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1.
对氯代烃污染地下水进行厌氧微生物还原脱氯时,存在微生物驯化时间长、pH值持续降低、有毒中间产物累积等限制修复效率的问题,为解决上述问题,本课题组制备了一种乳化油(EVO)包覆纳米零价铁(NZVI)的修复试剂,即乳化纳米铁(EZVI),其可以抑制NZVI钝化,增强反应速率并促进厌氧微生物脱氯反应.通过静态批实验探究了EZVI与三氯乙烯的反应动力学及EZVI对四氯乙烯(PCE)还原脱氯的中间代谢产物,并阐明了该过程机理.结果表明EZVI可以有效延缓NZVI钝化、提高反应活性,反应符合一级反应动力学,kobs=0.182d-1;EZVI还原PCE可以减少中间产物二氯乙烯的积累,10天内去除PCE达到97.2%,比EVO还原体系提高了68.9%;反应过程中pH值保持在6.5~7.5,ORP值在-50~10mV,提供了良好的还原环境,有效促进了厌氧微生物脱氯反应进行.  相似文献   

2.
通过涂敷法、共混法和化学接枝法制备了PVDF-PAA膜、PVDF·TiO2-PAA膜和PVDF-g-AA膜3种新型载体膜,分别负载纳米钯/铁双金属颗粒后对一氯乙酸进行还原脱氯实验并通过SEM以及红外吸收光谱(FT-IR)对3个体系进行表征。结果发现,与传统的Pd/Fe纳米悬浮颗粒体系相比,膜载纳米双金属颗粒体系的脱氯效率更高,并且PVDF-PAA膜、PVDF·TiO2-PAA膜和PVDF-g-AA膜3种膜负载的纳米钯/铁双金属颗粒在120min内对10mg/L的一氯乙酸的脱氯效率分别是:56.33%、71.01%和75.51%。  相似文献   

3.
基于零价铁的双金属体系对六氯苯还原脱氯研究   总被引:1,自引:2,他引:1  
利用Ag、Pb和Cu作为催化金属与微米级铁粉制成不同的双金属体系还原脱氯六氯苯(hexachlorobenzene,HCB),探讨不同催化金属种类、不同双金属添加量以及不同离子强度3种因素对HCB脱氯效率的影响,并剖析双金属催化条件下HCB的脱氯规律.结果表明,微米级铁粉对HCB几乎无还原脱氯效果,添加Ag、Pb和Cu对HCB均具有良好的催化脱氯能力,当Ag/Fe、Pb/Fe和Cu/Fe的最佳比例分别为0.2%、0.5%和1%时,反应2 h后HCB的脱氯率分别达到93.5%、88.5%和49.6%;同时,由于催化金属均匀附着在零价铁表面可以形成更多的微型原电池,故增加双金属投加量可有效提高HCB脱氯速率,0.1 g Pb/Fe对HCB脱氯率为38.3%,而0.8 g Pb/Fe对HCB脱氯率可达到88.6%;另外,离子强度增大对HCB的脱氯也有一定促进作用,在Na2SO4浓度分别为0、0.05和0.5 mol·L-1的3个反应器中,反应2 h后HCB脱氯率分别达到93.5%、98.0%和98.9%.  相似文献   

4.
负载型纳米Pd/Fe对氯代烃脱氯机理研究   总被引:2,自引:1,他引:2  
采用实验室制备的负载型纳米Pd/Fe对几种常见的挥发性氯代烃:四氯乙烯(ICE)、三氯乙烯(TCE)、1,1-二氯乙烯(1,1-DCE)、氯乙烯(VC)和林丹(γ-HCH)进行了还原脱氯研究.负载型纳米Pd/Fe对PCE、TCE、1,1-DCE、VC和γ-HCH的还原脱氯符合准一级反应动力学方程,其反应速率常数分别为2.79 h-1、2.35 h-1、1.12 h-1、2.14 h-1和4.02 h-1.氯代烃降解过程中几乎没有中间产物生成,终产物主要为C2 H6和C2 H4,如对TCE进行降解时,生成的C2H6和C2 H4分别占总碳质量比的70%和10%.采用暴露在空气中24 h的负载型纳米Pd/Fe对PCE进行脱氯,8次循环后仍能对PCE快速完全降解,表明负载型纳米Pd/Fe的稳定性能良好.以γ-HCH为目标污染物对负载型纳米Pd/Fe的反应持久性进行了研究,200 h后负载型纳米Pd/Fe的反应性没有明显降低,表明负载型纳米Pd/Fe反应持久性能良好.温度对负载型纳米Pd/Fe的脱氯反应影响较大,测得各氯代烃脱氯反应的活化能均高于29 kJ·mol-1.对PCE、TCE进行了脱氯动力学模拟,模拟结果与试验数据基本吻合,表明负载型纳米Pd/Fe对氯代烃的脱氯,是连串、平行及多步骤反应的结合.  相似文献   

5.
Pd/Fe及纳米Pd/Fe对氯酚的脱氯研究   总被引:26,自引:4,他引:26       下载免费PDF全文
采用化学沉淀法制备得到了纳米Fe和纳米Pd/Fe(20~100nm),利用制备的纳米催化剂对氯酚进行了催化脱氯研究,并与常规的零价铁和Pd/Fe进行了对比分析.结果表明,纳米颗粒具有较高的比表面积和表面反应活性,所制备的纳米Pd/Fe双金属BET比表面积达到12.4m2/g,而商用铁颗粒(<10m)的比表面积只有0.49m2/g;当钯化率为0.0666%,纳米Pd/Fe用量在6g/L时,氯酚脱氯率达到90%以上,在相同的处理效果下,常规Pd/Fe的使用量为纳米Pd/Fe的20倍左右,纳米Pd/Fe催化氯酚的脱氯降解遵循一级反应动力学.  相似文献   

6.
零价铁去除三氯乙烯及四氯乙烯对比实验研究   总被引:1,自引:0,他引:1  
文章以三氯乙烯(TCE)和四氯乙烯(PCE)为目标污染物,采用批实验方法,研究零价铁的纯度、粒径、投加量对零价铁去除氯代烃的影响,同时分析TCE、PCE两种污染物共存对零价铁去除TCE和PCE的影响。实验结果表明:(1)在实验范围内,零价铁的纯度越高,粒径越小,投加量越大,零价铁对TCE和PCE的去除效果越好;(2)零价铁对四氯乙烯的去除效果比对三氯乙烯的去除效果好;(3)三氯乙烯、四氯乙烯共存时会相互竞争与零价铁的反应位点,从而降低各组分的去除效率。  相似文献   

7.
纳米Pd/Fe双金属对2,4-二氯酚的脱氯机理及动力学   总被引:15,自引:1,他引:15  
采用纳米Pd Fe双金属对2,4 二氯酚(2,4 DCP)进行了催化还原脱氯处理.结果表明,纳米Pd Fe双金属具有较高的比表面积和反应活性,对2,4 DCP具有较好的脱氯效率.当纳米Pd Fe用量在6g·L-1时,2,4 DCP脱氯率达到90%以上;脱氯效率与pH值、温度、钯化率、Pd Fe投加量等因素有关.2,4 DCP在脱氯过程中先生成邻氯酚和对氯酚,而后继续脱氯生成苯酚,或由2,4 DCP直接降解成苯酚.2,4 DCP降解符合拟一级反应动力学.2,4 DCP催化还原脱氯反应的活化能为139 7kJ·mol-1.  相似文献   

8.
何娜  李培军  任婉侠  范淑秀 《环境科学》2008,29(7):1924-1929
采用Fe0还原、钯催化法对土壤中2,2′,3,4,4′,5,5′-七氯联苯的的还原特性进行了实验研究.结果表明,Pd/Fe双金属能有效地进行2,2′,3,4,4′,5,5′-七氯联苯的催化脱氯.在钯化率为0.05%、钯/铁加入量1g、初始pH为5.6、反应时间5 d的条件下,钯/铁双金属对土壤中2,2′,3,4,4′,5,5′-七氯联苯去除率达54%.实验还考察了钯化率、初始pH、反应时间、钯/铁投加量、2,2′,3,4,4′,5,5′-七氯联苯初始浓度等参数对2,2′,3,4,4′,5,5′-七氯联苯脱氯效果的影响.研究表明,较高的钯化率、钯/铁加入量,较低的2,2′,3,4,4′,5,5′-七氯联苯初始浓度及弱酸性等条件更有利于Pd/Fe对2,2′,3,4,4′,5,5′-七氯联苯的还原脱氯.在Pd/Fe双金属表面,2,2′,3,4,4′,5,5′-七氯联苯的脱氯符合一级动力学反应,反应速率常数为0.014 2/h,其半衰期为49h.利用实验数据,对钯/铁双金属作用下的2,2′,3,4,4′,5,5′-七氯联苯还原脱氯的反应机制也进行了分析.  相似文献   

9.
李烨  刘菲  傅海霞  董志英 《环境工程》2012,(Z2):504-509
通过实验研究了铁还原环境下四氯乙烯(PCE)的生物降解。以醋酸为共代谢基质,在20℃时,PCE可以顺序脱氯为TCE和DCEs。反应速率常数为0.2489d-1,半衰期为2.78d。在实验的第1天和第10天分别检测到了TCE和DCEs。TCE最高浓度为358.98nmol/L,是最主要的反应产物。碳平衡为88.7%~109.3%。在13d的实验周期中,微生物的数量和活性都有所增加。同时研究了不同的影响因素,如低温、不同pH和电子受体对PCE生物降解的影响。结果表明,在12℃时,PCE可以脱氯为TCE,半衰期为6.45d,降解速率为0.1075d-1,较20℃时的降解速率要低。脱氯的最佳pH值在7.0左右,较高和较低的pH值均会抑制脱氯微生物的活性。加入不同电子受体NO3-和SO42-,PCE脱氯受到不同程度的抑制,前者可能是由于NO3-是相对强的氧化剂,造成微环境中的氧化还原电位升高;后者则可能是SO42-的存在,会抑制脱氯菌的作用。  相似文献   

10.
纳米铁为脱氯菌供电降解三氯乙烯实验研究   总被引:3,自引:0,他引:3  
采用一种从氯乙烯污染场址土壤中提取的脱氯菌种(Dehalococcoides spp.)进行三氯乙烯(TCE)降解实验,研究纳米铁厌氧腐蚀产氢为该脱氯菌种提供电子的可能性.结果表明,在甲醇做电子供体时,稀释25倍的菌液[(2.0±0.44)×105 cell/mL)]可以在96 h内将20 mg/L TCE完全降解,并在190 h时有2.706 μmol乙烯产生.而在无甲醇做电子供体时,96 h内只有部分TCE转化为顺二氯乙烯(cisDCE),且190 h时几乎无乙烯产生(0.159 μmol),因此无电子供体时菌液脱氯活动不能维持.但在4 g/L纳米铁腐蚀产氢的情况下,脱氯菌可以利用纳米铁产生的阴极氢维持脱氯活动,在131 h内将20 mg/L TCE完全降解,并且其耦合的脱氯速率高于纳米铁单独降解时的速率.从乙烯的产量分析中可以看出,纳米铁供电时190 h后由脱氯菌产生的乙烯量为1.187 μmol,明显低于甲醇做电子供体时乙烯的产量2.706 μmol,表明纳米铁可能对微生物存在一定的毒性效应.同时反应190 h后乙炔的产量为0.109 μmol,相对低于与纳米铁单独降解TCE时的产量0.161 μmol,说明微生物在无电子供体的情况下,竞争利用了纳米铁与水反应产生的电子导致乙炔的生成量降低.上述结果表明,4 g/L的纳米铁与水反应生成的活性氢可以为脱氯菌提供电子,并维持其脱氯活动,这对纳米铁和脱氯菌耦合应用于地下水的有机氯修复具有重要的实际意义.  相似文献   

11.
Nanoscale palladized iron(Pd/Fe)bimetallic particles were prepared by reductive deposition method.The particles were characterized by X-ray diffraction(XRD),X-ray fluorescence(XRF),scanning electron microscope(SEM),transmission electron microscope(TEM),and Brunauer-Emmett-Teller-nitrogen(BET-N_2)method.Data obtained from those methods indicated that nanoscale Pd/Fe bimetallic particles containedα-Fe~0.Detected Pd to Fe ratio by weight(Pd/Fe ratio)was close to theoretical value. Spherical granules with di...  相似文献   

12.
镍/铁二元金属对莠去津脱氯特性的影响   总被引:11,自引:3,他引:11  
为了考察Ni/Fe二元金属对莠去津的催化还原特性,分别以Fe粉和Ni/Fe体系作为还原和催化剂,在酸性条件下对莠去津的脱氯特性进行比较,并讨论了pH值,Ni/Fe配比以及金属添加量等因素对莠去津脱氯效率的影响.结果表明:与Fe粉比较,Ni/Fe体系对莠去津具有很明显的催化脱氯特性.在pH=2时,1.22%(W/W)Ni/Fe体系30min对莠去津的脱氯效率大于90%,相同条件下用Fe粉还原时,90min脱氯效率仅为22.21%通过Fe粉和Ni/Fe表面形态的比较以及实验结果的分析,对Ni/Fe体系的催化还原脱氯机理进行了初步探讨.  相似文献   

13.
IntroductionTheuseofzerovalentironforthetreatmentofchlorinatedorganiccompounds (COCs )inwaterandgroundwaterhasbeenthefocusofmuchrecentresearch .Thestudieswereconcernedwithcompoundssuchascarbontetrachloride(Bradley ,1995 ) ,trichloroethene(Orth ,1996 ;Chen ,2 0 0 1)andpesticidesandrelatedcompounds(Sayles,1997;Monson ,1998;Eykholt,2 0 0 1;Dombek ,2 0 0 1) .Whenironisincontactwithalessreductivemetal,themetalcouplecanformgalvaniccells.ThishasledtothediscoveryofPd Febimetalliccomplexinwhichpal…  相似文献   

14.
Transformation of chlorophenols by nanoscale bimetallic particles represents one of the latest innovative technologies for environmental remediation. Nanoscale Pd/Fe bimetallic particles were synthesized in the laboratory for treatment of o-chlorophenol. Most of the nanoscale particles are in the size range of 20-100 nm. BET specific surface area of the nanoscale Pd/Fe particles is 12.4 m2/g. In comparison, a commercially available Fe powder( <100 mesh) has a specific surface area of just 0.49 m2/g. Batch experiments demonstrated that the nanoscale Pd/Fe bimetallic particles can effectively dechlorinate o-chlorophenol. Dechlorination efficiency is affected by the mass fraction of Pd in the bimetal, nanoscale Pd/Fe mass concentration and mixing intensity.  相似文献   

15.
Ni/Fe二元金属脱氯降解对氯苯酚的研究   总被引:10,自引:0,他引:10  
研究了Ni/Fe二元金属脱氯降解对氯苯酚的催化性能.结果表明,吸附氢原子是对氯苯酚脱氯降解的主要还原剂,发生在催化剂表面的化学反应为整个过程的速率控制步骤.质量分数为2.96%Ni的催化剂具有最大的比表面积,在相同条件下也具有最好的脱氯性能,90min时的脱氯效率达64%.对不同Ni含量催化剂脱氯的动力学研究表明,对氯苯酚脱氯的表观动力学方程为一级反应,而且反应速率常数正比于催化剂的比表面积.通过计算表明,Ni/Fe单位比表面的表观速率常数为(κ′)为7.61×10-4min-1·m-2.当体系温度小于43℃时,脱氯效率随着温度的上升而加快,超过这一温度后,升高温度反而会使体系的脱氯效率下降.  相似文献   

16.
In this study, bimetallic nanoscale zero-valent iron particles(nZVI), including copper/nanoscale zero-valent iron particles(Cu/nZVI) and nickel/nanoscale zero-valent iron particles(Ni/nZVI), were synthesized by one-step liquid-phase reduction and applied for oxytetracycline(OTC) removal. The effects of contact time and initial p H on the removal efficiency were studied. The as-prepared nanoscale particles were characterized by scanning electron microscopy(SEM), energy dispersive spectroscopy(EDS) and X-ray diffraction(XRD). Finally, the degradation mechanisms of OTC utilizing the as-prepared nanoparticles were investigated by using X-ray photoelectron spectroscopy(XPS) and mass spectrometry(MS). Cu/n ZVI presented remarkable ability for OTC degradation and removed71.44% of OTC(100 mg/L) in 4 hr, while only 62.34% and 31.05% of OTC was degraded by Ni/nZVI and nZVI respectively. XPS and MS analysis suggested that OTC was broken down to form small molecules by ·OH radicals generated from the corrosion of Fe0. Cu/nZVI and Ni/n ZVI have been proved to have potential as materials for application in OTC removal because of their significant degradation ability toward OTC.  相似文献   

17.
Nanoscale bimetallic Ni/Fe particles were synthesized from the reaction of sodium borohydride (NaBH4) with reduction of Ni^2+ and Fe^2+ in aqueous solution. The obtained Ni/Fe particles were characterized by TEM (transmission electron microscope), XRD (X-ray diffractometer), and N2-BET. The dechlorination activity of the Ni/Fe was investigated using p-chlorophenol (p-CP) as a probe agent. Results demonstrated that the nanoscale Ni/Fe could effectively dechlorinate p-CP at relatively low metal to solution ratio of 0.4 g/L (Ni 5 wt%). The target with initial concentration ofp-CP 0.625 mmol/L was dechlorinted completely in 60 rain under ambient temperature and pressure. Factors affecting dechlorination efficiency, including reaction temperature, pH, Ni loading percentage over Fe, and metal to solution ratio, were investigated. The possible mechanism of dechlorination ofp-CP was proposed and discussed. The pseudo-first- order reaction took place on the surface of the Ni/Fe bimetallic particles, and the activation energy of the dechlorination reaction was determined to be 21.2 kJ/mol at the temperature rang of 287-313 K.  相似文献   

18.
The feasibility of the rapid degradation of hexachlorobenzene (HCB) by micron-size silver (Ag)/iron (Fe) particles was investigated.Ag/Fe particles with different ratios (0,0.05%,0.09%,0.20%,and 0.45%) were prepared by electroless silver plating on 300 mesh Fe powder,and were used to degrade HCB at different pH values and temperatures.The dechlorination ability of Fe greatly increased with small Ag addition,whereas too much added Ag would cover the Fe surface and reduce the effective reaction surface,thereby decreasing the extent of dechlorination.The optimal Ag/Fe ratio was 0.09%.Tafel polarization curves showed that HCB was rapidly degraded at neutral or acidic pH,whereas low pH levels severely intensified H2 production,which consumed the reducing electrons needed for the HCB degradation.HCB degradation was more sensitive to temperature than pH.The rate constant of HCB dechlorination was 0.452 min-1 at 85℃,50 times higher than that at 31℃.HCB was degraded in a successive dechlorination pathway,yielding the main products 1,2,4,5-tetrachlorobenzene and 1,2,4-trichlorobenzene within 2 hr.  相似文献   

19.
The utility of nickel/iron in the remediation of atraz.ine-contaminated water was investigated. The experimental results showed that nickel/iron had effective catalytic activity in dechlorinating atraz.ine under acidic conditions. The dechlonnation reaction approximately followed the first-order kinetics under the experimental conditions( nickel/iron: 1.0 g/250 ml: Ca~r~ = 20.0 mg/L), the reaction rate increased with decreasing pH value of the reaction solution and increasing the proportion of Ni: Fe within 2.95 %. For condition with 2.95% nickel/iron, the reaction rate constants were 0.07518( R = 0.9927), 0.06212( R = 0.9846) and 0.00131 min^-1 ( R = 0.9.565) at pH = 2.0, 3.0 and 4.0, respectively. HPLC analysis was used to monitor the decline of atraz.ine concentration.  相似文献   

20.
纳米Fe0颗粒对三种单氯酚的降解   总被引:12,自引:0,他引:12       下载免费PDF全文
采用化学还原法制备了纳米Fe0颗粒,研究了不同条件下纳米Fe0对3种单氯酚(2-CP, 3-CP, 4-CP)的去除作用.结果表明,纳米Fe0对单氯酚具有良好的去除效果,主要降解途径为先脱氯后开环,实现氯酚分子与Fe原子间的电子转移,达到还原脱氯的效果.3种单氯酚的脱氯难易程度为2-CP>3-CP>4-CP,脱氯反应活性与其分子最低空轨道能量(ELUMO)有关.随着氯酚初始浓度的增大,其相对去除率略有降低, 但绝对降解量有较大提高.温度不仅影响脱氯速率,而且影响氯酚去除的途径,温度较高时,氯酚先脱氯后开环;温度低时,较易产生氧化产物.  相似文献   

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