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Updated: Jan 20, 2026
Noble Gases Properties and Xenon Chemistry
Ripple-assisted adsorption of noble gases on graphene at room temperature
Weilin Liu1, Xianlei Huang1, Li-Guo Dou1
1National Laboratory of Solid State Microstructures, Jiangsu Key Laboratory for Nanotechnology, Jiangsu Physical Science Research Center, School of Physics, Nanjing University, Nanjing 210093, China.
Abstract:
Controllable gas adsorption is critical for both scientific and industrial fields, and high-capacity adsorption of gases on solid surfaces provides significant promise due to its high safety and low energy consumption. However, the adsorption of nonpolar gases, particularly noble gases, poses a considerable challenge under atmospheric pressure and room temperature (RT). Here, we theoretically simulate and experimentally realize the stable adsorption of noble gases like xenon (Xe), krypton (Kr), argon (Ar), and helium (He) on highly rippled graphene at RT. The elemental characteristics of adsorbed Xe are confirmed by electron energy loss spectroscopy and X-ray photoelectron spectroscopy. The adsorbed gas atoms are crystallized with periodic arrangements. These adsorbed noble gases on graphene exhibit high stability at RT and can be completely desorbed at ∼350°C without damaging the intrinsic lattice of the graphene. The structural and physical properties of graphene are significantly influenced by the adsorbed gas, and they fully recover after desorption. Additionally, this controllable adsorption could be generalized to other layered adsorbents such as NbSe2, MoS2, and carbon nanotubes. We anticipate that this ripple-assisted adsorption will not only re-define the theoretical framework of gas adsorption, but also accelerate advancements in gas storage and separation technologies, as well as enhance the applications in catalysis, surface modification, and other related fields.
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The elements in group 18 are noble gases (helium, neon, argon, krypton, xenon, and radon). They earned the name “noble” because they were assumed to be nonreactive since they have filled valence shells. In 1962, Dr. Neil Bartlett at the University of British Columbia proved this assumption to be false.
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