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Updated: Feb 12, 2026

Synthesis and Functionalization of 3D Nano-graphene Materials: Graphene Aerogels and Graphene Macro Assemblies
Published on: November 5, 2015
Covalent Amorphous Alumina-Hydrogenated Graphene Materials With Integrated Proton Radiation Shielding and Energy
Duc Dung Nguyen1, Cher Ming Tan1,2,3,4, Chia-Chen Hsu5
1Center for Reliability Science and Technology, Chang Gung University, Taoyuan, Taiwan.
None:
The development of adaptive material platforms that integrate proton radiation shielding with energy storage capabilities is critical for achieving both miniaturization and cost-effective reliability in space electronics. Here, we present an industrially viable technology for fabricating covalent amorphous alumina-hydrogenated graphene (AHG) films that can attenuate energetic protons, store electrical energy, and adapt to downsizing. Specifically, the fabrication involves thermal-driven precipitation and crystallization of carbon species into hydrogenated graphene layers, along with oxidation of aluminum into amorphous alumina, on a nickel-copper alloy surface. AHG films exhibit effective attenuation of energetic protons (15.2 MeV, 4.3 × 1012 p/cm2), primarily attributed to proton trapping via C─H bond formation within the film matrix. Moreover, AHG films are laser-scribed into interdigitated electrodes for constructing micro-supercapacitors (µ-SCs) with impressive energy (8.33 mWh/cm3) and power (130 mW/cm3) densities. Operando measurements of the AHG µ-SCs demonstrate their dual functions in reducing the incident protons by ∼1.9 MeV in energy and ∼5.8 × 1011 protons/cm2 in fluence, while maintaining stable capacitive behavior with ∼93% capacitance retained after the severe irradiation. These findings suggest significant potential for developing single multifunctional products as a replacement for both traditional radiation shields and energy storage devices in next-generation space electronics.
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