High performance metal-free N/S-doped biochars towards oxygen reduction reaction
Metadatos
Mostrar el registro completo del ítemAutor
Matos, Renata; S. Fernandes, António José; Abdelkader Fernández, Víctor Karim; F. Peixoto, Andreia; Fernandes, Diana M.Editorial
Elsevier
Materia
Doped carbon Biochars Shrimp shells
Fecha
2024-12-05Referencia bibliográfica
Matos, R. et. al. Biomass and Bioenergy 193 (2025) 107523. [https://doi.org/10.1016/j.biombioe.2024.107523]
Patrocinador
Fundação para a Ciência e a Tecnologia (FCT/MCTES) in the framework of the project EXPL/BII-BIO/0436/2021; Laboratório Associado para a Química Verde - Tecnologias e Processos Limpos funding: 10.54499/LA/P/0008/2020, 10.54499/UIDP/50006/2020 and 10.54499/UIDB/50006/2020; Scientific Employment Stimulus (Refs. 2021.00771.CEECIND/CP1662/CT0007 (10.54499/2021.00771. CEECIND/CP1662/CT0007) and 2020.01614.CEECIND/CP1596/ CT0007 (10.54499/2020.01614.CEECIND/CP1596/CT0007) respectively); PhD fellowship 2020.05342.BD (10.54499/ 2020.05342.BD); Junta de Andalucía (Spanish regional government) for his current Postdoc contract (PAIDI 2020, Young Doctors Program)Resumen
The lack of cost-effective electrocatalysts towards oxygen reduction reaction is hindering the large-scale application
of promising energy conversion technologies, such as fuel cells or metal-air batteries. In this context, metal
free N and S doped carbon materials have been successfully applied to oxygen reduction reaction (ORR) electrocatalysis.
Heteroatom doped biochars, in particular, represent a cost-effective and sustainable replacement to
Pt-based electrocatalysts. Herein, we developed several N-doped or N and S co-doped biochars, using shrimp
shells as biomass feedstock. Four dopants containing different N/S ratios (N6, SN6, S3N3 and S3N2) were used in
order to optimize the ORR performance in alkaline medium. Doping with S3N3 revealed to be more promising, as
the resulting electrocatalyst, S3N3-CC, obtained the most positive onset potential (Eonset), higher diffusion
limiting current density (jL) and number of electrons transferred per oxygen molecule (nO2) closer to 4. Moreover,
this biochar showed excellent stability over 15 h of continuous use. The performance of S3N3-CC was mainly
explained by a high content of pyridinic and graphitic N, a high ratio between pyridinic and pyrrolic N, the
introduction of thiophenic S and an optimized N/S ratio.