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April 24, 2026Physical Chemistry Chemical Physics0 citations

Effect of shell structure on the photocatalytic activity of UCNPs/NMC: comparison among inert and active shells

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XWXin WangHRHehe RenJCJiahui Cui

Key Points

  • This work investigates how different shell structures impact the photocatalytic activity of upconversion nanoparticles combined with NH2-MIL-101(Cr).
  • Developed four core-shell UCNPs with distinct shell compositions.
  • Integrated UCNPs with NH2-MIL-101(Cr) for photocatalytic testing.
  • Compared photocatalytic activity using rhodamine B (RhB) decomposition.
  • Tm@Y/NMC achieved the highest photocatalytic activity for RhB decomposition.
  • Superior emission intensity and photoresponsive range were observed in Tm@Y/NMC.
  • Other shell compositions showed inferior photocatalytic performance.

Abstract

Inefficient utilization of the solar spectrum remains a major limitation in photocatalysis. To address this, we developed a photocatalyst by combining upconversion nanoparticles (UCNPs) with NH2-MIL-101(Cr) (NMC), leveraging the use of the broad photoresponsive range from the ultraviolet-visible (UV-vis) to the near-infrared (NIR) region. Despite the potential of UCNPs, their photocatalytic performance is often hindered by surface quenching, which reduces emission intensity. The incorporation of various shells is a popular and feasible pathway to solve this issue. However, there are limited studies that compare the influence of different shells under the same conditions. In this work, four core-shell UCNPs with distinct shell compositions were designed and integrated with NMC to investigate the impact of shell structure on photocatalytic activity. Among these, Tm@Y/NMC displayed the highest photocatalytic activity in decomposing rhodamine B (RhB) due to its strongest emission intensity and extended photoresponsive range. The photocatalytic activity of other samples was inferior to that of Tm@Y/NMC, indicating the superiority of the inert shell. Based on the results of trapping experiments and analysis of various spectral properties, we proposed a plausible photocatalytic mechanism. The findings of this study are helpful to guide the structural refinement of photocatalysts, thereby developing photocatalysts with more effective and robust performance.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69eb099a553a5433e34b3ff9https://doi.org/10.1039/d5cp03913d
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