Department of Civil and Environmental Engineering, University of Delaware, Newark, Delaware 19716, United States.
Department of Chemical Engineering, Manhattan College, Riverdale, New York 10471, United States.
Environ Sci Technol. 2023 Sep 12;57(36):13646-13657. doi: 10.1021/acs.est.3c04714. Epub 2023 Aug 23.
Abiotic reduction by iron minerals is arguably the most important fate process for munition compounds (MCs) in subsurface environments. No model currently exists that can predict the abiotic reduction rates of structurally diverse MCs by iron (oxyhydr)oxides. We performed batch experiments to measure the rate constants for the reduction of three classes of MCs (poly-nitroaromatics, nitramines, and azoles) by hematite or goethite in the presence of aqueous Fe. The surface area-normalized reduction rate constant () depended on the aqueous-phase one-electron reduction potential () of the MC and the thermodynamic state (i.e., pe and pH) of the iron oxide-Fe system. A linear free energy relationship (LFER), similar to that reported previously for nitrobenzene, successfully captures all MC reduction rate constants that span 6 orders of magnitude: . The finding that the rate constants of all the different classes of MCs can be described by a single LFER suggests that these structurally diverse nitro compounds are reduced by iron oxide-Fe couples through a common mechanism up to the rate-limiting step. Multiple mechanistic implications of the results are discussed. This study expands the applicability of the LFER model for predicting the reduction rates of legacy and emerging MCs and potentially other nitro compounds.
在地下环境中,铁矿物的非生物还原可以说是弹药化合物 (MCs) 最重要的归宿过程。目前尚无模型可以预测结构多样的 MCs 被铁(氧)氢氧化物非生物还原的速率。我们进行了批量实验,以测量在存在水合铁的情况下赤铁矿或针铁矿还原三类 MCs(多硝基芳烃、硝胺和唑类)的速率常数。比表面积归一化还原速率常数 (k') 取决于 MC 的水相单电子还原电位 () 和铁氧化物-铁系统的热力学状态(即 pe 和 pH)。线性自由能关系 (LFER) 与先前报道的硝基苯相似,成功捕获了跨越 6 个数量级的所有 MC 还原速率常数:k' = A × exp(-β × E)。所有不同类别的 MC 的速率常数都可以用单个 LFER 来描述,这一发现表明这些结构多样的硝基化合物通过共同的机制被铁氧化物-铁偶联物还原到限速步骤。讨论了结果的多种机制含义。本研究扩展了 LFER 模型在预测传统和新兴 MCs 以及潜在其他硝基化合物还原速率方面的适用性。