0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Sign in to save

A walnut shell biochar-nano zero-valent iron composite membrane for the degradation of carbamazepine via persulfate activation

Toxics 2023 38 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Yongtao Xue, Mohammadreza Kamali, Alina Liyakat, M. Bruggeman, Muhammad Zeeshan, Barbara Rossi, Maria Elisabete V. Costa, Lise Appels, Raf Dewil

Summary

Scientists created a filter made from walnut shells and iron nanoparticles that can remove up to 91% of carbamazepine (a common anti-seizure drug) from water, a pollutant that regular wastewater treatment often misses. This matters because trace amounts of pharmaceuticals like this can end up in our drinking water and rivers, and this low-cost, eco-friendly filter offers a promising way to clean them out before they affect human health or the environment.

Study Type Environmental

In this study, novel walnut shell biochar-nano zero-valent iron nanocomposites (WSBC-nZVI) were synthesized using a combined pyrolysis/reduction process. WSBC-nZVI displayed a high removal efficiency (86 %) for carbamazepine (CBZ) compared with walnut shell biochar (70 %) and nano zero-valent iron (76 %) in the presence of persulfate (PS) (0.5 g/L catalyst, 10 mg/L CBZ, 1 mM persulfate). Subsequently, WSBC-nZVI was applied for the fabrication of the membrane using a phase inversion method. The membrane demonstrated an excellent removal efficiency of 91 % for CBZ in a dead-end system (2 mg/L CBZ, 1 mM persulfate). In addition, the effect of various operating conditions on the degradation efficiency in the membrane/persulfate system was investigated. The optimum pH was close to neutral, and an increase in CBZ concentration from 1 mg/L to 10 mg/L led to a drop in removal efficiency from 100 % to 24 %. The degradation mechanisms indicated that oxidative species, including 1O2, OH, SO4-, and O2-, all contribute to the degradation of CBZ, while the role of 1O2 is highlighted. The CBZ degradation products were also investigated, and the possible pathways and the predicted toxicity of intermediates were proposed. Furthermore, the practical use of the membrane was validated by the treatment of real wastewater.

Share this paper