Ministry-of-Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry and Chemical Engineering, Hubei University, Wuhan, 430062, China.
Ministry-of-Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry and Chemical Engineering, Hubei University, Wuhan, 430062, China.
Anal Chim Acta. 2022 Nov 1;1232:340494. doi: 10.1016/j.aca.2022.340494. Epub 2022 Oct 7.
MXene-based nanozymes have increased research enthusiasm in the field of food safety and environment monitoring. Herein, the Cu NCs/TiC NSs nanocomposites were prepared by modifying copper nanoclusters (Cu NCs) on the surface of TiC nanosheets (NSs) with a simple two-step method. The Cu NCs/TiC NSs nanocomposites had outstanding tetraenzyme mimic activities, i.e. peroxidase (POD)-mimics, catalase (CAT)-mimics, ascorbic acid oxidase (AAO)-mimics and superoxide dismutase (SOD)-mimics. Modification of Cu NCs on TiC NSs can enhance tetraenzyme mimic activities because of the synergistic catalytic effect between Cu NCs and TiC NSs. The catalytic mechanism and steady-state kinetics of Cu NCs/TiC NSs were also investigated. Based on the POD-mimic activity of Cu NCs/TiC NSs, a simple and rapid colorimetric method was established for the on-site detection of hypoxanthine (Hx), with the linear range of 5-200 μM and limit of detection (LOD) was 0.25 μM. The visible color change with the increase of Hx concentration can be recognized by a smartphone APP to transfer the red (R), green (G) and blue (B) value for the quantitative analysis of Hx, with the linear range of 10-200 μM, which provided a convenient method for the real-time detection of Hx. This work not only provides a significant route to fabricate nanocomposite with outstanding tetraenzyme mimic activities but also offers a low-cost and rapid method for monitoring the freshness of aquatic products.
基于 MXene 的纳米酶在食品安全和环境监测领域引起了研究热潮。在此,通过简单的两步法,在碳化钛纳米片(NSs)表面修饰铜纳米团簇(Cu NCs),制备了 Cu NCs/TiC NSs 纳米复合材料。Cu NCs/TiC NSs 纳米复合材料具有出色的四酶模拟活性,即过氧化物酶(POD)模拟物、过氧化氢酶(CAT)模拟物、抗坏血酸氧化酶(AAO)模拟物和超氧化物歧化酶(SOD)模拟物。Cu NCs 在 TiC NSs 上的修饰可以增强四酶模拟活性,因为 Cu NCs 和 TiC NSs 之间存在协同催化作用。还研究了 Cu NCs/TiC NSs 的催化机制和稳态动力学。基于 Cu NCs/TiC NSs 的 POD 模拟活性,建立了一种简单快速的比色法用于现场检测次黄嘌呤(Hx),线性范围为 5-200 μM,检测限(LOD)为 0.25 μM。随着 Hx 浓度的增加,可见颜色变化可通过智能手机 APP 识别,用于 Hx 的定量分析,将红色(R)、绿色(G)和蓝色(B)值转换,线性范围为 10-200 μM,为 Hx 的实时检测提供了一种便捷的方法。这项工作不仅为制备具有出色四酶模拟活性的纳米复合材料提供了一条重要途径,而且为监测水产品的新鲜度提供了一种低成本、快速的方法。