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Mechanisms of nickel sorption by a bacteriogenic birnessite

机译:细菌生成的水钠锰矿吸附镍的机理

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A synergistic experimental-computational approach was used to study the molecular-scale mechanisms of Ni sorption at varying loadings and at pH 6-8 on the biogenic hexagonal birnessite produced by Pseudomonas putida GB-1. We found that Ni is scavenged effectively by bacterial biomass-birnessite assemblages. At surface excess values below 0.18molNikg~(-1) sorbent (0.13molNimol~(-1)Mn), the biomass component of the sorbent did not interfere with Ni sorption on mineral sites. Extended X-ray absorption fine structure (EXAFS) spectra showed two dominant coordination environments: Ni bound as a triple-corner-sharing (Ni-TCS) complex at vacancy sites and Ni incorporated (Ni-inc) into the MnO_2 sheet, with the latter form of Ni favored at high sorptive concentrations and decreased proton activity. In parallel to our spectral analysis, first-principles geometry optimizations based on density functional theory (DFT) were performed to investigate the structure of Ni surface complexes at vacancy sites. Excellent agreement was achieved between EXAFS- and DFT-derived structural parameters for Ni-TCS and Ni-inc. Reaction-path calculations revealed a pH-dependent energy barrier associated with the transition from Ni-TCS to Ni-inc. Our results are consistent with the rate-limited incorporation of Ni at vacancy sites in our sorption samples, but near-equilibrium state of Ni in birnessite phases found in nodule samples. This study thus provides direct and quantitative evidence of the factors governing the occurrence of Ni adsorption versus Ni incorporation in biogenic hexagonal birnessite, a key mineral in the terrestrial manganese cycle.
机译:采用协同实验计算方法研究了恶臭假单胞菌GB-1产生的生物型六角水钠锰矿在不同载荷和pH 6-8下Ni吸附的分子尺度机制。我们发现,细菌生物质-水钠锰矿组合物有效清除了镍。在表面过量值低于0.18molNikg〜(-1)吸附剂(0.13molNimol〜(-1)Mn)时,吸附剂的生物量组分不会干扰镍在矿点上的吸附。扩展的X射线吸收精细结构(EXAFS)光谱显示了两个主要的配位环境:Ni在空位处以三角共享(Ni-TCS)络合物的形式结合,Ni掺入(Ni-inc)到MnO_2片中,镍的后一种形式在高吸附浓度和降低质子活性方面是有利的。与我们的光谱分析并行,基于密度泛函理论(DFT)进行了第一性原理几何优化,以研究空位处Ni表面配合物的结构。 Ni-TCS和Ni-inc的EXAFS和DFT衍生的结构参数之间达成了极好的协议。反应路径计算表明,pH依赖性能垒与Ni-TCS向Ni-inc的转变有关。我们的结果与我们的吸附样品中空位处镍的限速掺入相一致,但在结核样品中发现的水钠锰矿相中镍接近平衡状态。因此,这项研究提供了直接和定量的证据,说明了在生物成因的六角水钠锰矿中镍吸收与镍掺入有关的控制因素,这是陆地锰循环中的关键矿物。

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