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Fluorescent Moieties Through Alkaline Treatment of Graphene Oxide: A Potential Substitute to Replace CRM in wLEDS

TitoloFluorescent Moieties Through Alkaline Treatment of Graphene Oxide: A Potential Substitute to Replace CRM in wLEDS
Tipo di pubblicazioneArticolo su Rivista peer-reviewed
Anno di Pubblicazione2025
AutoriProtopapa, Maria Lucia, Burresi Emiliano, Palmisano Martino, and Pesce Emanuela
RivistaChemEngineering
Volume9
Type of ArticleArticle
ISSN23057084
Abstract

White-light-emitting diodes (wLEDs) are central to next-generation lighting technologies, yet their reliance on critical raw materials (CRMs), such as rare-earth elements, raises concerns regarding sustainability and supply security. In this work, we present a simple, low-cost method to produce photoluminescent carbon-based nanostructures—known as oxidative debris (OD)—via alkaline treatment of graphene oxide (GO) using KOH solutions ranging from 0.04 M to 1.78 M. The resulting OD, isolated from the supernatant after acid precipitation, exhibits strong and tunable photoluminescence (PL) across the visible spectrum. Emission peaks shift from blue ( 440 nm) to green ( 500 nm) and yellow ( 565 nm) as a function of treatment conditions, with excitation wavelengths between 300 and 390 nm. Optical, morphological. and compositional analyses were performed using UV-Vis, AFM, FTIR, and Raman spectroscopy, confirming the presence of highly oxidized aromatic domains. The blue-emitting (S2) and green/yellow-emitting (R2) fractions were successfully separated and characterized, demonstrating potential color tuning by adjusting KOH concentration and treatment time. This study highlights the feasibility of reusing GO-derived byproducts as sustainable phosphor alternatives in wLEDs, reducing reliance on CRMs and aligning with green chemistry principles. © 2025 Elsevier B.V., All rights reserved.

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URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-105014364735&doi=10.3390%2Fchemengineering9040073&partnerID=40&md5=3b496e81e035bbf32ffb55d34bcdc3cd
DOI10.3390/chemengineering9040073
Citation KeyProtopapa2025