Issue 5, 2026, Issue in Progress

One-pot green synthesis of rGO/SnO2 nanocomposites from cellulose and SnCl2 as Lewis acid catalyst

Abstract

The development of sustainable, single-step protocols for fabricating metal oxide-graphene heterostructures remains a critical challenge to overcome the toxicity and complexity of conventional synthesis methods. In this regard, this paper reports a one-pot, cellulose-based hydrothermal route for obtaining reduced graphene oxide/tin dioxide (rGO/SnO2) nanocomposites. This route exploits tin(II) chloride as a dual-action reducing agent (Lewis acid) and isomerization/dehydration catalyst, inducing the cellulose → glucose → fructose → 5-HMF reaction cascade and the concomitant aromatization to sp2 carbon while oxidizing Sn2+ to rutile SnO2. The process yields uniformly dispersed SnO2 nanocrystallites anchored on few-layer reduced graphene, as confirmed by ATR-FTIR/Raman, XRD, SEM/EDX, and TEM. Raman analysis shows low structural disorder (D/G ≈ 1.72), XRD identifies rutile SnO2 with an average crystallite size of ∼5.4 nm, and TEM reveals a homogeneous nano-SnO2 distribution on wrinkled rGO sheets. TGA indicates a Csp2/SnO2 mass ratio of ∼8, supporting high graphitic content. Density functional theory on a representative Sn3O6-rGO model indicates a moderate HOMO–LUMO gap (∼1.30 eV), substantial electrophilicity, and a balanced electrostatic potential, consistent with efficient interfacial electronic communication and adsorption-driven reactivity. By integrating in situ nucleation of ultrasmall SnO2 with the formation of conductive rGO, the architecture aligns with state-of-the-art SnO2/graphene hybrids known to accelerate charge transport and redox kinetics for energy storage, catalysis, and gas sensing. The green, single-step workflow avoids external reducing agents and graphitic exfoliation steps, offering a scalable pathway to high-quality SnO2/rGO heterointerfaces that are broadly applicable to electrochemical, photocatalytic, and room-temperature sensing platforms.

Graphical abstract: One-pot green synthesis of rGO/SnO2 nanocomposites from cellulose and SnCl2 as Lewis acid catalyst

Article information

Article type
Paper
Submitted
10 Oct 2025
Accepted
04 Jan 2026
First published
20 Jan 2026
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2026,16, 4305-4317

One-pot green synthesis of rGO/SnO2 nanocomposites from cellulose and SnCl2 as Lewis acid catalyst

L. Jabir, O. Azougagh, H. A. Laasri, N. Mohammed, I. Jilal, Y. El Ouardi, D. Brault, H. El-Hammi, M. Ahari, A. Salhi, M. Abou-Salama, M. Zaghrioui, E. Gharibi and S. El Barkany, RSC Adv., 2026, 16, 4305 DOI: 10.1039/D5RA07755A

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