Electrochemiluminescence sensor based on Ag/ZnO nanomaterial-enhanced GPTMS/FeCdS@FeInS for sensitive analysis of CD44.

Analyst

Collaborative Innovation Center for Green Chemical Manufacturing and Accurate Detection, Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.

Published: June 2025


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Incorporating an additional metal ion into binary metal sulfides to adjust the band gap and carrier mobility, thereby forming ternary metal sulfides, has significant potential in the field of electrochemical luminescence. This research represents the first application of FeCdS@FeInS as an innovative electrochemiluminescence (ECL) emitter. To further enhance the ECL signal, ZIF-8-derived Ag-doped ZnO nanocomposites were engineered as co-reaction accelerators, leveraging their exceptional catalytic activity to enhance the FeCdS@FeInS/KSO system through efficient generation of SO˙ radicals. A novel sandwich-type ECL immunosensor for detecting cell adhesion molecule 44 (CD44) was initially constructed. The biocompatibility of the material was enhanced through epoxy functionalization using 3-glycidyloxypropyltrimethoxysilane (GPTMS). Ag/ZnO served as a catalyst to promote the reduction of SO, generating more SO˙, which enhanced the ECL intensity and stability of GPTMS/FeCdS@FeInS under the dual influence of catalysing SO decomposition and acting as an energy donor. Through the synergistic catalytic effect of Ag, the electrical conductivity and biocompatibility of the composites were enhanced, and the bandgap width of ZnO was reduced, thereby improving the electron transfer capability of Ag/ZnO. The developed immunosensor was utilized to accurately detect CD44, exhibiting a linear range of 10 fg mL to 100 ng mL and a detection limit of 9.16 fg mL.

Download full-text PDF

Source
http://dx.doi.org/10.1039/d5an00366kDOI Listing

Publication Analysis

Top Keywords

metal sulfides
8
electrochemiluminescence sensor
4
sensor based
4
based ag/zno
4
ag/zno nanomaterial-enhanced
4
nanomaterial-enhanced gptms/fecds@feins
4
gptms/fecds@feins sensitive
4
sensitive analysis
4
analysis cd44
4
cd44 incorporating
4

Similar Publications

Wounds with extensive tissue damage are highly susceptible for microbial infections delaying the process of wound healing. Currently, biomaterials with therapeutic molecules emerged as key players in wound repairing. This work developed a novel collagen-based hydrogel loaded with allicin and silver nanoparticles.

View Article and Find Full Text PDF

Redox-active inverse crowns - pockets for heavier chalcogenides.

Dalton Trans

September 2025

Inorganic and Organometallic Chemistry, Friedrich-Alexander-Universität Erlangen-Nürnberg, Egerlandstraße 1, 91058 Erlangen, Germany.

The reactivity of the redox-active metal crown complex (BDI*)MgNaN'' (VI), formally containing a Mg centre, with phosphine chalcogenides, RPCh (Ch = O, S, Se, Te; R = Me, Et) was investigated (BDI* = HC[BuCN(DIPeP)] with DIPeP = 2,6-EtCH-phenyl). While all RPCh reagents could be reduced, only the heavier ones led to clean reduction to S, Se and Te anions which were captured in the metalla-cycle. The smaller S anion can be stabilized by the tetrametallic MgNa-crown but the larger Se and Te require a pentametallic MgNa-crown.

View Article and Find Full Text PDF

The streams of Alaska's Brooks Range lie within a vast (~14M ha) tract of protected wilderness and have long supported both resident and anadromous fish. However, dozens of historically clear streams have recently turned orange and turbid. Thawing permafrost is thought to have exposed sulfide minerals to weathering, delivering iron and other potentially toxic metals to aquatic ecosystems.

View Article and Find Full Text PDF

For the first time, we examined the catalytic performance of a NiB/SiO catalyst with 10 wt % NiB in model hydrodesulfurization of 4,6-dimethyldibenzothiophene (4,6-DMDBT) also together with a competing nitrogen compound, that is, carbazole. The NiB/SiO catalyst (fresh, reduced, and spent) was characterized using the following techniques: N sorption, ICP, XRD, CO chemisorption, XPS, and elemental analysis. The results of XRD, XPS, and elemental analysis indicated the partial decomposition of the NiB phase into metallic nickel (accompanied by boron atoms) and partial sulfidation into NiS species under reaction conditions.

View Article and Find Full Text PDF

A series of six quinary rare-earth sulfides CeEuNaSiS, CeEuKSiS, CeEuRbSiS, CeEuCsSiS, CeEuAgSiS, and CeEuCuSiS were obtained in an alkali iodide flux using the boron-chalcogen mixture (BCM) method. Single crystal X-ray diffraction was used to determine the structures of the high quality single crystals that were grown; their elemental compositions were confirmed by energy-dispersive spectroscopy (EDS). The compounds crystallize in the hexagonal crystal system in the noncentrosymmetric space group 6.

View Article and Find Full Text PDF