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Updated: Mar 7, 2026

Preparation and Reactivity of Gasless Nanostructured Energetic Materials
Published on: April 2, 2015
Tuning Nitrate Reduction to N2 with Zero-Valent Aluminum Composites: pH and Activated Carbon Porosity as Key
Xiaowen Zhang1, Peiren Ding1, Yang Liu1
1Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste, School of Ecological and Environmental Science, East China Normal University, Shanghai 200241, China.
None:
While the ball-milled [Al-Fe-AC]bm composite has demonstrated remarkable performance for nitrate remediation, the underlying mechanisms governing its pH-dependent reactivity and high nitrogen (N2) selectivity remain inadequately elucidated. This work systematically decouples the synergistic roles of Al0, Fe0, and activated carbon (AC) in the [Al-Fe-AC]bm system across a broad pH range (initial pH0 4.0-13.0; stabilized pHw 7.0-12.0). We identify a critical operational pHw threshold of approximately 10.5, beyond which the dominant reduction pathway shifts from direct electron transfer to atomic hydrogen (H*)-mediated reduction. Under acidic to circumneutral conditions, Fe0 corrosion elevates pH to depassivate Al0, enabling electron-driven nitrate reduction with high N2 selectivity (>73%). In contrast, under strongly alkaline conditions, excessive H* generation─promoted by Al//Fe and Al//AC galvanic couples─shifts the pathway toward nonselective hydrogenation, resulting in ammonium as the predominant product, as corroborated by H* scavenging experiments and electrochemical analysis. Strong correlations between AC's specific surface area/pore volume and N2 selectivity, combined with in situ Fourier-transform infrared (FT-IR) detection of *N2O intermediate, demonstrate that AC's nanoconfinement promotes *NO dimerization for selective N-N coupling. This study provides a fundamental mechanistic framework for designing efficient and selective metal-carbon composites for sustainable nitrate remediation.
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