检出限
化学
银纳米粒子
光催化
亚甲蓝
核化学
线性范围
纳米颗粒
Mercury(编程语言)
选择性
龙葵
纳米材料
水溶液中的金属离子
氧化还原
氨基三乙酸
可见光谱
自来水
废水
还原剂
响应面法
降级(电信)
无机化学
水处理
化学工程
比表面积
金属
绿色化学
吸附
作者
Tooba,Nasir Assad,Marzia Batool Laila,Rao Muhammad Faisal Iqbal,Laiba Manahil,Jamshed Iqbal,Muhammad Naeem‐ul‐Hassan,Anusha Khuram,Yasir Assad,Muhammad Nauman Khan,Shabab Hussain,ALEVCAN KAPLAN,Amal M. Al-Mohaimeed,Islem Abid
标识
DOI:10.1186/s11671-025-04424-2
摘要
Abstract This study reports the green synthesis of silver nanoparticles (AgNPs) using Solanum lycopersicum var. cerasiforme (SLC) leaves extract as a natural reducing and stabilizing agent under direct sunlight for just only 3 min. The main objective was to develop a rapid, cost-effective, and environmentally friendly method to fabricate SLC-functionalized AgNPs (SLC-AgNPs) for dual applications: highly selective colorimetric detection of mercury ions (Hg 2 ⁺) and photocatalytic degradation of methylene blue (MB) dye. The synthesized nanoparticles were characterized by UV–Vis, FTIR, XRD, SEM, EDX, and DLS, confirming their spherical shape (~ 38 nm), crystalline structure, and stable surface functionalization. The SLC-AgNPs exhibited exceptional selectivity for Hg 2 ⁺ through a redox reaction mechanism, enabling colorimetric sensing with a low detection limit of 37.7 nM and a linear response range of 40–180 nM. Detection of Hg 2 ⁺ in real river and tap water samples validated the sensor’s practical applicability, with recoveries above 85%. In addition to sensing, the SLC-AgNPs demonstrated significant photocatalytic efficiency, degrading 83.4% of MB dye within 80 min of sunlight exposure, following pseudo-first-order kinetics with an activation energy of 35.02 kJ/mol. This dual- functionality capability highlights the novelty of the green synthesized SLC-AgNPs as an eco-friendly nanomaterial that combines sensitive heavy metal detection with effective dye degradation. These findings suggest promising potential for SLC-AgNPs in sustainable environmental monitoring and wastewater treatment, bridging cost-efficiency with high-performance nanotechnology.
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