Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Analytical and Testing Center, Huazhong University of Science and Technology, Wuhan 430074, China.
ACS Appl Mater Interfaces. 2020 Apr 1;12(13):15507-15516. doi: 10.1021/acsami.9b21436. Epub 2020 Mar 10.
The development of two-dimensional (2D) nanohybrid materials with heterogeneous components in nanoscale and three-dimensional (3D) well-ordered assembly in microscale has been regarded as an effective way to improve their overall performances by the synergistic coupling of the optimized structure and composition. In this work, we reported the design and synthesis of a new type of hierarchically core-shell structure of 2D VS@VC@N-doped carbon (NC) sheets decorated by ultrafine Pd nanoparticles (PdNPs), which were vertically grown on carbon fiber (CF) and assembled into a unique 3D rosette-like array. The resultant VS@VC@NC-PdNPs modified CF microelectrode integrated the structural and electrochemical properties of the heterogeneous hybridization of core-shell VS@VC@NC-PdNPs sheets with a unique rosette-like array structure, and gave rise to a significant improvement in terms of electron transfer ability, electrocatalytic activity, stability, and biocompatibility. Under the optimized conditions, the VS@VC@NC-PdNPs modified CF microelectrode demonstrated excellent electrochemical sensing performance towards biomarker hydrogen peroxide (HO) including a high sensitivity of 152.7 μA cm mM, a low detection limit of 50 nM (a signal-to-noise ratio of 3:1), as well as good reproducibility and anti-interference ability, which could be used for the real-time in situ electrochemical detection of HO in live cancer cells and cancer tissue. The remarkable performances of the proposed nanohybrid microelectrode will have a profound impact on the design of diverse 2D layered materials as a promising candidate for electrochemical biosensing applications.
二维(2D)纳米杂化材料在纳米尺度上具有异质成分的发展,以及在微尺度上具有三维(3D)有序组装,被认为是通过优化的结构和组成的协同耦合来提高其整体性能的有效方法。在这项工作中,我们报道了一种新型的二维 VS@VC@N 掺杂碳(NC)片层上垂直生长的超细微 Pd 纳米粒子(PdNPs)修饰的分层核壳结构的设计和合成,这些片层组装成独特的 3D 玫瑰花状阵列。所得的 VS@VC@NC-PdNPs 修饰的 CF 微电极集成了核壳 VS@VC@NC-PdNPs 片层的异质杂化与独特的玫瑰花状阵列结构的电化学性能,在电子转移能力、电催化活性、稳定性和生物相容性方面得到了显著提高。在优化条件下,VS@VC@NC-PdNPs 修饰的 CF 微电极对生物标志物过氧化氢(HO)表现出优异的电化学传感性能,包括高灵敏度 152.7 μA cm mM、低检测限 50 nM(信噪比为 3:1)以及良好的重现性和抗干扰能力,可用于活癌细胞和癌组织中 HO 的实时原位电化学检测。所提出的纳米杂化微电极的卓越性能将对设计各种 2D 层状材料产生深远影响,作为电化学生物传感应用的有前途的候选材料。