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 4โ18 GHz) and were engineered to preserve shielding performance after environmental and mechanical/thermal challenges, including long-term storage, intensive sonication, cryogenic exposure (โ196ยฐC), high temperature (200ยฐC), cryogenic cycling (โ196ยฐC to 20ยฐC), and rapid thermal shock (ฮT = 396ยฐC). 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 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.