Coastal Plains Soil, Water and Plant Research Center, United States Department of Agriculture, Agricultural Research Service, 2611 West Lucas St., Florence, SC, 29501, USA.
Coastal Plains Soil, Water and Plant Research Center, United States Department of Agriculture, Agricultural Research Service, 2611 West Lucas St., Florence, SC, 29501, USA.
Chemosphere. 2024 Jan;347:140688. doi: 10.1016/j.chemosphere.2023.140688. Epub 2023 Nov 15.
Common isotherm and kinetic models cannot describe the pH-dependent sorption of heavy metal cations by biochar. In this paper, we evaluated a pH-dependent, equilibrium/kinetic model for describing the sorption of cadmium (Cd), copper (Cu), nickel (Ni), lead (Pb), and zinc (Zn) by poultry litter-derived biochar (PLB). We performed sorption experiments across a range of solution pH, initial metal concentration, and reaction time. The sorption of all five metals increased with increasing pH. For Cd, Cu, and Pb, kinetics experiments demonstrated that sorption rates were greater at pH 6.5 than at pH 4.5. For each metal, all sorption data were described using single set of four adjustable parameters. Sorption edge and isotherm data were well described with R > 0.93 in all cases. Time-dependent sorption was well described (R ≥ 0.90) for all metals except Pb (R = 0.77). We then used the best-fit model parameters to calculate linear distribution coefficients (K) and equilibration times as a function of pH and initial solution concentration. These calculations provide a more robust way of characterizing biochar affinity for metal cations than Freundlich distribution coefficients or Langmuir sorption capacity. Because this model can characterize metal cation sorption by biochar across a wider range of reaction conditions than traditional isotherm or kinetic models, it is better suited for estimating metal cation/biochar interactions in engineered or natural systems.
常见的等温和动力学模型无法描述生物炭对重金属阳离子的 pH 依赖性吸附。在本文中,我们评估了一个 pH 依赖性的平衡/动力学模型,用于描述鸡粪衍生生物炭(PLB)对镉(Cd)、铜(Cu)、镍(Ni)、铅(Pb)和锌(Zn)的吸附。我们在一系列溶液 pH 值、初始金属浓度和反应时间范围内进行了吸附实验。所有五种金属的吸附均随 pH 值的增加而增加。对于 Cd、Cu 和 Pb,动力学实验表明,在 pH 6.5 时的吸附速率大于在 pH 4.5 时的吸附速率。对于每种金属,所有吸附数据都使用四组可调参数进行了描述。在所有情况下,吸附边缘和等温线数据的拟合度都很好(R>0.93)。除 Pb(R=0.77)外,所有金属的时间依赖性吸附都得到了很好的描述(R≥0.90)。我们随后使用最佳拟合模型参数来计算线性分配系数(K)和平衡时间作为 pH 值和初始溶液浓度的函数。与 Freundlich 分配系数或 Langmuir 吸附容量相比,这些计算为描述生物炭对金属阳离子的亲和力提供了一种更稳健的方法。由于该模型可以描述生物炭在比传统等温线或动力学模型更广泛的反应条件下对金属阳离子的吸附,因此更适合于估计工程或自然系统中金属阳离子/生物炭的相互作用。