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用 VB12 替代还原剂转化 C8 和 C6 全氟烷基磺酸盐:对同系物特异性转化速率、产物和途径的限制因素和深入了解。

Alternate Reductants with VB12 to Transform C8 and C6 Perfluoroalkyl Sulfonates: Limitations and Insights into Isomer-Specific Transformation Rates, Products and Pathways.

机构信息

Department of Agronomy, ‡Ecological Science and Engineering, Purdue University , West Lafayette, Indiana 47907-2054, United States.

出版信息

Environ Sci Technol. 2017 Dec 5;51(23):13869-13877. doi: 10.1021/acs.est.7b03744. Epub 2017 Nov 20.

DOI:10.1021/acs.est.7b03744
PMID:29129060
Abstract

Previous studies evaluating Vitamin B12 (VB12) with Ti(III)-citrate for potential use in in situ remediation of perfluorooctanesulfonate (PFOS) found that linear (L)-PFOS was unaltered. We explored if alternate reductants could overcome this limitation with a primary focus on nanoscale zerovalent zinc (nZn). Transformation over time with VB12-nZn was quantified at 22, 70, and 90 °C for PFOS, at 70 °C for perfluorohexanesulfonate (PFHxS), and VB12-nFe and VB12-Pd/nFe at 70 °C for PFOS. Only branched (br-) isomers were transformed generating F (no SO) and polyfluoroalkyl intermediates/products. The absence of L-PFOS transformation by VB12 appears to be due to the inability of L-perfluoroalkyl sulfonates to complex with VB12 and not an activation energy issue that can be overcome by stronger reductants/catalysts. At 90 °C, 95% of br-PFOS isomers were transformed within 5 days. Isomer-specific removal rates were positively correlated to the br-CF's proximity to the terminal CF. Br-PFHxS transformation was approximately two times slower with less defluorination than br-PFOS. C8/C7 and C6/C5 polyfluorinated sulfonates from br-PFOS and br-PFHxS, respectively, were identified as both intermediates and apparent dead-end products. Pathways included 4 F replaced by 2 H and a C═C bond, and serial F replacement by H with up to 12 F atoms removed from br-PFOS.

摘要

先前的研究评估了用 Ti(III)-柠檬酸盐和 VB12 作为原位修复全氟辛烷磺酸 (PFOS) 的潜在用途,发现线性 (L)-PFOS 没有改变。我们探讨了是否可以使用其他还原剂来克服这一限制,重点是纳米级零价锌 (nZn)。在 22、70 和 90°C 下,用 VB12-nZn 对 PFOS、在 70°C 下对全氟己烷磺酸 (PFHxS)、在 70°C 下对 VB12-nFe 和 VB12-Pd/nFe 进行了随时间的转化定量研究。只有支链 (br-)异构体被转化,生成 F(无 SO)和多氟烷基中间体/产物。VB12 未能将 L-PFOS 转化,这似乎是由于 L-全氟烷基磺酸盐无法与 VB12 络合,而不是可以通过更强的还原剂/催化剂克服的活化能问题。在 90°C 下,5 天内转化了 95%的 br-PFOS 异构体。异构体特异性去除速率与 br-CF 靠近末端 CF 的程度呈正相关。与 br-PFOS 相比,br-PFHxS 的转化速度约慢两倍,脱氟程度也较低。分别来自 br-PFOS 和 br-PFHxS 的 C8/C7 和 C6/C5 多氟磺酸盐被鉴定为中间体和明显的末端产物。途径包括 4 个 F 被 2 个 H 取代和一个 C═C 键,以及 br-PFOS 中多达 12 个 F 原子被 H 取代的连续 F 取代。

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