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1.
以ZnCO_3、MgO、MnO_2、TiO_2为原料,利用共混合法制备两种柱状催化剂(Zn/Mn/Ti型,Zn/Mn/Mg型)。研究了两种催化剂在空气模拟系统中对甲醛的吸收氧化效果,并与60%TiO_2/Al_2O_3成品催化剂相对比。结果表明,Zn/Mn/Ti型催化剂对甲醛的净化效果最好,适用于空气中高浓度的甲醛净化。  相似文献   

2.
采用聚合物辅助成型法,以乙二胺四乙酸(EDTA)和聚乙烯亚胺(PEI)为配位体制备了Co_3O_4/CeO_2催化剂,对其进行了氮气吸附、XRD、XPS、SEM、TEM、H2-TPR和CO-TPR等表征,并考察了材料的CO低温催化性能.结果表明,采用聚合物辅助成型法能够合成出具有三维空间网络结构的纳米Co_3O_4/CeO_2催化剂,Ce的加入有利于获得具有更小尺寸的Co_3O_4颗粒,并提高Co3+的相对含量,从而有利于CO低温催化性能的提高;Ce/Co的摩尔比为1时,样品具有最佳的CO催化性能,在催化温度为30℃时,可使初始浓度为100 ppm的CO完全转化;同时,纯氧气加热吹扫有利于催化剂的稳定再生.本研究可为CO低温催化剂的制备提供重要参考.  相似文献   

3.
MnO_2催化KMnO_4氧化降解酚类化合物   总被引:2,自引:1,他引:1  
庞素艳  江进  马军  欧阳峰 《环境科学》2010,31(10):2331-2335
研究了MnO2强化KMnO4氧化降解酚类化合物的效能与机制.在假一级动力学实验条件下(KMnO4初始浓度是目标有机物初始浓度的10倍),考察了KMnO4对酚类化合物(2-氯酚和4-氯酚)的氧化降解规律.发现在KMnO4氧化降解酚类化合物过程中存在着明显的自催化现象,即原位产生的胶体MnO2可以促进KMnO4对有机物的氧化降解.实验进一步考察了MnO2浓度、粒径大小和溶液pH对MnO2催化KMnO4氧化降解酚类化合物的影响.结果表明,外加胶体MnO2和颗粒MnO2都可以催化KMnO4氧化降解酚类化合物,而且假一级动力学常数(K)随着MnO2浓度(30~180μmol·L-1)的增加呈线性增加;与胶体MnO2相比,颗粒MnO2的催化能力较弱;随着溶液pH的增加,MnO2催化能力逐渐减弱.实验中还发现外加MnO2能够催化KMnO4氧化降解2-硝基酚(单独MnO2和KMnO4均不能将其氧化),但对于二甲基亚砜(其不具有与金属离子络合配位的能力)则没有催化作用.由此推测MnO2催化KMnO4氧化降解有机物的作用机制可能为表面吸附络合催化,即吸附在MnO2表面形成的络合物比存在于溶液中的有机物本身更易被KMnO4氧化.  相似文献   

4.
纳米TiO_2纤维的制备及其光催化降解甲醛研究   总被引:1,自引:1,他引:0  
以胶原纤维为模板制备纳米TiO2纤维用于光助催化降解甲醛气体,用扫描电镜(SEM)、X射线衍射(XRD)和N2吸附-脱附技术对纳米TiO2纤维进行了表征。结果表明,纳米TiO2纤维的比表面积为11.33 m2/g,晶型为锐钛矿型。在相同催化反应条件下纳米TiO2纤维对甲醛气体的催化降解率与商品纳米TiO(2Degussa P25)催化剂相当。纳米TiO2纤维的用量、甲醛气体初始浓度是影响催化效果的两个因素。当甲醛气体初始浓度为0.270 mg/m3,相对湿度为38%,气体流速0.1 L/min,纳米TiO2纤维用量为1.0 g时,甲醛的降解率达到96%。因此,纳米TiO2纤维可用于室内甲醛气体的催化降解。  相似文献   

5.
病原微生物所引发的传染性疾病严重威胁人类健康和生命。传统抗菌技术通常需要外加光、热等能量,如紫外线、光催化、微波等,实际应用受限。常温催化作为一种新型抗菌技术,能够在常温条件下发生催化氧化反应,产生强氧化性的活性氧物种而起杀菌作用。因此,常温催化技术在抗菌领域具有应用优势,综述其抗菌研究现状对于系统性认知常温催化抗菌具有指导意义。本文阐述了常温催化抗菌材料及其活性氧物种产生过程,介绍了常温催化抗菌性能的评价方法,讨论了常温催化抗菌的作用机制,重点分析了常温催化抗菌性能的影响因素。此外,基于国内外常温催化的抗菌研究现状,指出了常温催化抗菌研究存在的问题及未来发展趋势。  相似文献   

6.
采用柠檬酸络合法,在LaMnO_3催化剂基础上掺杂Sr和Ce制得了钙钛矿型催化剂La_(0.9)Sr_(0.1)MnO_3和La_(0.8)Ce_(0.2)MnO_3,用于净化柴油车尾气污染物NO_x、碳烟颗粒、CO与烃类化合物。通过活性评价实验和XRD、SEM等表征手段,选出了四效催化活性较高的催化剂并测试了其在含硫条件下的耐久性。研究结果表明制得的几种催化剂都具有钙钛矿结构;其中La_(0.9)Sr_(0.1)MnO_3可使碳烟起燃温度达到239.9℃,使C_3H_6和CO在300℃以后大部分被去除,使NO_x有较高转化率,其四效催化性能优于掺杂Ce与不掺杂的LaMnO_3催化剂,并能在硫环境下仍然保持一定的催化活性。  相似文献   

7.
SBA-15介孔分子筛负载金属酞菁催化氧化甲醛   总被引:4,自引:0,他引:4       下载免费PDF全文
采用浸渍法将钴或铁酞菁组装进有序介孔材料SBA-15中,通过XRD和N2吸附方法对组装体进行了表征,研究了常温常压下,该组装体催化氧化甲醛的活性.结果表明,组装体具有优良的处理甲醛性能.钴酞菁比铁酞菁组装体的催化氧化活性高;钴和铁酞菁的协同作用使组装体具有更强的催化氧化活性,当二者摩尔比为1:1时,催化氧化活性最高;并借鉴金属酞菁处理有机巯醇的原理探讨了金属酞菁催化氧化甲醛的原理.  相似文献   

8.
热处理天然褐铁矿制备γ-Fe2O3及其NH3-SCR活性探究   总被引:1,自引:1,他引:0  
以天然褐铁矿为前驱体,通过热处理制备γ-Fe_2O_3作为NH3-SCR催化剂.借助XRD、XRF、XPS、NH3-TPD、FR-IR等表征方法,考察反应温度、褐铁矿中的锰氧化物以及H_2O和SO_2对催化剂选择催化还原NO活性的影响并与α-Fe_2O_3作对比.结果表明,由于γ-Fe_2O_3表面比α-Fe_2O_3具有更强的酸性,使得γ-Fe_2O_3的脱硝温度窗口(200~350℃)宽于α-Fe_2O_3(200~300℃),且在活性温度窗口下,催化剂脱硝效率达到99%以上;γ-Fe_2O_3催化剂中少量MnO_2的存在,提高了催化剂低温段(100~200℃)脱硝活性,降低了高温段(400~450℃)脱硝活性;SO_2的存在会使γ-Fe_2O_3的脱硝温度窗口向高温区偏移100℃、体积分数为5%的H_2O对脱硝反应的抑制作用很小,但当SO_2和5%H_2O同时存在,尤其是SO_2的体积分数达到0.12%时,硫酸铵盐类的迅速生成会大大降低γ-Fe_2O_3的脱硝活性;此外,γ-Fe_2O_3经过NH3-SCR反应后,其磁化率略有降低,催化剂仍然具有磁回收循环利用的潜力.  相似文献   

9.
氮掺杂二氧化钛复合催化膜降解甲苯气体研究   总被引:4,自引:0,他引:4  
采用溶胶-凝胶法以聚丙烯(PP)中空纤维膜为载体制备了N-Ti O2/PP复合催化膜,并考察了其催化降解甲苯有机废气的性能.结果发现,紫外光催化的甲苯降解率可达84%,去除负荷为89.8 g·m-3·h~(-1),自然光催化的甲苯降解率可达63.9%,去除负荷为69.25 g·m-3·h~(-1).同时,采用紫外-可见光谱(UV-Vis)、X-射线光电子能谱(XPS)和傅里叶变换红外光谱(FT-IR)表征了N-Ti O2/PP复合催化膜,并采用GC-MS分析甲苯降解过程的中间产物并推测甲苯反应过程机理.采用GC-MS分析出口气样的研究结果表明,苯(C6H6)、苯甲醛(C7H6O)、苯乙酸(C8H8O2)、丙烯醛(C3H4O)、甲酸甲酯(C2H4O2)为甲苯光催化降解的中间产物.N-Ti O2/PP复合催化膜降解甲苯的机制为甲苯气体通过中空纤维膜传质到N-Ti O2/PP复合催化膜,光催化产生羟基自由基,甲苯气体被羟基自由基氧化成中间产物,并继续降解为最终产物二氧化碳和水.  相似文献   

10.
聚苯胺/TiO2-SiO2复合催化剂去除空气中甲醛的研究   总被引:1,自引:0,他引:1       下载免费PDF全文
为提高空气净化效果,研究了聚苯胺(PANi)/TiO2-SiO2复合催化剂对甲醛的吸附和协同光催化作用.考察了TiO2-SiO2涂敷层数、PANi浓度和不同酸(有机酸、盐酸)掺杂对紫外光催化氧化甲醛的影响,以及PANi/TiO2-SiO2在可见光下去除甲醛的效果.结果表明,复合聚苯胺的存在使吸光范围拓展到可见光区,提高了对甲醛的吸附.涂敷3层TiO2-SiO2、吸附浓度0.26g/L的PANi溶液所得复合催化剂紫外光催化效果最好,与没有PANi的催化剂相比,使甲醛去除率提高2倍.有机酸掺杂比无机酸掺杂的PANi复合催化剂紫外光催化甲醛的初期反应快,但最终甲醛的去除率相同.PANi/TiO2-SiO2具有显著的可见光催化氧化去除甲醛的活性,对低浓度甲醛氧化去除速率更快.  相似文献   

11.
Pt catalysts with nitrogen-doped graphene oxide (GO) as support and CeO2 as promoter were prepared by impregnation method,and their catalytic oxidation of formaldehyde (HCHO) at room temperature was tested.The Pt-CeO2/N-rGO (reduced GO) with a mass fraction of 0.7% Pt and 0.8%CeO2 exhibited an excellent catalytic performance with the 100% conversion of HCHO at room temperature.Physicochemical characterization demonstrated that nitrogendoping greatly increased the...  相似文献   

12.
Air pollution surveys of formaldehyde(HCHO) were conducted in 2324 rooms decorated within one year in 2007-2009 in Hangzhou,China.The mean HCHO concentration(C HCHO) was 0.107 ± 0.095 mg/m 3,and 38.9% of samples exceeded the Chinese National Standard GB 50325-2010.Over the past 3 years,the C HCHO decreased with time(p < 0.05).Relationships of potential factors to indoor C HCHO were also evaluated.C HCHO was related to temperature(T),relative humidity(RH),time duration of the windows and doors being closed before sampling(DC),time duration from the end of decoration to sampling(DR) and source characteristics(d).A model to relate indoor C HCHO to these five factors(T,RH,DC,DR,d) was established based on 298 samples(R 2 = 0.87).Various factors contributed to C HCHO in the following order:T,43.7%;d,31.0%;DC,10.2%;DR,8.0%;RH,7.0%;specifically,meteorological conditions(i.e.,RH plus T) accounted for 50.7%.The coefficient of T and RH,R TH,was proposed to describe their combined influence on HCHO emission,which also had a linear relationship(R 2 = 0.9387) with HCHO release in a simulation chamber test.In addition,experiments confirm that it is a synergistic action as T and RH accelerate the release of HCHO,and that is a significant factor influencing indoor HCHO pollution.These achievements could lead to reference values of measures for the efficient reduction of indoor HCHO pollution.  相似文献   

13.
Flaky and nanospherical birnessite and birnessite-supported Pt catalysts were successfully prepared and characterized by means of X-ray diffraction (XRD), transmission electron microscopy (TEM), energy dispersive spectroscopy (EDS) and N2 adsorption-desorption. Effects of the birnessite morphology and Pt reduction method on the catalytic activity for the complete oxidation of formaldehyde (HCHO) were investigated. It was found that flaky birnessite exhibited higher catalytic activity than nanospherical birnessite. The promoting effect of Pt on the birnessite catalyst indicated that the reduction method of the Pt precursor greatly influenced the catalytic performance. Flaky birnessite-supported Pt nanoparticles reduced by KBH4 showed the highest catalytic activity and could completely oxidize HCHO into CO2 and H2O at 50℃, whereas the sample reduced using H2-plasma showed lower activity for HCHO oxidation. The differences in catalytic activity of these materials were jointly attributed to the effects of pore structure, surface active sites exposed to HCHO and the dispersion of Pt nanoparticles.  相似文献   

14.
We describe here a one-step method for the synthesis of Au/TiO2 nanosphere materials, which were formed by layered deposition of multiple anatase TiO2 nanosheets. The Au nanoparticles were stabilized by structural defects in each TiO2 nanosheet, including crystal steps and edges, thereby fixing the Au–TiO2 perimeter interface. Reactant transfer occurred along the gaps between these TiO2 nanosheet layers and in contact with catalytically active sites at the Au–TiO2 interface. The doped Au induced the formation of oxygen vacancies in the Au–TiO2 interface. Such vacancies are essential for generating active oxygen species (*O) on the TiO2 surface and Ti3 + ions in bulk TiO2. These ions can then form Ti3 +–O–Ti4 + species, which are known to enhance the catalytic activity of formaldehyde (HCHO) oxidation. These studies on structural and oxygen vacancy defects in Au/TiO2 samples provide a theoretical foundation for the catalytic mechanism of HCHO oxidation on oxide-supported Au materials.  相似文献   

15.
It is important to develop efficient and economic techniques for removing volatile organic compounds(VOCs) in indoor air. Heterogeneous Ti O_2-based semiconductors are a promising technology for achieving this goal. Anatase/brookite/rutile tricrystalline Ti O_2 with mesoporous structure was synthesized by a low-temperature hydrothermal route in the presence of HNO_3.The obtained samples were characterized by X-ray diffraction and N_2 adsorption–desorption isotherm. The photocatalytic activity was evaluated by photocatalytic decomposition of toluene in air under UV light illumination. The results show that tricrystalline Ti O_2 exhibited higher photocatalytic activity and durability toward gaseous toluene than bicrystalline Ti O_2,due to the synergistic effects of high surface area, uniform mesoporous structure and junctions among mixed phases. The tricrystalline Ti O_2 prepared at R HNO_3= 0.8, containing80.7% anatase, 15.6% brookite and 3.7% rutile, exhibited the highest photocatalytic activity,about 3.85-fold higher than that of P25. The high activity did not significantly degrade even after five reuse cycles. In conclusion, it is expected that our study regarding gas-phase degradation of toluene over tricrystalline Ti O_2 will enrich the chemistry of the Ti O_2-based materials as photocatalysts for environmental remediation and stimulate further research interest on this intriguing topic.  相似文献   

16.
MnxCe1- xO2(x: 0.3–0.9) prepared by Pechini method was used as a catalyst for the thermal catalytic oxidation of formaldehyde(HCHO). At x = 0.3 and 0.5, most of the manganese was incorporated in the fluorite structure of Ce O2 to form a solid solution. The catalytic activity was best at x = 0.5, at which the temperature of 100% removal rate is the lowest(270°C). The temperature for 100% removal of HCHO oxidation is reduced by approximately 40°C by loading 5 wt.% Cu Oxinto Mn0.5Ce0.5O2. With ozone catalytic oxidation, HCHO(61 ppm) in gas stream was completely oxidized by adding 506 ppm O3 over Mn0.5Ce0.5O2 catalyst with a GHSV(gas hourly space velocity) of 10,000 hr-1at 25°C. The effect of the molar ratio of O3 to HCHO was also investigated. As O3/HCHO ratio was increased from 3 to 8, the removal efficiency of HCHO was increased from 83.3% to 100%. With O3/HCHO ratio of 8, the mineralization efficiency of HCHO to CO2 was 86.1%. At 25°C, the p-type oxide semiconductor(Mn0.5Ce0.5O2) exhibited an excellent ozone decomposition efficiency of 99.2%,which significantly exceeded that of n-type oxide semiconductors such as Ti O2, which had a low ozone decomposition efficiency(9.81%). At a GHSV of 10,000 hr-1, [O3]/[HCHO] = 3 and temperature of 25°C, a high HCHO removal efficiency(≥ 81.2%) was maintained throughout the durability test of 80 hr, indicating the long-term stability of the catalyst for HCHO removal.  相似文献   

17.
不同SAPO分子筛负载MnOx催化剂的低温NH3-SCR性能研究   总被引:1,自引:1,他引:0  
以磷酸硅铝分子筛SAPO-5、SAPO~(-1)1和SAPO-34为载体,采用乙醇分散法制备了用于低温氨选择性还原(NH_3-SCR)NO_x的分子筛负载MnO_x催化剂.活性测试结果显示,3种分子筛催化剂均展现出优良的NH_3-SCR活性,但三者在低温区间的SCR活性存在较明显差异,其SCR活性顺序如下:MnO_x/SAPO-34MnO_x/SAPO-5MnO_x/SAPO~(-1)1.借助XRD、N2吸附-脱附、XPS、H2-TPR、NH_3-TPD、NH_3FT-IR等技术对催化剂的表面活性物种及表面酸性等进行表征分析,结果表明,MnO_x主要以无定型状态分散于载体上,负载后载体的比表面积和孔体积均有所下降.XPS和H2-TPR分析证实,不同分子筛载体上MnO_x的表面浓度与氧化态明显不同.NH_3-TPD和NH_3FT-IR分析揭示了催化剂表面均存在Bronsted酸位和Lewis酸位,其中,Lewis酸性位对低温SCR反应起着关键作用.研究表明,催化剂的催化性能会因载体不同而存在差异,高Mn4+表面浓度和丰富的Lewis酸性位对催化剂在低温区间实现优良的催化活性尤为重要.  相似文献   

18.
Non-thermal plasma technologies have shown their promising potential specially for the low concentration of volatile organic compound control in indoor air in recent years. But it is also high energy consuming. So, to improve the energy efficiency, adding catalysts which enhance the plasma chemical reactions to plasma reactors may be a good selection. Therefore, in this study the manganese dioxide assisted silent discharge plasma was developed for benzene conversion at a relatively high energy efficiency. The results show that MnO2 could promote complete oxidation of benzene with O2 and O3 produced in the plasma discharge zone. The energy efficiency of benzene conversion with MnO2 was two folds as much as that without catalysts. It was also found that the site of MnO2 in the reactor and the energy density had effects on benzene conversion. While the energy density was lower than 48 J/L, benzene conversion decreased with the increase in the distance between MnO2 bed and the plasma discharge zone. Whereas when the energy density was higher than 104 J/L, benzene conversion had an optimal value that was governed by the distance between MnO2 bed and the plasma discharge zone. The mechanism of benzene oxidation in plasma discharges and over MnO2 is discussed in detail. __________ Translated from China Environmental Science, 2006, 26(6): 703–707 [译自: 中国环境科学]  相似文献   

19.
采用柠檬酸络合法制备了Mn/(Mn+Ce)原子比为0.4的MnO_x-CeO_2复合氧化物,使其分别在有和无脉冲介质阻挡放电条件下,多次催化氧化碳烟.采用XRD、BET、Raman和XPS对新制备未反应过的和各次反应后的MnO_x-CeO_2进行表征.结果发现,在初次反应中,脉冲介质阻挡放电对反应具有强化作用,使MnO_x-CeO_2具备更好的活性.在放电和无放电2种条件下,催化剂第2次反应的活性均较第1次有所降低,且放电条件下降幅更大,而在第3次反应时催化剂活性在两种条件下均保持稳定状态.以上现象原因为,初次反应,两种条件下高温使MnO_x-CeO_2中Mn-Ce-O固溶体发生相分离,部分Mn析出生成了Mn_3O_4;未引入放电时催化剂表面发生不可逆还原的Mn~(4+)量更少,且拥有更多Ce~(3+)并产生了本征氧空位及更多的表面氧;放电的引入,加剧了初次反应时MnO_x-CeO_2表面Mn~(4+)向Mn~(3+)和Mn~(2+)的转化,使其具备更高的活性,但也抑制了Mn~(4+)的恢复,降低了催化剂的活性.在随后的反应中,有无放电催化剂均保持了稳定.脉冲介质阻挡放电对MnO_x-CeO_2反应的关键因素Mn~(4+)、本征氧空位和表面氧产生了重要影响,这种影响在初次反应时并不可逆,进而减弱了放电对反应的强化作用,该现象不可忽视,值得进一步研究.  相似文献   

20.
Elimination of formaldehyde over Cu-Al2O3 catalyst at room temperature   总被引:2,自引:0,他引:2  
Catalytic elimination of formaldehyde (HCHO) was investigated over Cu-Al2O3 catalyst at room temperature. The results indicated that no oxidation of HCHO into CO2 occurs at room temperature, but the adsorption of HCHO occurs on the catalyst surface.With the increase of gas hourly space velocity(GHSV) and inlet HCHO concentration, the time to reach saturation was shortened proportionally. The results of the in situ DRIFTS, Density functional theory calculations and temperature programmed desorption(TPD) showed that HCHO was completely oxidized into HCOOH over Cu-Al2O3 at room temperature. With increasing the temperature in a flow of helium, HCOOH was completely decomposed into CO2 over the catalyst surface, and the deactivated Cu-Al2O3 is regenerated at the same time. In addition, although Cu had no obvious influence on the adsorption of HCHO on Al2O3, Cu dramatically lowered the decomposition temperature of HCOOH into CO2. It was shown that Cu-Al2O3 catalyst had a good ability for the removal of HCHO, and appeared to be promising for its application in destroying HCHO at room temperature.  相似文献   

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