4.8 Article

Ultra-sensitive photoelectrochemical aptamer biosensor for detecting E. coli O157:H7 based on nonmetallic plasmonic two-dimensional hydrated defective tungsten oxide nanosheets coupling with nitrogen-doped graphene quantum dots (dWO3?H2O@N-GQDs)

期刊

BIOSENSORS & BIOELECTRONICS
卷 183, 期 -, 页码 -

出版社

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2021.113214

关键词

(WO3); Nitrogen doped graphene quantum dots (N-GQDs); Oxygen vacancy; Plasmonic; Photoelectrochemical (PEC) biosensing

资金

  1. National Natural Science Foundationof China (NSFC) [31771077, 21904014]
  2. Research Grants Council (RGC) of Hong Kong Collaborative Research Grant [C501119G]
  3. Innovation and Technology Fund
  4. GuangdongHong Kong Cooperation Scheme [GHP03918GD]
  5. Research Grants Council (RGC) of Hong Kong General Research Grant [152146/19E, 152108/18E]
  6. Hong Kong Polytechnic University Internal Fund [G-YW2H, 1ZE1E]
  7. Natural Science Foundation of Jiangsu Province [BK20190928]
  8. Natural Science Foundation of the Jiangsu Higher Education Institutions of China [19KJB150003]
  9. University Research Facility in Life Sciences of the Hong Kong Polytechnic University

向作者/读者索取更多资源

This study demonstrated a novel high-performance photoelectrochemical biosensing platform based on nonmetallic plasmonic materials, which showed high sensitivity and excellent accuracy for analysis in complex samples like milk. The heterojunction of oxygen vacancy engineered WO3?H2O and nitrogen doped graphene quantum dots provided enhanced photoelectric response due to efficient charge transfer.
Light absorption and interfacial engineering of photoactive materials play vital roles in photoexcited electron generation and electron transport, and ultimately boost the performance of photoelectrochemical (PEC) biosensing. In this work, a novel high-performance photoelectrochemical (PEC) biosensing platform was fabricated based on nonmetallic plasmonic tungsten oxide hydrate nanosheets (WO3?H2O) coupling with nitrogen doped graphene quantum dots (N-GQDs) by a facile one-step hydrothermal approach. The localized surface plasmon resonance (LSPR) properties were achieved by oxygen vacancy engineered WO3?H2O (dWO3?H2O), which could greatly extend the light absorption from visible light to near-infrared light. Moreover, by coupling with N-GQDs, the as-fabricated heterojunction (dWO3?H2O@N-GQD) provided a much enhanced photoelectric response due to the efficient charge transfer. By conjugation with E.coli O157:H7 aptamer, a novel PEC aptasensor based on dWO3?H2O@N-GQD heterojunction was fabricated with a high sensitivity for detection of E.coli O157:H7. The limit of detection (LOD) of this PEC aptasensor is 0.05 CFU/mL with a linear detection range from 0.1 to 104 CFU/mL. Moreover, high reproducibility and good accuracy could also be achieved for analysis in milk samples. This work could provide a promising platform for the development of PEC bioanalysis and offer an insight into the non-metallic plasmonic materials based heterojunctions for high-performances PEC biosensing.

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