Signal-on aptasensors on paper-based platform: Application of multilayer MXene nanoquencher and stabilized luminescent carbon dots.

J Hazard Mater

Tianjin Key Laboratory of Risk Assessment and Control Technology for Environment and Food Safety, Military Medical Sciences Academy, Tianjin 300050, China. Electronic address:

Published: June 2025


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Antibiotics are emerging hazardous small molecules, requiring urgent need for fast signal-on analytical methods to control antibiotic abuse. Signal-on fluorescence sensing strategies utilizing nanoquenchers and aptamers are fascinating but rarely accomplished on paper-based platforms. Here, a novel multilayer MXene sensing platform was established by leveraging NbC-MXene as a multilayer nanoquencher and zero-dimensional carbon dots-labeled aptamer (B-CDs@Apt) as a stable and bright recognition probe. The NbC-MXene has a multilayer nanosheet stack-like structure and efficient mass transfer channels. It can efficiently adsorb abundant B-CDs@Apt probes and quench their fluorescence. Importantly, the NbC-MXene/B-CDs@Apt system can release the B-CDs@Apt in response to the analyte with high sensitivity, thereby restoring the fluorescent signal. The developed aptasensor achieved sensitive and selective detection of chloramphenicol (CAP) and showed satisfactory anti-interference ability, stability, and practicability. Notably, the multilayer NbC-MXene/B-CDs@Apt system was successfully transferred to a paper-based sensing platform, with a low-density distribution of multilayer nanoquenchers carrying sufficient aptamer probes for analyte access. In comparison, the monolayer NbC nanosheets were unable to adsorb enough probes to output analyte-induced signals. The established paper-based analytical device (PAD) showed a LOD of 0.360 ng mL for CAP, which is the first paper-based MXene aptasensor reported for fluorescence detection. By replacing the aptamer and carbon dot, the strategy was further extended to detect another analyte oxytetracycline (OTC), with LODs of 0.399 in tube and 0.867 ng mL on PAD, respectively. Furthermore, concurrent detection of CAP and OTC was achieved using a dual-color PAD, demonstrating the potential to meet multi-target analytical requirements.

Download full-text PDF

Source
http://dx.doi.org/10.1016/j.jhazmat.2025.137720DOI Listing

Publication Analysis

Top Keywords

multilayer mxene
8
sensing platform
8
nbc-mxene multilayer
8
nbc-mxene/b-cds@apt system
8
multilayer
6
paper-based
5
signal-on aptasensors
4
aptasensors paper-based
4
paper-based platform
4
platform application
4

Similar Publications

Polyphenolic nanodots loaded multi-layer MXene for strong, tough and rapidly biodegradable polyvinyl alcohol/starch nanocomposites with self-healing ability and improved aging resistance.

Carbohydr Polym

November 2025

Key Lab of Guangdong Province for High Property and Functional Polymer Materials, School of Materials Science and Engineering, South China University of Technology, Guangzhou 510640, China. Electronic address:

Inspired by spider silk, polyphenolic nanodots (PTa) loaded multi-layer MXene (mMXene-PTa) through hydrogen and coordination bonds was prepared by self-polymerizing tannic acid on mMXene and used as a new crosslinker for polyvinyl alcohol (PVA). Together with starch (ST), mMXene-PTa was compounded with PVA and exfoliated to fabricate PVA/ST/mMXene-PTa nanocomposite. The phenolic hydroxyl groups in PTa formed high-density H-bonds with PVA and ST, creating an organic-inorganic dynamic crosslinking network with mMXene-PTa as nodes.

View Article and Find Full Text PDF

Rapid strides in portable electronics and telecommunication technologies have sharply escalated the demand for high-performance electromagnetic interference (EMI) shielding materials that effectively suppress secondary electromagnetic pollution while simultaneously integrating thermal management. Here an innovative, lightweight, hierarchical triple-layer aerogel structure comprising nickel (Ni) foam (NiF), titanium carbonitride (TiCNT) MXene, and poly(vinyl alcohol) (PVA), fabricated via a facile, one-step bidirectional freeze-casting process is presented. This asymmetric aerogel architecture strategically employs an impedance-matching MXene/PVA top layer for optimized microwave entry, a NiF/MXene/PVA interlayer introducing magnetic loss and enhancing heat conduction, and a reflective, thermally foamed MXene bottom layer promoting internal reflection for superior energy absorption.

View Article and Find Full Text PDF

As advanced optoelectronics continue to integrate, electromagnetic interference (EMI) shielding technologies have been extensively developed to meet multifunctional requirements, including ultrathin, flexible, and transparent properties. In this study, we develop a transparent EMI shielding film by embedding TiCT MXene particles within one-dimensional (1D) metallic fiber structures. This 1D structure facilitates the formation of a percolative network, enabling high EMI shielding performance while maintaining significant visible light transmission.

View Article and Find Full Text PDF

Additive-Free TiCT MXene Actuator with Large Deformation, Programmability, and High-Humidity Stability via Precise Interlayer Spacing Control Engineering.

Adv Sci (Weinh)

August 2025

National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, P. R. China.

Introducing external substances to intercalate MXene (TiCT) or combining MXene with other inert materials to construct bilayer/multilayer structures is the current mainstream solution for improving actuation performance of MXene-based actuators. Possible issues include the degradation in mechanical and electrical properties of MXene, or the decrease in actuation performance or even structural damage of the actuator under frequent actuation. Besides, the structural and actuation performance stability of MXene-based actuators under high humidity environment also remain challenges.

View Article and Find Full Text PDF

Double Electrochemiluminescence Quenching-Based "Signal-on/off" Immunosensor for CD44 Detection Using Glucose Oxidase-Functionalized CuFeO and TiCT@Ni(OH)-Ru/TPrA Nanoarrays.

ACS Sens

August 2025

Key Laboratory of Chemical Sensing & Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.

The rapid and accurate quantification of CD44 in serum is crucial for the early detection and prevention of malignant tumors. In this study, we developed a "signal-on/off" electrochemiluminescence (ECL) immunosensor for the ultrasensitive detection of CD44, leveraging the dual quenching effects of CuFeO-NH-Pd-GOD on TiCT@Ni(OH)-Ru/TPrA nanoarrays. A novel electroactive and catalytic multilayered nanoarray, TiCT@Ni(OH), was first synthesized and employed as an efficient signal amplifier to accelerate the ECL response by promoting the reaction between Ru(bpy) and tri-n-propylamine radicals (TPrA).

View Article and Find Full Text PDF