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March 16, 2026Journal of Research in Pharmacy0 citationsOpen Access

Green Modified Graphene Oxide Nanoplatelets as Drug Adsorbents

KAKibar ArasEUElif Nur UluciciMOMelisa Ogretici

Key Points

  • The aim is to enhance drug delivery efficiency using surface-modified graphene oxide with amino acids and vitamins.
  • Surface modification of graphene oxide nanoplatelets with selected amino acids and nicotinic acid
  • Characterization of modified nanoplatelets using DLS, FTIR, and SEM
  • Batch adsorption experiments to determine drug adsorption capacities at varying concentrations
  • Graphene oxide nanoplatelets achieved a high fluoxetine hydrochloride adsorption capacity of 157 mg/g
  • Nicotinic acid-modified GO exhibited superior adsorption capacity of 252 mg/g
  • Modified materials with amino acids showed lower adsorption capacities compared to unmodified GO

Abstract

Amino acids and vitamins play crucial roles in pharmaceutical applications, serving as excipients and structural components of drug delivery systems due to their biological diversity and functionality. In this study, to improve the efficiency of drug delivery systems, graphene oxide (GO) nanoplatelets were surface-modified using green chemistry principles with different amino acids (ornithine, proline, leucine, tryptophan, glutamic acid) and one vitamin (nicotinic acid—vitamin B3). The modification processes were conducted at 85°C, and the resulting adsorbent were characterized using DLS, FTIR, and SEM techniques. The drug adsorption capacities of the resulting novel adsorbents were investigated and compared with the adsorption capacity of unmodified GO. In the adsorption studies, fluoxetine hydrochloride (FLX), a selective serotonin reuptake inhibitor (SSRI), was chosen as the model drug, and batch adsorption experiments were performed at varying concentrations. The concentrations of fluoxetine hydrochloride were determined at 226 nm using UV–Visible spectrophotometry. According to the findings, GO nanoplatelets demonstrated a high FLX adsorption capacity of 157 mg/g. Materials modified with amino acids exhibited lower adsorption capacities than GO nanosheets. However, GO nanosheets modified with nicotinic acid (vitamin B3) showed excellent adsorption capacity (252 mg/g) compared to pristine GO, highlighting the effectiveness of the modification. These results indicate that surface modification of GO with amino acids and vitamins has a meaningful impact on drug adsorption performance. This study suggests that biomolecule-based modifications could be a promising approach in the design of graphene oxide-based drug delivery systems.

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Cite This Study

Aras et al. (2026) studied this question.

synapsesocial.com/papers/69b79ea18166e15b153ac354https://doi.org/10.12991/jrespharm.1718624
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