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Integrating electrical conductivity capability into 3D printed alginate-gelatin hydrogels as skin tissue constructs
Eduardo Pérez Del Río1, Angela Esplugues-Lopez2, Yana Heyvaert2
1Biomaterials, Biomechanics and Tissue Engineering Group, Department of Materials Science and Engineering, Escola Enginyeria Barcelona Est and Institute for Research and Innovation in Health (IRIS), Universitat Politècnica de Catalunya-BarcelonaTech, c/ Eduard Maristany, 10-14, Barcelona 08019, Spain; IMEM-BRT Group, Departament d'Enginyeria Química, EEBE, Universitat Politècnica de Catalunya-BarcelonaTechc/ Eduard Maristany, 10-14, Barcelona 08019, Spain; Barcelona Research Center in Multiscale Science and Engineering, Universitat Politècnica de Catalunya-Barcelona Tech, c/ Eduard Maristany, 16, Barcelona 08019, Spain.
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The development of electrically conductive hydrogels has emerged as a critical advancement in soft electronics, enabling multifunctional devices for biomedical applications. This work introduces biocompatible and conductive three-dimensional (3D) printed hydrogels based on alginate-gelatin matrices, modified with gold nanoparticles (AuNPs) and MXene nanosheets (Ti₃C₂Tₓ), as electronic-engineered skin hybrid platforms for temperature sensing. The hydrogels demonstrate tunable conductivity, reaching values of 0.44 S/m for AuNP-modified and 1.04 S/m for MXene-modified samples. Structural analysis confirmed the preservation of a porous architecture, while rheological studies highlighted their mechanical integrity. Both modifications imparted temperature sensitivity, with an approximately 20 % increase in current response between 30 °C and 40 °C and sensitivities in the range from -1.54-2.00 %ºC-1. These hydrogels also exhibit excellent cytocompatibility, making them ideal candidates for engineered skin scaffolds. The combination of temperature sensing and biocompatibility advances the potential use of conductive hydrogels in real-time physiological monitoring and infection detection, marking a significant contribution to the field of bioelectronics.
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