Ding Wen-Chuan, Tian Xiu-Mei, Wang Ding-Yong, Zeng Xiao-Lan, Xu Qian, Chen Jian-Kang, Ai Xiao-Yu
College of Resources and Environment, Southwest University, Chongqing 400715, China.
Huan Jing Ke Xue. 2012 Nov;33(11):3847-53.
Biochar derived from excess sludge was used for hexavalent chromium [Cr( VI)] removal from water as a sorbent, and impacts of co-existing humic acid on performance of Cr( VI) sorption onto biochar were studied. The experimental results indicated that humic acid facilitated biochar adsorption of Cr(VI), which enhanced capacity of Cr sorption and shortened reaction time reaching equilibrium remarkably. The sorption kinetic process could be described with the pseudo second order model. On the condition of initial pH 4.0, biochar concentration 20 g x L(-1), initial concentration of Cr(VI) in the range of 50-800 mg x L(-1), the Langmuir model fitted adsorption isotherm better than the Freudlich model. The Langmuir Q0 values of biochar with and without existing humic acid were 10.10 mg x g(-1) and 5.56 mg x g(-1), respectively. In the pH range of 2.0-8.0, sorption capacity of all sorbents decreased with increasing initial pH value. Ascending concentration of humic acid in solution promoted sorption capacity of biochar. Fourier transform infrared spectroscopy (FTIR) analysis showed that hydroxyl, carboxyl, ester, aromatic C-H stretch and ring C=C on the biochar were responsible for Cr(VI) sorption. Combined with X-ray photoelectron spectroscopy (XPS) analysis, mechanism of promoting Cr( VI) sorption onto biochar was speculated that humic acid enhanced concentration of Cr( VI) ions aggregating on the surface of biochar and benefited Cr(VI) adsorption coupled with subsequent reduction by biochar functional groups. Meanwhile, humic acid also increased amount of Cr(VI) and Cr(II) removal from aqueous solution.
将剩余污泥衍生的生物炭用作吸附剂去除水中的六价铬[Cr(VI)],并研究了共存腐殖酸对生物炭吸附Cr(VI)性能的影响。实验结果表明,腐殖酸促进了生物炭对Cr(VI)的吸附,提高了Cr的吸附容量,并显著缩短了达到平衡的反应时间。吸附动力学过程可用准二级模型描述。在初始pH为4.0、生物炭浓度为20 g·L⁻¹、Cr(VI)初始浓度在50 - 800 mg·L⁻¹范围内时,Langmuir模型比Freundlich模型能更好地拟合吸附等温线。存在和不存在腐殖酸时生物炭的Langmuir Q₀值分别为10.10 mg·g⁻¹和5.56 mg·g⁻¹。在2.0 - 8.0的pH范围内,所有吸附剂的吸附容量均随初始pH值的升高而降低。溶液中腐殖酸浓度的升高促进了生物炭的吸附容量。傅里叶变换红外光谱(FTIR)分析表明,生物炭上的羟基、羧基、酯基、芳香族C - H伸缩振动和环C = C对Cr(VI)的吸附起作用。结合X射线光电子能谱(XPS)分析,推测腐殖酸促进生物炭吸附Cr(VI)的机制是其提高了聚集在生物炭表面的Cr(VI)离子浓度,有利于Cr(VI)的吸附以及随后被生物炭官能团还原。同时,腐殖酸也增加了从水溶液中去除Cr(VI)和Cr(II)的量。