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Hybridizing TiCT Layers with Layered Double Hydroxide Nanosheets at the Molecular Level: A Smart Electrode Material for HO Monitoring in Cancer Cells. | LitMetric

Hybridizing TiCT Layers with Layered Double Hydroxide Nanosheets at the Molecular Level: A Smart Electrode Material for HO Monitoring in Cancer Cells.

ACS Appl Mater Interfaces

Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan 430205, China.

Published: July 2023

Vertically stacked artificial 2D superlattice hybrids fabricated through molecular-level hybridization in a controlled fashion play a vital role in scientific and technological fields, but developing an alternate assembly of 2D atomic layers with strong electrostatic interactions could be much more challenging. In this study, we have constructed an alternately stacked self-assembled superlattice composite through integration of CuMgAl layered double hydroxide (LDH) nanosheets having positive charge with negatively charged TiCT layers using well-controlled liquid-phase co-feeding protocol and electrostatic attraction and investigated its electrochemical performance in sensing early cancer biomarkers, ., hydrogen peroxide (HO). The molecular-level CuMgAl LDH/TiCT superlattice self-assembly possesses superb conductivity and electrocatalytic properties, which are significant for obtaining a high electrochemical sensing aptitude. Electron penetration in TiCT layers and rapid ion diffusion along 2D galleries have shortened the diffusion path and enhanced the charge transferring efficacy. The electrode modified with the CuMgAl LDH/TiCT superlattice has demonstrated admirable electrocatalytic abilities in HO detection with a wide linear concentration range and low real-time limit of detection (LOD) of 0.1 nM with signal/noise ratio (S/N) = 3. Practically, an electrochemical sensing podium based on the CuMgAl LDH/TiCT superlattice has been effectively applied in real-time tracking of HO effluxes excreted from different live cancer cells and normal cells after being encouraged by stimulation. The results exhibit that molecular-level heteroassembly holds great potential in electrochemical sensors to detect promising biomarkers.

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Source
http://dx.doi.org/10.1021/acsami.3c02004DOI Listing

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