A Strategic Synthesis of Orange Waste-Derived Porous Carbon via a Freeze-Drying Method: Morphological Characterization and Cytocompatibility Evaluation

Author:

Kaloudi Angela S.1ORCID,Zygouri Panagiota12ORCID,Spyrou Konstantinos12ORCID,Athinodorou Antrea-Maria23ORCID,Papanikolaou Eirini23ORCID,Subrati Mohammed4ORCID,Moschovas Dimitrios1ORCID,Datta K. K. R.5ORCID,Sideratou Zili4ORCID,Avgeropoulos Apostolos1ORCID,Simos Yannis V.23ORCID,Tsamis Konstantinos I.23ORCID,Peschos Dimitrios23,Yentekakis Ioannis V.67ORCID,Gournis Dimitrios P.67ORCID

Affiliation:

1. Department of Materials Science and Engineering, University of Ioannina, 45110 Ioannina, Greece

2. Nanomedicine and Nanobiotechnology Research Group, University of Ioannina, 45110 Ioannina, Greece

3. Laboratory of Physiology, Department of Medicine, School of Health Sciences, University of Ioannina, 45110 Ioannina, Greece

4. Institute of Nanoscience and Nanotechnology, NCSR “Demokritos”, Aghia Paraskevi, 15310 Attikis, Greece

5. Department of Chemistry, Faculty of Engineering and Technology, SRM Institute of Science and Technology, Kattankulathur 603203, Tamil Nadu, India

6. School of Chemical and Environmental Engineering, Technical University of Crete, 73100 Chania, Greece

7. Institute of GeoEnergy, Foundation for Research and Technology-Hellas, 73100 Chania, Greece

Abstract

Porous carbon materials from food waste have gained growing interest worldwide for multiple applications due to their natural abundance and the sustainability of the raw materials and the cost-effective synthetic processing. Herein, orange waste-derived porous carbon (OWPC) was developed through a freeze-drying method to prevent the demolition of the original biomass structure and then was pyrolyzed to create a large number of micro, meso and macro pores. The novelty of this work lies in the fact of using the macro-channels of the orange waste in order to create a macroporous network via the freeze-drying method which remains after the pyrolysis steps and creates space for the development of different types of porous in the micro and meso scale in a controlled way. The results showed the successful preparation of a porous carbon material with a high specific surface area of 644 m2 g−1 without any physical or chemical activation. The material’s cytocompatibility was also investigated against a fibroblast cell line (NIH/3T3 cells). OWPC triggered a mild intracellular reactive oxygen species production without initiating apoptosis or severely affecting cell proliferation and survival. The combination of their physicochemical characteristics and high cytocompatibility renders them promising materials for further use in biomedical and pharmaceutical applications.

Publisher

MDPI AG

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