Noble gas reactivity induced by high pressure: Physical and chemical insights

For nearly a century, noble gases stood as chemical spectators—present but unreacting, while high pressure has rewritten that identity. By forcibly reconstructing electronic shells, compression transforms these inert elements into reactive constituents, forging compounds that reshape both chemical bonding paradigms and planetary models. For example, Helium, the most inert of all, forms unique superionic phases in giant planets and reacts with deep-Earth minerals under pressure, offering a unified explanation for primordial isotope retention. Interestingly, xenon bonds with iron and nickel under core conditions, establishing a deep-Earth candidate reservoir that provides insights into the missing xenon paradox. These compelling discoveries do more than expand the periodic table; they forge unprecedented connections between high-pressure physics, geoscience, and materials science. This review synthesizes these advances into a unified framework, establishing predictive design principles that not only explain the stability of exotic compounds, but also guide the targeted synthesis of noble gas-bearing functional materials across the pressure landscape.

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Publication Details

Journal
Applied Physics Reviews
Published
2026-10-05
DOI
https://doi.org/10.1063/5.0337930
Primary Topic
High-pressure geophysics and materials
Type
article
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article

Noble gas reactivity induced by high pressure: Physical and chemical insights

Xin Zhong, Hanyu Liu, Guang Sun, Xinyu Ou
Applied Physics Reviews
High-pressure geophysics and materials
article

Noble gas reactivity induced by high pressure: Physical and chemical insights

Xin Zhong, Hanyu Liu, Guang Sun, Xinyu Ou
article en

Abstract

For nearly a century, noble gases stood as chemical spectators—present but unreacting, while high pressure has rewritten that identity. By forcibly reconstructing electronic shells, compression transforms these inert elements into reactive constituents, forging compounds that reshape both chemical bonding paradigms and planetary models. For example, Helium, the most inert of all, forms unique superionic phases in giant planets and reacts with deep-Earth minerals under pressure, offering a unified explanation for primordial isotope retention. Interestingly, xenon bonds with iron and nickel under core conditions, establishing a deep-Earth candidate reservoir that provides insights into the missing xenon paradox. These compelling discoveries do more than expand the periodic table; they forge unprecedented connections between high-pressure physics, geoscience, and materials science. This review synthesizes these advances into a unified framework, establishing predictive design principles that not only explain the stability of exotic compounds, but also guide the targeted synthesis of noble gas-bearing functional materials across the pressure landscape.

Applied Physics ReviewsVol. 13(4)
Union Hospital (HK), Yanbian University (CN), Jilin University (CN), Union Hospital (CN)
Openalex Percentile: Top 15%
High-pressure geophysics and materials
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Noble gas reactivity induced by high pressure: Physical and chemical insights — Xin Zhong, Hanyu Liu, et al. · Applied Physics Reviews (2026) | TGRS Research Map | TGRS