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JQ
Verified CAS / Academic Author2 Decoded Studies

Prof. Jieshan Qiu

University of Science and Technology of China; Dalian Institute of Chemical Physics, Chinese Academy of Sciences

Research Publications & English Decoded Briefs

Showing 2 publications
New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61101-8

Single-atom iron catalysts on defect-rich nitrogen-doped carbon nanosheets for efficient phenol degradation via peroxydisulfate activation

Phenolic compounds are typical refractory organic pollutants in coal chemical coking wastewater, posing significant risks to ecosystems and human health. Conventional treatment methods are inefficient, necessitating advanced oxidation processes (AOPs). Here, we report a low-cost Fe/N–C catalyst synthesized from coal-tar pitch, a common by-product of the coal chemical industry, via a self-assembly and pyrolysis strategy using graphitic carbon nitride (g-C3N4) as a template and nitrogen source, with dicyandiamide as an auxiliary nitrogen source and FeCl3·6H2O as the iron precursor. The resulting nitrogen-doped carbon nanosheets possess abundant defects (sp3-C/sp2-C = 0.66) and atomically dispersed iron species. The Fe/N–C catalyst exhibits outstanding catalytic activity for peroxydisulfate (PDS) activation, achieving over 98% phenol degradation within 30 minutes and a 60% total organic carbon (TOC) removal rate. Mechanistic studies, including radical quenching and electron paramagnetic resonance (EPR) experiments, reveal that both radical and non-radical pathways contribute to phenol degradation, with singlet oxygen (1O2) as the primary reactive oxygen species. Electrochemical analyses demonstrate that atomically dispersed Fe sites significantly enhance interfacial electron transfer. Post-reaction characterization indicates the consumption of pyrrolic-N, C=O, and carbon defects as active sites, while graphitic-N and Fe–N structures remain stable, confirming the catalyst's stability. This work provides an economical route to convert coal-tar pitch into high-performance catalytic materials for efficient water treatment, embodying the circular economy concept of waste-to-resource utilization.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3401-9

A New Approach to Single-Atom Catalysts by Tuning Metal-Support Frontier Orbital Interactions

Single-atom catalysts (SACs) have emerged as a frontier in catalysis, yet their activity is not reliably correlated with the charge state of the central metal atom. Traditional d-band theory fails for discrete energy levels, and electronic metal-support interactions (EMSI) complicate the rational design of advanced SACs. This highlight examines a joint study by Lu, Wu, and Yang (2025) that establishes a linear relationship between the catalytic activity of Pd1 SACs on metal oxide (MOx) supports and the lowest unoccupied molecular orbital (LUMO) positions of the MOx. Through atomic layer deposition, 34 Pd1/MOx SACs with 0.1 wt% Pd loading were synthesized, including 14 MOx compositions (ZnO, CoOx, NiOx, TiO2, Ga2O3) of varying particle sizes on SiO2. Decreasing MOx particle size elevates the LUMO, narrowing the gap with the Pd1 HOMO, enhancing orbital coupling and EMSI. For ZnO, reducing particle size from ~46 nm to ~1.9 nm shifts the LUMO from -0.35 V to -1.12 V (vs. NHE) and broadens the band gap from 3.29 eV to 5.82 eV. In acetylene semi-hydrogenation, Pd1/ZnO-1.9 nm achieves a turnover frequency (TOF) of 25.6 min-1, far exceeding 1.0 min-1 for bulk ZnO, with exceptional stability and selectivity over 100 h. This frontier orbital descriptor offers a general principle for designing efficient SACs.