PEER-REVIEWED PUBLICATION

2026

Annealing-Enabled 3D Printing of MXene/Carbon Aerogels with Stability in Harsh Conditions

A tensile test divider icon

Osman A, Xie Y, et al.

Advanced Functional Materials

City University of Hong Kong, Benha University

RESEARCH SUMMARY
This study reports an annealing-enabled 3D printing approach to fabricate hierarchical MXene/carbon aerogels designed for electromagnetic interference (EMI) shielding and sensing applications that require long-term performance under harsh environments. The printed aerogels achieved very high EMI shielding effectiveness (reported up to 111.1 dB, with ~100.14 dB maintained across 4–18 GHz) and were engineered to preserve shielding performance after environmental and mechanical/thermal challenges, including long-term storage, intensive sonication, cryogenic exposure (−196°C), high temperature (200°C), cryogenic cycling (−196°C to 20°C), and rapid thermal shock (ΔT = 396°C). The same materials platform was also used to build flexible, sensitive pressure sensors for motion detection and smart-interface concepts, positioning the hierarchical MXene/carbon aerogels as stable candidates for device shielding and wearable/interactive sensing.
CellScale hexagons, without text

CELLSCALE INSTRUMENT USED

UniVert

Mechanical properties of the MXene/carbon aerogels were measured using a CellScale UniVert mechanical tester. Specific test modality (e.g., compression vs tensile), loading rate, specimen geometry, and environmental conditions for the UniVert testing are not available from the accessible abstract/metadata, so these details are not inferred here.
AUTHORS

Osman A., Xie Y., Sun C., Lu J..

PUBLICATION DETAILS
JOURNAL

Advanced Functional Materials

YEAR

2026

INSTITUTIONS

City University of Hong Kong, Benha University

COUNTRIES

China, Egypt

INSTRUMENT USED

UniVert

TESTING METHODS
RESEARCH APPLICATIONS

Material Fatigue and DurabilitySoft Robotics MaterialsWearable Bioelectronics

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Product of Interest:
CellScale hexagon shapes