Multi-functional 2D hybrid aerogels for gas absorption applications
Charalampos Androulidakis, Maria Kotsidi, George Gorgolis, Christos, Pavlou, Labrini Sygellou, George Paterakis, Nick Koutroumanis, Costas, Galiotis

TL;DR
This study develops scalable hybrid aerogels combining reduced graphene oxide and hexagonal boron nitride, demonstrating enhanced gas absorption, mechanical robustness, electrical conductivity, and potential for diverse applications.
Contribution
Introduces a simple, cost-effective method to fabricate multi-functional 2D hybrid aerogels with improved gas absorption and electrical properties.
Findings
Enhanced formaldehyde and water vapor absorption capacities.
Hybrid aerogels are mechanically robust and highly compressible.
Samples maintain electrical conductivity despite insulating components.
Abstract
Aerogels have attracted significant attention recently due to their ultra-light weight porous structure, mechanical robustness, high electrical conductivity, facile scalability and their use as gas and oil absorbers. Herein, we examine the multi-functional properties of hybrid aerogels consisting of reduced graphene oxide (rGO) integrated with hexagonal boron nitride (hBN) platelets. Using a freeze-drying approach, hybrid aerogels are fabricated by simple mixing with various volume fractions of hBN and rGO up to 0.5/0.5 ratio. The fabrication method is simple, cost effective, scalable and can be extended to other 2D materials combinations. The hybrid rGO/hBN aerogels (HAs) are mechanically robust and highly compressible with mechanical properties similar to those of the pure rGO aerogel. We show that the presence of hBN in the HAs enhances the gas absorption capacities of formaldehyde…
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