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51.
微塑料与有机污染物的相互作用研究进展 总被引:1,自引:0,他引:1
微塑料(粒径小于5 mm的塑料)作为海洋中一种新型的污染物正受到越来越多的关注。微塑料在全球多个海域均有检出,根据其来源分为原生微塑料和次生微塑料。原生微塑料由人工直接制造所得,常见于日常生活用品中;次生微塑料由大块塑料制品长期风化、磨损和光解形成。塑料自身含有多种有机添加剂,不断向环境中释放,污染海洋环境;微塑料表面还可吸附有机污染物,此吸附作用受两者的物理化学性质和环境条件影响,吸附污染物后的微塑料生物毒性增强。另外,聚合物复合光催化材料可加快有机污染物如染料的光降解反应速率,因而微塑料可能会促进有机污染物的光解。针对目前微塑料对有机物光降解的贡献、机理鲜见研究的问题,未来应加强以下3方面的研究:(1)微塑料对不同有机污染物光降解是否存在影响?(2)微塑料类型、尺寸以及反应条件对有机污染物光降解如何影响?(3)微塑料对有机污染物光降解影响的内在机制是什么? 相似文献
52.
β-环糊精衍生物对甲基对硫磷的增溶洗脱和光降解 总被引:1,自引:1,他引:0
研究了3种新型β-环糊精衍生物(谷氨酸-β-环糊精、乙二胺-β-环糊精、羧甲基-β-环糊精)对甲基对硫磷的增溶作用、土壤中甲基对硫磷的洗脱作用以及对甲基对硫磷的光降解作用.研究表明,这三种β-环糊精衍生物都能显著地增加甲基对硫磷在水中的溶解度,并且相对增溶倍数与β-环糊精衍生物的浓度成正相关;120g/L的上述3种β-环糊精衍生物溶液中,甲基对硫磷的溶解度比在纯水中分别提高了117.82倍、80.99倍、47.28倍;β-环糊精衍生物能有效洗脱去除土壤中的甲基对硫磷,其中120g/L的谷氨酸-β-环糊精溶液的累积去除率最高,达103.9%,洗脱液浓度是影响洗脱去除率的主要因素;β-环糊精衍生物能促进甲基对硫磷的光降解,在3g/L的谷氨酸-β-环糊精、乙二胺-β-环糊精、羧甲基-β-环糊精溶液中甲基对硫磷光解速率分别为80.26%、91.53%、76.39%。 相似文献
53.
采用简单的原位沉淀法合成了可见光驱动型光催化剂Ag3PO4/g-C3N4.利用X-射线衍射(XRD)、傅里叶红外光谱(FT-IR)、扫描电子显微镜(SEM)、X-射线能谱(XPS)以及紫外可见漫反射光谱(UV-Vis DRS)等表征手段对合成的样品进行了表征.与单一的Ag3PO4和g-C3N4相比,Ag3PO4/g-C3N4复合材料对左氧氟沙星表现出了更高的催化效率.根据能带分析和自由基捕获试验,提出了Ag3PO4/g-C3N4复合材料Z型异质结构的作用机制. 相似文献
54.
分子筛负载Fe3+可见光协助降解有机污染物 总被引:1,自引:0,他引:1
通过NaY型分子筛负载Fe3 制备异相Fenton催化剂(FeY),采用FeY在可见光(λ>420 nm)照射下研究其降解染料罗丹明B(RhB)和2,4-二氯苯酚(DCP).通过对RhB降解过程的紫外-可见光谱、ESR和红外光谱分析,以及总有机碳量(TOC)的跟踪测定,FeY/H2O2体系在可见光照射下能有效地降解RhB,降解反应主要涉及到·OH自由基的产生和参与.RhB/FeY/H2O2体系在可见光照射下,反应270min,RhB脱色率达到100%,TOC去除率达75.6%.DCP/FeY/H2O2体系在可见光照射下,反应150min,DCP降解率达81.0%.利用酶催化反应米氏方程测定催化剂的活性,FeY催化常数Kcat=2.28×105 mol·l-1·min-1. 相似文献
55.
56.
Calculation method of quantum efficiency to TiO2 nanocrystal photocatalysis reaction 总被引:2,自引:0,他引:2
The quantum yield is an important factor to evaluate the efficiency of photoreactor.This article vires an overall calculation method of the quantum efficiency(Φ) and the apparent quantum efficiency(Φa) to the TiO2/UV photocatalysis system.Furthermore,for the immobility system(IS),the formulation of the faction of light absorbed by the TiO2 thin film is proposed so as to calculate the quantum efficiency by using the measured value and theoretic calculated value of transmissivity(T).For the suspension system(SS),due to the difficulty to obtain the adsorption coefficient(α) of TiO2 particulates,the quantum efficiency is calculated by means of the relative photonic efficiency(ζr)and the standard quantum yield(Φstandard). 相似文献
57.
研究了γ 6 6 6在有机碳含量分别为 <0 0 8% ,0 40 %± 0 0 6 %和 1 0 0 %± 0 2 8%而铁含量依次增加的三组土样中的光解动力学 ,γ 6 6 6的光解符合准一级动力学方程 .当土样中的铁含量相对不变时 ,γ 6 6 6的光降解动力学常数与有机质含量成负相关 ;而当土样中的有机碳含量相对不变时 ,光解动力学常数与铁含量成线性正相关 .为进一步验证土壤有机质对γ 6 6 6的光解的作用 ,采用土壤化学逐级分离法将一土样中的碳酸钙和有机质逐一去除而得到一级和二级土样 ,发现γ 6 6 6在这两级土样中的光解动力学常数依次为 0 0 12 9h-1和 0 0 2 31h-1,再次证明土壤有机质对γ 6 6 6的光解有明显抑制作用 相似文献
58.
59.
本实验对新型无极紫外灯的发射光谱、不同波长光线在溶液中的传播、·OH和O3的生成量、活性艳红X-3B溶液的降解情况进行了测定,并与普通中压汞灯进行了比较.结果表明,无极紫外灯在紫外区光强约为相近功率的普通中压汞灯的20倍;在溶液中紫外光比可见光更易被吸收;·OH生成与溶液对短波长光子的吸收存在对应关系,本实验中无极紫外灯的最大氧化距离约为6 cm;O3的生成量随着空气曝气量或254 nm处的光强的增大呈指数增加;降解活性艳红X-3B溶液的过程符合负一级动力学关系,降解效果明显好于普通中压汞灯,并且证明了无极紫外灯与生成的臭氧在活性艳红X-3B的降解过程中存在协同作用. 相似文献
60.
Kromer T Ophoff H Stork A Führ F 《Environmental science and pollution research international》2004,11(2):107-120
BACKGROUND AND OBJECTIVES: Among the factors affecting the environmental fate of surface-applied pesticides several biological as well as abiotic factors, such as volatilization and photochemical transformations are of particular interest. Whereas reliable measurement methods and models for estimating direct photodegradation are already available for the compartments of water and atmosphere and individual subprocesses have already been described in detail, there is still a need for further elucidation concerning the key processes of heterogeneous photodegradation of environmental chemicals on surfaces. METHODS: In order to systematically examine the direct and indirect photodegradation of 14C-labeled pesticides on various surfaces and their volatilization behavior, a new laboratory device ('photovolatility chamber') was designed according to US EPA Guideline 161-3. Model experiments under controlled conditions were conducted investigating the impact of different surfaces, i.e. glass, soil dust and radish plants, and environmental factors, i.e. irradiation and atmospheric ozone (O3), on the photodegradation and volatilization of surface-deposited [phenyl-UL-14C]parathion-methyl (PM). RESULTS AND DISCUSSION: Depending on the experimental conditions, parathion-methyl was converted to paraoxon-methyl, 4-nitrophenol, unknown polar products and 14CO2. With respect to the direct photodegradation of PM (experiments without O3), the major products were polar compounds and 14CO2, due to the rapid photochemical mineralization of 4-nitrophenol to 14CO2. Paraoxon-methyl and 4-nitrophenol formation was mainly mediated by the combination of light, O3, and *OH radicals. In radish experiments PM photodegradation was presumably located in the cuticle compartment, which exhibited a sensitized photodegradation, as more unknown products were yielded compared to the glass and soil dust experiments. This could be explained by intensifying the inherent PM degradation in the dark with the same product spectrum. Due to photochemical product formation, which is an antagonistic process to the volatilization of parent compound, the volatilization of unaltered parathion-methyl from each surface generally decreased in the presence of light, particularly in combination with increasing O3 concentrations and *OH radical production rates. CONCLUSION: First results demonstrated that the photovolatility chamber provides a special tool for the systematic evaluation of (a) photodegradation of surface-located pesticide residues, i.e. measuring qualitative aspects of direct and indirect photodegradation together with relative photodegradation rates, and (b) volatilization of pesticides on surfaces by including and optionally varying relevant parameters such as light, atmospheric O3 concentration, surface temperature, air temperature, air flow rate. OUTLOOK: The experimental facility represents an important complement to lysimeter and field studies, in particular for experiments on the volatilization of pesticides using the wind tunnel system. With the photovolatility chamber special experiments on photodegradation, volatilization and plant uptake can be conducted to study key processes in more detail and this will lead to a better understanding of the effects of certain environmental processes on the fate of released agrochemicals contributing to an improved risk assessment. 相似文献