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1.
为研究使用过一硫酸盐(PMS)的高级氧化技术去除水体中微量有机污染物的高效可行方法,通过柠檬酸辅助溶胶-凝胶法制备纳米CuFe_2O_4材料,以其为非均相催化剂,探究CuFe_2O_4/PMS体系对诺氟沙星(NFX)的降解性能.采用X射线衍射仪、电子透射显微镜、BET手段对材料进行表征,考察煅烧温度对纳米CuFe_2O_4结构及催化性能的影响,并试验纳米CuFe_2O_4的重复使用性和稳定性.探讨纳米CuFe_2O_4投加量、PMS浓度、溶液初始pH对CuFe_2O_4/PMS体系降解NFX性能的影响,并探究该体系的氧化活性物种及降解机理.结果表明:制备纳米CuFe_2O_4的最佳煅烧温度为400℃,该温度下纳米CuFe_2O_4晶型较好,比表面积较大,且表现出较高的催化活性;在纳米CuFe_2O_4/PMS体系中,控制NFX初始质量浓度为5 mg/L,最适宜的反应条件为:纳米CuFe_2O_4投加量为0.1 g/L、PMS浓度为0.5 mmol/L、初始溶液pH为9.5,该条件下反应30 min后NFX的去除率高达99%;纳米CuFe_2O_4能有效活化PMS生成·OH和SO_4~-·,SO_4~-·是实现NFX快速降解的主要活性物种.  相似文献   

2.
以硝酸铟(In(NO3)3·xH2O)、对苯二甲酸(H2BDC)、六水合硝酸钴(Co(NO3)· 6H2O) 为原料, 首先采用一锅油浴法合成了含有Co2+ 的铟基金属有机框架材料(MOFs) Co2+/CPP-3(In) 材料, 然后在450 ℃ 下焙烧制备Co3O4/In2O3 复合物气敏材料, 将Co3O4/In2O3 复合物的粉体制作成传感器, 并对其气敏性能进行研究。利用扫描电子显微镜和X 射线衍射仪(XRD) 对双金属MOFs Co2+/CPP-3(In) 材料和Co3O4/In2O3 复合物进行表征, 采用静态配气法测试其气敏性能。结果表明, Co3O4/In2O3(nCo : nIn = 0.4 : 1) 样品的形貌保留了其MOFs 前驱体的棒状结构, 棱柱形框架更为突出, 表面呈凹陷状, 棒体中间粗两边细, 六角截面和棒体均布满了孔洞。结合EDX 和XRD 表征结果, Co2+/CPP-3(In) MOFs 前驱体完全转化成Co3O4/In2O3 复合物; Co3O4/In2O3(nCo : nIn = 0.4 : 1) 复合物在 70 ℃ 下对5×10-6 H2S 的气敏性能最优, 响应值达到153, 是同条件下纯备In2O3对H2S 响应值的5 倍, 并且有较好的重复性、选择性和稳定性。  相似文献   

3.
为开发具有优良循环性能和安全性能的大型锂离子电池的正极材料,将不同比例的LiNi_(0.4)Co_(0.2)Mn_(0.4)O_2和Li Mn2O4材料进行共混,研究了LiNi_(0.4)Co_(0.2)Mn_(0.4)O_2和Li Mn2O4共混以及共混比例(10∶0、8∶2、7∶3、6∶4、5∶5、0∶10)对锂离子电池的首次放电性能、循环性能和倍率性能以及交流阻抗和循环伏安曲线的影响,并采用扫描电镜对电极材料进行了表征.研究结果表明,共混比例会影响材料的电化学性能,8∶2,7∶3和6∶4配比的混合材料的体积比容量、循环性能和倍率性能要好于纯LiNi_(0.4)Co_(0.2)Mn_(0.4)O_2和Li Mn2O4材料.其中,8∶2配比的材料性能最好.  相似文献   

4.
为高效地去除水中环境激素类污染物,采用共沉淀法合成了氧化石墨烯负载钴尖晶石铁氧体(GO/CoFe_2O_4)催化剂,催化过硫酸盐(PMS)去除水中邻苯二甲酸二丁酯(DBP).采用SEM、TEM、XPS、XRD对催化剂进行表征,研究不同条件下催化PMS去除水中DBP的效果,提出催化PMS反应机理.结果表明,GO/CoFe_2O_4为颗粒状尖晶石结构,室温下,DBP初始浓度为2μmol/L、催化剂投量为0.1 g/L、PMS浓度为20μmol/L、pH为7时,GO/CoFe_2O_4催化PMS体系对DBP的去除率可达89%,使用5次后催化效果仅降低5%.该新型复合催化剂高效、具有磁性、方便回收,具有良好的工程应用前景.  相似文献   

5.
针对微生物法覆铜板浸出液中的金属铁离子进行资源化处理,提高覆铜板浸出液的附加值。以水热法处理得到的铁离子溶液为原料,制备八面体和球形的Fe_2O_3/石墨烯复合材料,并将其作为锂离子电池负极材料,组装成扣式电池。结果显示:八面体形貌的Fe_2O_3/石墨烯复合材料的比容量高于球形的,其在100 mA/g电流下循环,首次放电和充电比容量分别高达1 343和970 mAh/g,在47次循环后,其放电及充电比容量分别为769和740 mAh/g。  相似文献   

6.
磁性Fe3O4微球的溶剂热法合成及光芬顿性能优化   总被引:1,自引:0,他引:1  
为探究Fe_3O_4微球的光芬顿性能,在200℃条件下,利用溶剂热法成功制备出具有较好分散性、平均粒径(200±0.5)nm的Fe_3O_4微球,并通过对其原料配比的探究进行样品优化.该合成方法所制备出的Fe_3O_4微球在Photo-Fenton降解亚甲基蓝方面有优秀的性能,降解率达95%甚至以上.此外,Fe_3O_4微球具有易回收的优点,仅利用磁场即可将其分离,且回收率超过85%甚至90%.利用回收后的Fe_3O_4微球探究其重复利用率,结果表明,重复利用过程中样品催化降解效率与第一次使用时几乎相同.本研究探究了该样品降解亚甲基蓝的最佳反应条件,其中当反应体系中加入15 mL过氧化氢且为酸性环境下降解效率达到最大.  相似文献   

7.
采用溶剂热法制备片状Co(CO3)0.5(OH).0.11H2O前驱物,经400℃煅烧2 h即可得到多孔Co3O4纳米片.通过场发射扫描电镜(FESEM)和透射电镜(HRTEM)观测了纳米片的形貌,利用X射线衍射(XRD)分析了纳米片的结构,通过循环伏安、恒流充放电和交流阻抗测试了材料的电化学电容性能.结果表明:多孔Co3O4纳米片厚度约为50 nm,孔径主要分布在10 nm左右;0.5 A/g恒流充放电情况下,比容量高达707 F/g,当电流密度高达8 A/g时比容量依然高达547 F/g;同时,该材料循环1 000次后,容量保持率为97.4%.  相似文献   

8.
通过水热技术在二维(2D)多层材料Ti_3C_2 (multi-layer Ti_3C_2, ML-Ti_3C_2)的表面及层间原位晶化和生长锐钛矿相TiO_2纳米球,制备出TiO_2/ML-Ti_3C_2复合纳米材料。采用XRD、SEM、氮吸附等表征技术对TiO_2/ML-Ti_3C_2纳米复合材料进行分析表征,并以亚甲基蓝(MB)为模拟污染物,对纯TiO_2和TiO_2/ML-Ti_3C_2复合纳米材料的光催化性能进行了评价。实验结果表明,两种材料的耦合抑制了Ti O_2中光生电子-空穴对的湮灭,延长了复合光催化剂中载流子寿命,拓宽了复合材料的光谱响应范围。在紫外光照射下,以TiO_2/ML-Ti_3C_2复合纳米材料为光催化剂,200 mg/L的MB溶液在20 min内几乎完全脱色,降解率为98.98%。TiO_2/ML-Ti_3C_2纳米复合材料的光催化性能优于纯TiO_2和Ti_3C_2, Ti_3C_2优异的电子传输能力和超强的吸附性能优化了TiO_2的光催化性能。本研究为使用光催化技术处理废水提供了一种新的思路,具有一定的实际应用前景。  相似文献   

9.
为了解Fe2(SO4)3作为絮凝剂对活性污泥中微生物活性的影响,向活性污泥系统中投加质量浓度为20、40、60、80,100 mg·L-1的Fe2(SO4)3,反应4 h后测定活性污泥的脱氢酶活性、比耗氧速率(RSOU)、胞外聚合物(EPS)及各组分含量,同时测定系统出水的COD等各项指标.结果表明:Fe2(SO4)3质量浓度在20~60 mg·L-1时对活性污泥的脱氢酶活性、RSOUEPS及各组分含量影响均不大,此时污水中COD、TP、UV254等污染物随Fe2(SO4)3质量浓度增加而有较大幅度去除.Fe2(SO4)3质量浓度为80 mg·L-1时,污泥的脱氢酶活性、RSOU、总EPS含量均明显下降.当Fe2(SO4)3质量浓度增加到100 mg·L-1时,污泥的脱氢酶活性、RSOU进一步受到抑制,而总EPS含量则大幅度提升.此时污水中COD、TP、UV254等污染物去除率增加幅度变缓,SCOD及NH3-N去除作用有所下降.  相似文献   

10.
通过拉拔法测定纳米Al2O3改性环氧胶黏剂和钢铁之间的附着强度,并结合环氧胶的表面能参数测定以及X射线光电子能谱(XPS)分析,对纳米Al2O3提高环氧胶和钢铁附着力的机理进行研究.表面能测定结果表明,添加纳米Al2O3使环氧胶的极性增加;XPS能谱分析结果表明,当纳米Al2O3质量分数达到2%时,环氧胶中形成新的羧基极性基团;进一步研究发现,当纳米Al2O3质量分数为1%时未形成新的羧基基团,当纳米Al2O3质量分数为8%时单位接触面积上新的羧基基团的数目较2%时少,这与附着强度的变化规律是一致的.因此,纳米Al2O3改性的环氧胶黏剂与钢铁的附着强度的增强是由于Al2O3与环氧胶的相互作用形成了新的羧基极性基团.  相似文献   

11.
The kinetics of Fe3O4 formation by air oxidation of slightly acidic suspension of Fe(OH)2 was studied. The effects of initial concentration of Fe(II), temperature, partial pressure of oxygen, air flow rate and stirring rate on the oxidation rate were investigated. The results show that Fe3O4 formation is composed of two-step reaction, the first step is the formation of Fe(OH) 2 + by oxidation of Fe(OH)+ complex ions, the second step is the formation of magnetite by dehydration and deprotonation of Fe(OH)+ and Fe(OH) 2 + . The oxidation reaction is zero-order with respect to the concentration of Fe(II) and around 0.5-order with respect to partial pressure of oxygen, and oxygen transfer process is rate-limiting step of oxidation reaction with apparent activation energy of 2.74 kJ · mol−1.  相似文献   

12.
Luminescent properties of BaO-La2O3-B2O3 glasses with dopant   总被引:4,自引:0,他引:4  
The luminescent properties of glasses synthesized in air atmosphere by conventional high temperature process were stud{ed. The emissions spectra of Eu^2 and Eu^3 were observed in BaO-La2O3-B2O3-Eu2O3 glasses.The results show that the broad emission peaks at 430 nm correspond to 5d→4f emission transition of Eu^2 , the sharp emission peaks at 592, 616, 650 and 250 nm correspond to 5^D0→1Fj(j=1--4) emission transition of Eu^3 ,respectively, which indicates that the BaO-La2O3a-B2O3-Eu2O3 glass can convert ultraviolet and green omponents of sunlight into blue and red light so as to increase the intensity of blue and red light, respectively. The luminescent in--tensity of Eu^2 increases with increasing the molar ratio of Tb^3 in BaO-La2O3-B2O3-Eu2O3a-Tb4O3 glasses, whereas the luminescent intensity of Eua^3 decreases. So the luminescent intensity of Eu(Ⅲ,Ⅱ) is influenced by Tb^3 .These phenomena can be explained by electron transfer mechanism; Eu^3 (4f6) Tb^3 (4f^8)→Eu^2 (4f′) Tb^4 (4f′). Taking advantage of the luminescent properties of BaO-La2O3-B2O3-Eu2O3 glasses, light-conversion glass for agriculture can be produced.  相似文献   

13.
LiNi0.45Co0.10Mn0.45O2 was synthesized from Li2CO3 and a triple oxide of nickel, cobalt and manganese at 950 °C in air. The structures and characteristics of LiNi0.45Co0.10Mn0.45O2, LiCoO2 and LiMn2O4 were investigated by XRD, SEM and electrochemical measurements. The results show that LiNi0.45Co0.10Mn0.45O2 has a layered structure with hexagonal lattice. The commercial LiCoO2 has sphere-like appearance and smooth surfaces, while the LiMn2O4 and LiNi0.45Co0.10Mn0.45O2 consist of cornered and uneven particles. LiNi0.45Co0.10Mn0.45O2 has a large discharge capacity of 140.9 mA · h/g in practical lithium ion battery, which is 33.4% and 2.8% above that of LiMn2O4 and LiCoO2, respectively. LiCoO2 and LiMn2O4 have higher discharge voltage and better rate-capability than LiNi0.45Co0.10Mn0.45O2. All the three cathodes have excellent cycling performance with capacity retention of above 89.3% at the 250th cycle. Batteries with LiMn2O4 or LiNi0.45Co0.10Mn0.45O2 cathodes show better safety performance under abusive conditions than those with LiCoO2 cathodes. Foundation item: Project(50302016) supported by the National Natural Science Foundation of China; Project(2005037698) supported by the Postdoctoral Science Foundation of China  相似文献   

14.
Mg3(PO4)2-coated Li1.05Ni1/3Mn1/3Co1/3O2 cathode materials were synthesized via co-precipitation method. The morphology, structure, electrochemical performance and thermal stability were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), cyclic voltammetry(CV), electrochemical impedance spectroscopy(EIS), charge/discharge cycling and differential scanning calorimeter (DSC). SEM analysis shows that Mg3(PO4)2-coating changes the morphologies of their particles and increases the grains size. XRD and CV results show that Mg3(PO4)2-coating powder is homogeneous and has better layered structure than the bare one. Mg3(PO4)2-coating improved high rate discharge capacity and cycle-life performance. The reason why the cycling performance of Mg3(PO4)2-coated sample at 55 °C was better than that of room temperature was the increasing of lithium-ion diffusion rate and charge transfer rate with temperature rising. Mg3(PO4)2-coating improved the cathode thermal stability, and the result was consistent with thermal abuse tests using Li-ion cells: the Mg3(PO4)2 coated Li1.05Ni1/3Mn1/3Co1/3O2 cathode did not exhibit thermal runaway with smoke and explosion, in contrast to the cells containing the bare Li1.05Ni1/3Mn1/3Co1/3O2. Funded by the National Natural Science Foundation of China (No. 20273047)  相似文献   

15.
The molar heat capacities of La2Mo209 and La1.9Sr0.1MO209-δ were obtained using the differential scanning calorimetry (DSC) technique in a temperature range from 298 to 1473 K. The DSC curve of La2Mo209 showed an endothermal peak around 834 K corresponding to a first-order monoclinic-cubic phase transition, and the enthalpy change accompanying this phase transition is 5.99 kJ/mol. No evident endothermal peak existed in the DSC curve of La1.9Sr0.1MO209-δ, but a broad thermal anomaly existed in its heat capacity curve at around 832 K. In addition, the heat capacity values of La2Mo209 and La1.9Sr0.1MO209-δ began to decrease at 1196 and 1330 K, respectively. The non-transitional heat capacity values of La2Mo209 and La1.9Sr0.1MO209-δ were formulated using multiple regression analysis in two temperature ranges.  相似文献   

16.

Li(Ni1/3Co1/3Mn1/3)O2的(3b)位有序-无序效应研究

曹春晖1,2, 张建1, 杨传铮1, 夏保佳1

(1.上海微系统与信息技术研究所,上海 200050;

2.中国科学院大学, 北京100049)

创新点说明:

提出了有序度的概念,通过理论模拟了过渡金属在3b位不同有序度下的衍射情况。

研究目的:

借助理论衍射研究镍钴锰在三元材料中的占位情况,为实际得到的衍射数据分析起指导作用。

研究方法和结果:

借助Powercell程序模拟不同结构下的衍射情况。结果表明:对于Li(Ni1/3Co1/3Mn1/3)O2,基体衍射线的强度不随有序度而变化,有序度增加时,超点阵衍射线强度增加,但是即使对于有序度最大时,超点阵线的相对强度只有0.225%和0.043%。

结论:

3b位的有序无序很难通过常规的衍射实验观测到,必须提高X射线源的强度才可能观测到。

关键词:Li(Ni1/3Co1/3Mn1/3)O2, 有序-无序,超结构,衍射

  相似文献   

17.
Sn-doped In2O3 (ITO) nanopowders were prepared in ethanol solvent by solvothermal process. The effects of the solvothermal temperature, coprecipitation pH value and SnO2 content on the products phase and microwave absorption were investigated by X-ray diffractometry and microwave reflectance. ITO nanopowders with cubic structure can be respectively prepared at 250 and 270 ℃ for 6 h. The prepared product is InOOH or the mixture of InOOH and In3Sn4O12 when the solvothermal temperature is below 250℃. With rising solvothermal temperature and prolonging time, the absorption of the ITO powders gradually decreases. The products are ITO nanopowders by coprecipitating at pH=9 or 11, but ITO powders with Sn3O4 at pH=6. The absorption of powders prepared at pH=6 is better than that at any other pH value. The products are all ITO nanopowders and crystal size reduces with increasing SnO2 content. The microwave absorption of ITO nanopowders with SnO2 content of 8% (mass fraction) is the best among samples with different SnO2 contents.  相似文献   

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