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February 8, 2026Langmuir3 citations

Perylenediimide-Enhanced Ultra-Sensitive Turn-on Fluorescence Detection in Interpenetrated MOFs for Nerve Agent Simulants

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JMJing MaDLDan LiSDShun-fu Du

Key Points

  • This research aims to develop highly sensitive and selective MOF-based sensors for nerve agent detection.
  • Developed interpenetrated luminescent metal-organic frameworks with various ligands.
  • Targeted diethyl chlorophosphate as a nerve agent simulant.
  • Evaluated fluorescence responses in the presence of potential interferents.
  • Analyzed ligand electronics and geometry effects on sensing performance.
  • 3D Zn-PDI-NDC framework shows a significant 'turn-on' fluorescence response to DCP.
  • Achieved an ultra-low detection limit of 3.6 ppb.
  • Demonstrated high selectivity amidst interferents.
  • Other frameworks displayed varied fluorescence responses, indicating distinct ligand interactions.

Abstract

The urgent need for sensitive, selective, and rapid detection of nerve agents (NAs), a class of highly toxic organophosphorus compounds, has motivated the development of advanced fluorescent sensing materials. Herein, a series of interpenetrated luminescent metal-organic frameworks (MOFs) with 2,6-naphthalenedicarboxylic acid (NDC) and naphthalenediimide (NDI) or perylenediimide (PDI) ligands were reported, specifically targeting the detection of diethyl chlorophosphate (DCP), a nerve agent simulant. Among them, the 3D Zn-PDI-NDC framework demonstrates a pronounced fluorescence "turn-on" response to DCP with an ultra-low detection limit of 3.6 ppb and high selectivity, even in the presence of potential interferents, which is mainly attributed to ligand conformational reorganization accompanied by host-guest ground-state interactions. On the other hand, Zn-NDI-NDC and Zn-NDC MOFs with similar interpenetrated architectures display distinct fluorescence response behaviors, including fluorescence quenching or weak enhancement, reflecting differences in ligand electronics and host-guest interactions. Such comparative sensing behaviors in structurally related MOF sensors highlight the crucial role of ligand electronics and geometry. Overall, this work presents a PDI-based interpenetrated MOF platform with excellent DCP sensing performance and offers insights into MOF design strategies for organophosphorus nerve agent detection.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/6988290a0fc35cd7a8849091https://doi.org/10.1021/acs.langmuir.5c06396
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