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531.
添加有机物料对淹水土壤Cd活性的影响机制   总被引:7,自引:0,他引:7       下载免费PDF全文
葛滢  黄丹丹  周权锁 《中国环境科学》2009,29(10):1093-1099
采用红壤(pH 4.46)和潮黄土(pH 7.10),在N2覆盖下淹水(25±0.5)℃培养60d,研究了淹水土壤加入有机物料(苜蓿、稻草粉)后Cd活性变化及其制约机理.结果表明,土壤淹水后,氧化铁的还原溶解作用带来Fe组分再分配和pe+pH下降,导致Cd组分向低活性组分转化.淹水土壤添加有机物料后,通过pe+pH下降效应和pH升降效应增强了对Cd活性转化的影响,其中,红壤有机物料处理较对照pe+pH降低和pH值升高,致使固相Exc-Cd含量和液相Cd浓度低于对照,土壤Cd活性降低;潮黄土有机物料处理pe+pH和pH值均低于对照,致使固相Exc-Cd含量和液相Cd浓度高于对照,土壤Cd活性增加.添加有机物料对固相Org-Cd再分配的影响小,但在液相中DOM与Cd的络合效应显著.  相似文献   
532.
铁硫酸盐次生矿物广泛存在于酸性矿山废水(AMD)污染流域沉积物中,是多种有毒有害重金属的沉淀库.硫酸盐还原菌对矿物的还原作用可破坏矿物的稳定性从而引起共沉淀重金属的释放.在前期研究中发现柠檬酸杆菌Citrobacter sp.存在于AMD流域沉积物中,且在还原条件下具有较强的硫酸盐还原能力.因此,探究其对铁硫次生矿物的还原溶解及矿物晶相转化行为的影响尤为重要.本研究选取矿区沉积物中典型的铁硫次生矿物施氏矿物和黄钾铁矾为研究对象,在实验室条件下考察了从AMD污染沉积物中筛选到的菌株Citrobacter sp.EBS8对矿物的还原溶解及相转化的影响.结果表明,在缺氧、中性pH及电子供体足量时,在EBS8的作用下施氏矿物和黄钾铁矾均出现了明显的还原溶解现象.菌株EBS8可利用乳酸盐作为电子供体还原SO42-和Fe(III).SEM结果显示,施氏矿物在反应初期出现表面毛刺不平现象,黄钾铁矾发生由外向内的逐层溶解,矿物转化过程中都出现空壳形貌.XRD检测到施氏矿物组的主要转化产物为菱铁矿和蓝铁矿,黄钾铁矾体系中主要是蓝铁矿和马基诺矿.这些结果有助于了解AMD污染沉积物中铁硫酸盐矿物的转化行为及为AMD污染治理提供理论支撑.  相似文献   
533.
● nZVI, S-nZVI, and nFeS were systematically compared for Cd(II) removal. ● Cd(II) removal by nZVI involved coprecipitation, complexation, and reduction. ● The predominant reaction for Cd(II) removal by S-nZVI and nFeS was replacement. ● A simple pseudo-second-order kinetic can adequately fit Fe(II) dissolution. Cadmium (Cd) is a common toxic heavy metal in the environment. Taking Cd(II) as a target contaminant, we systematically compared the performances of three Fe-based nanomaterials (nano zero valent iron, nZVI; sulfidated nZVI, S-nZVI; and nano FeS, nFeS) for Cd immobilization under anaerobic conditions. Effects of nanomaterials doses, initial pH, co-existing ions, and humic acid (HA) were examined. Under identical conditions, at varied doses or initial pH, Cd(II) removal by three materials followed the order of S-nZVI > nFeS > nZVI. At pH 6, the Cd(II) removal within 24 hours for S-nZVI, nFeS, and nZVI (dose of 20 mg/L) were 93.50%, 89.12% and 4.10%, respectively. The fast initial reaction rate of nZVI did not lead to a high removal capacity. The Cd removal was slightly impacted or even improved with co-existing ions (at 50 mg/L or 200 mg/L) or HA (at 2 mg/L or 20 mg/L). Characterization results revealed that nZVI immobilized Cd through coprecipitation, surface complexation, and reduction, whereas the mechanisms for sulfidated materials involved replacement, coprecipitation, and surface complexation, with replacement as the predominant reaction. A strong linear correlation between Cd(II) removal and Fe(II) dissolution was observed, and we proposed a novel pseudo-second-order kinetic model to simulate Fe(II) dissolution.  相似文献   
534.
MIL-53(Fe) was successfully prepared and deposited on the surface carboxylated polyester (PET) fiber by an optimized conventional solvothermal or industrialized high temperature pressure exhaustion (HTPE) process to develop a PET fiber supported MIL-53(Fe) photocatalyst ([email protected]) for the degradation of polyvinyl alcohol (PVA) in water under light emitting diode (LED) visible irradiation. On the basis of several characterizations, [email protected] was tested for the photocalytic ability and degradation mechanism. It was found that temperature elevation significantly enhanced the formation and deposition of MIL-53(Fe) with better photocatalytic activity. However, higher temperature than 130°C was not in favor of its photocatalytic activity. Increasing the number of surface carboxyl groups of the modified PET fiber could cause a liner improvement in MIL-53(Fe) loading content and photocatalytic ability. High visible irradiation intensity also dramatically increased photocatalytic ability and PVA degradation efficiency of [email protected] Na2S2O8 was used to replace H2O2 as electron acceptor for further promoting PVA degradation in this system. [email protected] prepared by HTPE process showed higher MIL-53(Fe) loading content and slightly lower PVA degradation efficiency than that prepared by solvothermal process at the same conditions. These findings provided a practical strategy for the large-scale production of the supported MIL-53(Fe) as a photocatalyst in the future.  相似文献   
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