PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
January 23, 2026Luminescence0 citations

Innovative Microwave‐Assisted Fabrication of N,S‐Doped Carbon Quantum Dots as Fluorescent Nanosensors for the Sensitive Monitoring of Lapatinib in Plasma and Water Samples: A Holistic Evaluation of Greenness, Efficiency, and Novelty

View Full Paper
AAAmal Abdullah AlrashidiPrincess Nourah bint Abdulrahman UniversityGMGalal MagdyKafrelsheikh UniversityARAya Saad RadwanDamietta University

Key Points

  • The aim is to develop an efficient and environmentally friendly method for synthesizing N,S-doped carbon quantum dots (N,S-CQDs) for monitoring lapatinib.
  • Developed a microwave-assisted synthesis technique using Cichorium intybus leaves.
  • Characterized N,S-CQDs using HR-TEM, EDX, zeta potential, FT-IR, and fluorescence spectroscopy.
  • Evaluated performance based on quantum yield, linearity, and detection limits in various matrices.
  • N,S-CQDs synthesized in under 50 seconds with a quantum yield of 24%.
  • Achieved high linearity (r > 0.999) for lapatinib detection in concentrations of 0.2–8.0 μg/mL.
  • Demonstrated exceptional recovery in plasma and water matrices, confirming sensitivity and accuracy.

Abstract

ABSTRACT An environmentally benign microwave‐assisted method was developed to synthesize nitrogen and sulfur co‐doped carbon quantum dots (N,S‐CQDs) from Cichorium intybus leaves, enabling their use as efficient fluorescent nanosensors. The method is incredibly quick, enabling the acquisition of N,S‐CQDs in under 50 s. Their unique optical and structural characteristics were confirmed by thorough characterization using HR‐TEM, EDX, zeta potential, FT‐IR, UV–Vis, and fluorescence spectroscopy. The N,S‐CQDs exhibited a quantum yield of 24%, highlighting their strong potential as fluorescent nanoprobes. Notably, they displayed switch‐off fluorescence behavior suitable for the determination of the anticancer drug lapatinib in spiked human plasma and environmental water samples. The method demonstrated excellent linearity across 0.2–8.0 μg/mL ( r > 0.999) with a detection limit of 0.05 μg/mL. High recovery values in plasma and water matrices further validated the sensitivity and accuracy of the approach. Moreover, sustainability and performance were systematically evaluated using the Analytical Green Star Area (AGSA) and the Multi‐color Assessment platform for White Analytical Chemistry (MA‐tool), confirming the technique's environmental friendliness, broad applicability, analytical robustness, and novelty. This pioneering work paves the way for the development of green nanoprobes with significant relevance in biological and environmental monitoring.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Alrashidi et al. (2026) studied this question.

synapsesocial.com/papers/6973106cc8125b09b0d201f2https://doi.org/10.1002/bio.70427
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Pharmaceutical pollution in marine waters and benthic flora of the southern Australian coastline2023 · 25 citations
  2. 2Carbon Quantum Dots: Surface Passivation and Functionalization2015 · 202 citations
  3. 3Adverse effects of tyrosine kinase inhibitors in cancer therapy: pathophysiology, mechanisms and clinical management2023 · 494 citations
  4. 4Förster resonance energy transfer–what can we learn and how can we use it?2019 · 44 citations
  5. 5The quenching of the fluorescence of carbon dots: A review on mechanisms and applications2017 · 1,593 citations