Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, People's Republic of China.
ACS Appl Mater Interfaces. 2022 Feb 23;14(7):9442-9453. doi: 10.1021/acsami.1c22764. Epub 2022 Feb 9.
The exploration of new strategies for portable detection of mercury ions with high sensitivity and selectivity is of great value for biochemical and environmental analyses. Herein, a straightforward, convenient, label-free, and portable sensing platform based on a Au nanoparticle (NP)-decorated WO hollow nanoflower was constructed for the sensitive and selective detection of Hg(II) with a pressure, temperature, and colorimetric triple-signal readout. The resulting Au/WO hollow nanoflowers (Au/WO HNFs) could efficaciously impede the aggregation of Au NPs, thus significantly improving their catalytic activity and stability. The sensing mechanism of this new strategy using pressure as a signal readout was based on the mercury-triggered catalase mimetic activity of Au/WO HNFs. In the presence of the model analyte Hg(II), HO in the detection system was decomposed to O fleetly, resulting in a detectable pressure signal. Accordingly, the quantification of Hg(II) was facilely realized based on the pressure changes, and the detection limit could reach as low as 0.224 nM. In addition, colorimetric and photothermal detection of Hg(II) using the Au/WO HNFs based on their mercury-stimulated peroxidase mimetic activity was also investigated, and the detection limits were calculated to be 78 nM and 0.22 μM for colorimetric and photothermal methods, respectively. Hence, this nanosensor can even achieve multimode determination of Hg(II) with the concept of point-of-care testing (POCT). Furthermore, the proposed multimode sensing platform also displayed satisfactory sensing performance for the Hg(II) assay in actual water samples. This promising strategy may provide novel insights on the fabrication of a multimode POCT platform for sensitive, selective, and accurate detection of heavy metal ions.
探索具有高灵敏度和选择性的用于汞离子的便携式检测的新策略对于生化和环境分析具有重要价值。在此,构建了一种基于金纳米粒子(Au NPs)修饰的 WO 中空纳米花的简单、方便、无标记且便携式的传感平台,用于通过压力、温度和比色三重信号读出对 Hg(II)进行灵敏和选择性检测。所得到的 Au/WO 中空纳米花(Au/WO HNFs)可以有效地阻止 Au NPs 的聚集,从而显著提高其催化活性和稳定性。该新策略使用压力作为信号读出的传感机制基于 Au/WO HNFs 的汞触发过氧化物酶模拟活性。在存在模型分析物 Hg(II)的情况下,检测系统中的 HO 迅速分解为 O,从而产生可检测的压力信号。因此,基于压力变化可以轻松实现 Hg(II)的定量,检测限低至 0.224 nM。此外,还研究了基于 Au/WO HNFs 的汞刺激过氧化物酶模拟活性的比色和光热检测 Hg(II),比色和光热方法的检测限分别计算为 78 nM 和 0.22 μM。因此,该纳米传感器甚至可以使用即时检测(POCT)的概念实现对 Hg(II)的多模式测定。此外,所提出的多模式传感平台在实际水样中对 Hg(II)测定也表现出令人满意的传感性能。该有前景的策略可能为用于灵敏、选择性和准确检测重金属离子的多模式 POCT 平台的构建提供新的见解。