Regulating highly photoelectrochemical activity of Zr-based mixed-linker metal-organic frameworks toward sensitive electrogenerated chemiluminescence sensing of α-glucosidase

Biosens Bioelectron. 2023 Oct 1:237:115530. doi: 10.1016/j.bios.2023.115530. Epub 2023 Jul 16.

Abstract

The conductivity and emission efficiency of metal-organic frameworks (MOFs) remain challenging factors that limit their electrogenerated chemiluminescence (ECL) sensing applications. Herein, we report a facile approach to address these challenges by integrating an electroactive linker (H2-TCPP) with an ECL active electrogenerated chemiluminescence linker (H4-TBAPy) to construct a highly photoelectrochemical active mixed-linker MOFs (ML-MOFs). ECL results revealed a remarkable 15.4-fold enhancement for the top-performing ML-MOFs (M6-MOFs), surpassing the single linker MOFs. In addition, M6-MOFs also exhibit a remarkable 73-fold enhancement in ECL efficiency compared to commercial Ru (bpy)32+. This improvement should be attributed to the synergistic effects resulting from the combination of two linkers. Furthermore, M6-MOFs are found to be served as a model ECLphore for sensitive and selective detection of α-glucosidase for the first time with good potential practicability in human serum samples. This work represents a promising direction to guide for designing good conductivity and high ECL efficiency MOFs in terms of linker functionalization and thus bandgap modulation for advancing their ECL sensing applications.

Keywords: Bandgap regulation; Electrogenerated chemiluminescence; Metal-organic frameworks; Mixed linker; α-glucosidase.

MeSH terms

  • Biosensing Techniques*
  • Humans
  • Luminescence
  • Luminescent Measurements / methods
  • Metal-Organic Frameworks*
  • alpha-Glucosidases

Substances

  • Metal-Organic Frameworks
  • alpha-Glucosidases