Hollow Bi5O7I:Er3+-Yb3+ Nanoflowers in Flexible Fibrous Membranes for Catalytic Purification and Temperature Monitoring

Panpan Zhang, Yuhang Zhang, Lei Wang, Desheng Li*, Edwin Yue Bun Pun, Hai Lin*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

3 Citations (Scopus)

Abstract

The problem of water pollution caused by antibiotics urgently needs to be solved urgently. In this study, the Bi5O7I:Er3+-Yb3+ (BOIEY) nanoflowers with a diameter of 600-900 nm loaded flexible fibrous membrane has been synthesized via a combined hydrothermal and electrospinning process. It is noteworthy that the composite fibers successfully achieved efficient catalytic purification under real-time temperature monitoring. The BOIE0.5Y1.5/PAN composite fibers displayed the highest photocatalytic performance in the degradation of tetracycline hydrochloride (TC-HCl), with a removal rate of 91.83% in 80 min, which is 1.76 times that of pure BOI. The efficient photocatalytic performance was mainly attributed to the doping of rare earth ions and the special structure of the composite fibers. Er3+ and Yb3+ ions played the role of broadening the absorption spectrum by upconverting near-infrared light into visible light and promoted the separation of electron and hole pairs, thereby improving the photocatalytic efficiency. In addition, the unique structure of the hollow spherical-flower-loaded flexible fibrous membrane exhibited a larger specific surface area and stronger photon absorption capacity compared with traditional nanocrystals (NCs). Furthermore, based on the 2H11/2/4S3/24I15/2 radiative transitions of Er3+, the real-time temperature feedback of the degradation process in the 303-433 K ranges is evaluated and the relative temperature sensitivity reaches 0.63% K-1 at 353 K. The dual-function composite fibers provide insight into antibiotic removal in complex environments and ecological restoration. © 2023 American Chemical Society.
Original languageEnglish
Pages (from-to)20038-20051
JournalACS Applied Nano Materials
Volume6
Issue number21
Online published1 Nov 2023
DOIs
Publication statusPublished - 10 Nov 2023

Funding

This research was supported by the Natural Science Foundation of Liaoning Province, P.R. China (Grant No. 2022-MS-346) and the Research Grants Council of the Hong Kong Special Administrative Region, P.R. China (Grant No. CityU 11208923).

Research Keywords

  • catalytic purification
  • dual-functional property
  • flexible fibrous membrane
  • hollow nanoflower
  • temperature monitoring

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