Liu Xiaoxue, Wang Dongyang, Xu Rongxuan, Gao Xing, Han Mingyang, Guo Yurong, Yu Lei
College of Biological and Chemical Engineering, Qilu Institute of Technology, Jinan, 250200, Shandong Province, PR China.
School of Pharmacy, Chengdu Medical College, Cheng Du, 510500, Sichuan Province, PR China.
Mikrochim Acta. 2025 Mar 11;192(4):223. doi: 10.1007/s00604-025-07091-3.
A signal tag was successfully designed by means of two-step reduction approach, in which CuNi nanoparticles (CuNi NPs) uniformly distributed on the surface of multiwall carbon nanotubes (MWCNTs). This composites not only inherits excellent conductivity and surface area of MWCNTs, but also endows the material with superior electrocatalytic performance due to the introduction of CuNi NPs. Then, a ratiometric sensing platform coupled with built-in correction ability for convenient direct determination of chloramphenicol (CAP) was exploited, wherein Cu@Ni/MWCNTs were used as signal label and ferrocene (Fc) as internal reference. It is noteworthy that ratiometric measurement was performed by directly incorporating Fc into the electrolyte solution. The profound investigation into the sensing performance of the implemented sensor revealed that Cu@Ni/MWCNTs nanocomposites exhibit satisfactory electrocatalytic activity and stability. Additionally, the integration of the ratiometric strategy markedly enhanced the reliability and repeatability and exhibited decent performance in CAP determination varying from 0.1 to 10 μM. Overall, the corporation of Cu@Ni/MWCNTs with excellent electrocatalytic ability as well as elaborated ratiometric method makes it a valuable tool for future assaying an extensive range of substances.
通过两步还原法成功设计了一种信号标签,其中铜镍纳米颗粒(CuNi NPs)均匀分布在多壁碳纳米管(MWCNTs)表面。这种复合材料不仅继承了MWCNTs优异的导电性和表面积,而且由于引入了CuNi NPs,还赋予了该材料卓越的电催化性能。然后,开发了一种具有内置校正能力的比率传感平台,用于方便地直接测定氯霉素(CAP),其中Cu@Ni/MWCNTs用作信号标签,二茂铁(Fc)用作内参。值得注意的是,比率测量是通过将Fc直接加入电解液中进行的。对所制备传感器传感性能的深入研究表明,Cu@Ni/MWCNTs纳米复合材料表现出令人满意的电催化活性和稳定性。此外,比率策略的整合显著提高了可靠性和可重复性,并且在0.1至10 μM的CAP测定中表现出良好的性能。总体而言,具有优异电催化能力的Cu@Ni/MWCNTs与精心设计的比率方法相结合,使其成为未来检测多种物质的有价值工具。