4.8 Article

Efficient Reductive Defluorination of Branched PFOS by Metal- Porphyrin Complexes

期刊

ENVIRONMENTAL SCIENCE & TECHNOLOGY
卷 56, 期 12, 页码 7830-7839

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.1c08254

关键词

vitamin B12; porphyrin; cobalt; PFAS; defluorination

资金

  1. Australian Research Council (ARC) Special Research Initiatives [SR180100030]
  2. Futura Foundation [SNIC 2020/13-64]
  3. Australian Research Council [SR180100030] Funding Source: Australian Research Council

向作者/读者索取更多资源

Porphyrin-based metal complexes have been found to efficiently degrade PFOS, with higher degradation rate compared to VB12. Moreover, the CoII-TPP-TiIII citrate system can still efficiently degrade PFOS at room temperature.
Vitamin B12 (VB12) has been reported to degrade PFOS in the presence of TiIII citrate at 70 degrees C. Porphyrin-based catalysts have emerged as VB12 analogues and have been successfully used in various fields of research due to their interesting structural and electronic properties. However, there is inadequate information on the use of these porphyrin-based metal complexes in the defluorination of PFOS. We have therefore explored a series of porphyrin-based metal complexes for the degradation of PFOS. CoII- 5,10,15,20-tetraphenyl-21H,23H-porphyrin (CoII-TPP), CoII- TPP), and CoIII-M-TPP exhibited efficient reductive defluorination of the branched PFOS. Within 5-8 h, these compounds achieved the same level of PFOS defluorination as VB12 achieved in 7-10 days. For branched isomers, the specific removal rate of the CoII-TPP-TiIII citrate system is 64-105 times higher than that for VB12-TiIII citrate. Moreover, the CoII-TPP-TiIII citrate system displayed efficient (51%) defluorination for the branched PFOS (br-PFOS) in 1 day even at room temperature (25 degrees C). The effects of the iron and cobalt metal centers, reaction pH, and several reductants (NaBH4, nanosized zerovalent zinc (nZn0), and TiIII citrate) were systematically investigated. Based on the analysis of the products and previously published reports, a new possible defluorination pathway of branched PFOS is also proposed.

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