (5)
- Challenges in sampling the deep Earth’s materials and accurately quantifying the water content of the Earth’s interior: Studies on natural samples from the deep Earth remain challenging owing to the present limited drilling depth, and magma trapped in crystals at the surface of the Earth may not originate from a single-source region and undergo significant chemical changes during their ascent, both of which make it difficult to accurately determine the hydration state of different layers in the Earth’s interior.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Source of Hydrogen | Principle of Hydrogen Production | Estimated Annual Fluxes (mol/a) |
|---|---|---|
| Hydrothermal Alteration | 1012 | |
| Radiolysis of Water | , | 4.7 × 1010 |
| Rock Fracturing | / | |
| Magma Degassing | 4.96 × 109 |
| Layers | Water Budget (Ocean Mass) | Water Content | References |
|---|---|---|---|
| Crust | ~1.23 | 1.3 wt% and 1.5 wt% in continental and oceanic crust, respectively | [52] |
| Upper mantle | 0.02–0.07 | 50–200 ppm water | [53] |
| Transition zone | 0.6–2.62 | 2000 ppm water | [52] |
| 1.4–1.5 wt% water based on experimental and natural samples data | [54,55] | ||
| Lower mantle | 0.2–2.9 | 100 ppm water | [52] |
| 1340 ppm H2O in average | [56] | ||
| Core | 37–73 | 0.3–0.6 wt% H based on experimentally determined metal-silicate partition coefficient of hydrogen and machine-learning methods | [57,58] |
| Mineral | Water Solubility | T (K) | P (GPa) | Data Source |
|---|---|---|---|---|
| Quartz | 3.7–32.2 ppm | 1073 | 0.2–1 | [63] |
| Plagioclase | 36–248 ppm | 973–1123 | 0.5 | [64] |
| Albite | 75–80 ppm | 1023 | 0.2 | [65] |
| Labradorite | 90–285 ppm | 973–1123 | 0.2–1 | [65] |
| Anorthoclase | 170–240 ppm | 1023–1073 | 0.2 | [65] |
| Orthopyroxene | 34–117 ppm | 1073–1173 | 0.2–1 | [66] |
| Clinopyroxene | 14–169 ppm | 1073–1173 | 0.2–1 | [66] |
| 142–1144 ppm | 873–1273 | 1 | [67] | |
| Rutile | 48–956 ppm | 773–1173 | 0.5–2 | [68] |
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Jian, Y.; Hu, H.; Sun, W.; Luo, S.; Wang, P.; Wang, L.; Zhu, J.; Han, S.; Dai, L. A Review of H2 Generation and H2O Distribution in the Earth’s Interior. Minerals 2026, 16, 507. https://doi.org/10.3390/min16050507
Jian Y, Hu H, Sun W, Luo S, Wang P, Wang L, Zhu J, Han S, Dai L. A Review of H2 Generation and H2O Distribution in the Earth’s Interior. Minerals. 2026; 16(5):507. https://doi.org/10.3390/min16050507
Chicago/Turabian StyleJian, Yankun, Haiying Hu, Wenqing Sun, Song Luo, Pengfei Wang, Liping Wang, Jinlong Zhu, Songbai Han, and Lidong Dai. 2026. "A Review of H2 Generation and H2O Distribution in the Earth’s Interior" Minerals 16, no. 5: 507. https://doi.org/10.3390/min16050507
APA StyleJian, Y., Hu, H., Sun, W., Luo, S., Wang, P., Wang, L., Zhu, J., Han, S., & Dai, L. (2026). A Review of H2 Generation and H2O Distribution in the Earth’s Interior. Minerals, 16(5), 507. https://doi.org/10.3390/min16050507

