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◆ Molecules (Basel, Switzerland)2026-08-23

Overcoming Carbon-Shell Passivation in Biomass-Templated NiFe2O4/rGO@C Composites via a Urea-Assisted One-Pot Optimization Strategy for Enhanced Electrochemical Nitrite Sensing.

Hanxu Liu, Khi Khim Beh, Jia Li, Wanling Lin, Chang Liu, Xin Liu, Chao Chen, Wenhao Chen, Mohamad Adzhar Md Zawawi

原始摘要(英文原文)· Original abstract
Biomass-templated spinel ferrite/carbon nanocomposites are promising electrode materials; however, dense carbon shells formed during low-temperature carbonization can block electrolyte access to active sites and impair electrochemical performance. The role of this carbon-shell passivation in biomass-derived ferrite/carbon composites remains largely unexplored. Here, we identify this limitation in a stepwise-synthesized NiFe2O4/rGO@C composite (NFC-S, BET surface area = 5.23 m2 g-1, ΔEp = 113.3 mV) and resolve it through a rationally designed one-pot optimization strategy in which urea simultaneously serves as a pore-forming agent and nitrogen precursor. The optimized composite (N-NFC-O) achieves a BET surface area of 186.39 m2 g-1-a 35.6-fold enhancement-with 70.1% micropore contribution and 3.13 at.% in-situ nitrogen doping. Electrochemically, ΔEp narrows to 72.3 mV and enables efficient NO2- oxidation with a ~70 mV cathodic shift, whereas NFC-S shows negligible catalytic response under identical conditions. As a proof of concept, differential pulse voltammetry (DPV) yields a nitrite sensitivity of 9.17 µA cm-2 mM-1 and a detection limit of 92.5 µM. Overall, this work identifies carbon pore accessibility as a key structural descriptor governing electrocatalytic performance in biomass-derived ferrite/carbon composites and provides a general design strategy for developing high-performance biomass-derived carbon/oxide hybrid electrodes.
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Overcoming Carbon-Shell Passivation in Biomass-Templated NiFe2O4/rGO@C Composites via a Urea-Assisted One-Pot Optimization Strategy for Enhanced Electrochemical Nitrite Sensing. — 科研速览 Science Skim