Moringa fruit shell derived carbon-hydrogel functional composite for sustainable pharmaceutical remediation and triboelectric energy harvesting

The development of sustainable, multifunctional materials that simultaneously address environmental remediation and energy generation remains a critical challenge. We developed a biodegradable, cost-effective hydrogel composite, namely Moringa fruit shell-derived activated carbon (MFAC) incorporated into sodium alginate-polyvinyl alcohol (SA-PVA) hydrogel beads (MFAC@SA-PVA/HB). Structural and physicochemical characterization using scanning electron microscopy (SEM), Brunauer-Emmett-Teller (BET) analysis, Fourier-transform infrared spectroscopy (FTIR), powder X-ray diffraction (P-XRD), and X-ray photoelectron spectroscopy (XPS) confirmed the formation of a hierarchically porous hybrid network with enhanced structural stability due to polymer-carbon interactions. The hydrogel exhibited excellent adsorption performance toward fluorescein sodium drug (FSD), achieving a maximum Langmuir adsorption capacity of approximately 200 mg g⁻¹. Adsorption followed the nonlinear pseudo-second-order kinetic model, indicating chemisorption-dominated uptake, with an optimum adsorption capacity of approximately 186.52 mg g⁻¹ at pH 3.5. The adsorbent retained high removal efficiency over ten consecutive adsorption-desorption cycles, demonstrating excellent reusability and stability, and its applicability was successfully validated using real water samples and industrial effluents. Furthermore, the spent MFAC@SA-PVA/HB was upcycled as a triboelectric nanogenerator (TENG), delivering an output voltage of approximately 350 mV, current of 900 nA, and a maximum power density of 1.87 mW cm⁻², enabling capacitor charging and light-emitting diode operation. Green Analytical Procedure Index (GAPI) and Analytical GREEnness (AGREE) assessments confirmed the sustainability of the proposed approach, demonstrating a sustainable dual-functional platform for water remediation, waste valorization, and energy harvesting.

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Publication Details

Journal
Discover Materials
Published
2026-09-19
DOI
https://doi.org/10.1007/s43939-026-00960-5
Primary Topic
Adsorption and biosorption for pollutant removal
Type
article
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Moringa fruit shell derived carbon-hydrogel functional composite for sustainable pharmaceutical remediation and triboelectric energy harvesting

G. B. Kolekar, Pinal S. Bhavsar, Pooja V. Devre, Shashikant P. Patole et al.
Discover Materials
Adsorption and biosorption for pollutant removal
article

Moringa fruit shell derived carbon-hydrogel functional composite for sustainable pharmaceutical remediation and triboelectric energy harvesting

G. B. Kolekar, Pinal S. Bhavsar, Pooja V. Devre, Shashikant P. Patole, Omkar S. Nille, Chandrashekhar S. Patil, Prashant V. Anbhule, Jinho Bae, Anil H. Gore, Ranjit G. Gurav, Rhishikesh M. Patil
article en

Abstract

The development of sustainable, multifunctional materials that simultaneously address environmental remediation and energy generation remains a critical challenge. We developed a biodegradable, cost-effective hydrogel composite, namely Moringa fruit shell-derived activated carbon (MFAC) incorporated into sodium alginate-polyvinyl alcohol (SA-PVA) hydrogel beads (MFAC@SA-PVA/HB). Structural and physicochemical characterization using scanning electron microscopy (SEM), Brunauer-Emmett-Teller (BET) analysis, Fourier-transform infrared spectroscopy (FTIR), powder X-ray diffraction (P-XRD), and X-ray photoelectron spectroscopy (XPS) confirmed the formation of a hierarchically porous hybrid network with enhanced structural stability due to polymer-carbon interactions. The hydrogel exhibited excellent adsorption performance toward fluorescein sodium drug (FSD), achieving a maximum Langmuir adsorption capacity of approximately 200 mg g⁻¹. Adsorption followed the nonlinear pseudo-second-order kinetic model, indicating chemisorption-dominated uptake, with an optimum adsorption capacity of approximately 186.52 mg g⁻¹ at pH 3.5. The adsorbent retained high removal efficiency over ten consecutive adsorption-desorption cycles, demonstrating excellent reusability and stability, and its applicability was successfully validated using real water samples and industrial effluents. Furthermore, the spent MFAC@SA-PVA/HB was upcycled as a triboelectric nanogenerator (TENG), delivering an output voltage of approximately 350 mV, current of 900 nA, and a maximum power density of 1.87 mW cm⁻², enabling capacitor charging and light-emitting diode operation. Green Analytical Procedure Index (GAPI) and Analytical GREEnness (AGREE) assessments confirmed the sustainability of the proposed approach, demonstrating a sustainable dual-functional platform for water remediation, waste valorization, and energy harvesting.

Discover Materials
Uka Tarsadia University (IN), Shivaji University (IN), Khalifa University of Science and Technology (AE), Sanjay Ghodawat University (IN), University of Petroleum and Energy Studies (IN), Jeju National University (KR)
Responsible consumption and production
Openalex Percentile: Top 20%
Adsorption and biosorption for pollutant removal
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