Volatile methyl siloxanes (VMSs) as a trace impurity in biogas decreases its energy utiliza-tion, and thus need to be removed. In this paper, a one-step hydrothermal reduction was performed to produce three-dimensional reduced graphene oxide aerogels (rGOAs) using industrial-grade graphene oxide (IGGO) as raw material and vitamin C (VC) as a reductant to facilitate the fabrication of rGOAs. The synthesis of rGOAs was a simple, green, and energy-efficient process. The developed rGOAs were characterized using the Brunauer–Emmett–Teller method, Raman spectrometry, scan-ning electron microscopy, Fourier-transform infrared spectroscopy, X-ray diffraction measurements and contact angle. The results obtained showed that rGOA-1 with a VC/IGGO ratio of 1/1 (m/m) exhibited a hierarchical porous structure and super-hydrophobicity, yielding a high specific surface area (137.9 m2 g−1 ) and superior water contact angle (143.8◦ ). The breakthrough adsorption capacity of rGOA-1 for hexamethyldisiloxane (L2, a VMS model) was 11 times higher than that of IGGO. Low inlet concentration and bed temperature were considered beneficial for the L2 adsorption. Inter-estingly, rGOA-1 was less sensitive to water, and it was readily regenerated for reuse by annealing at 80◦C. The rGOAs have been demonstrated to have great potential for the removal of siloxanes from biogas.
CITATION STYLE
Zheng, Y., Hou, X., Ma, X., Hao, Z., & Ma, Z. (2021). Vitamin c-assisted fabrication of aerogels from industrial graphene oxide for gaseous hexamethyldisiloxane adsorption. Applied Sciences (Switzerland), 11(18). https://doi.org/10.3390/app11188486
Mendeley helps you to discover research relevant for your work.