共查询到19条相似文献,搜索用时 93 毫秒
1.
苝二酰亚胺(PTCDI)是一种n型半导体材料,在可见光区有很强的吸收,广泛用于有机光伏器件领域的研究.以PTCDI为光敏剂制备TiO2可见光光催化剂用以降解环境污染物的研究还鲜有报道.本文采用水热法制备苝二酰亚胺(PTCDI)和四磺酸酞菁铜(CuPcTs)敏化的TiO2复合样品.利用XRD、TEM、UV-Vis和荧光光谱对复合样品进行表面形貌和结构表征,以可见光光催化降解罗丹明B为模型反应.研究结果表明,染料敏化能够有效地拓宽样品的吸收光谱范围,提高可见光光催化活性;电子收集型的共敏化复合样品体现出了优于单一染料敏化样品的光催化活性.应用能带结构理论,阐明了单一染料敏化和共敏化样品的光生电子转移机制. 相似文献
2.
采用溶胶 凝胶、浆体涂敷、磁控溅射等方法制备了二氧化钛单层以及多层膜.通过透射电镜、扫描电镜以及X射线衍射实验分析了不同薄膜的结构.通过比较不同薄膜制作的染料敏化太阳电池性能探讨了薄膜结构的影响.实验所获得的电池开路电压可达708mV,短路电流可达13.26mA(电池面积为1.8cm2). 相似文献
3.
用有机光敏染料敏化半导体,通过染料分子的吸附功能基团与半导体相互作用,使染料分子与半导体表面之间建立电性耦合,进行有效的电荷转移,可以形成有机-半导体复合新型光电功能材料。联吡啶钌络合物有较强的可见光吸收、氧化还原性能可逆、氧化态稳定性高,是一类性能优越的有机光敏染料。近来许多研究发现,羧酸联吡啶钌的强吸附与TiO2纳晶薄膜的大比表面相结合,导致光生电荷快速注入TiO2导带达到有效的电荷分离,得到了接近100%的单色光光电流效率[1]。为研究联吡啶钌分子的不同吸附功能基团与TiO2纳晶薄膜表面的相互作用对提高光电性能的影响,本文报道苯基磷酸取代的联吡啶钌络合物敏化纳晶多孔TiO2薄膜的光电性能。 相似文献
4.
染料敏化太阳能电池用TiO2薄膜电极的改性制备及光电化学性能 总被引:1,自引:0,他引:1
以钛酸四异丙酯为钛源, 用水热法合成制备了具有典型锐钛矿晶型的TiO2纳米材料. 采用金属镍掺杂和表面包覆一层氧化钕, 对TiO2薄膜电极进行改性研究. 实验结果表明, 所制备纳米TiO2颗粒较均匀, 粒径约为17~18 nm. 经镍掺杂后, 颗粒团聚粒径明显增大, 但是仍保持均匀状态和多孔结构. 与改性前的TiO2薄膜电极相比, 金属掺杂和表面包覆有助于光生电子和空穴有效地分离, 电池的短路光电流提高了16%, 光电转换效率提高了17%. 相似文献
5.
采用溶胶-凝胶法,通过钛酸丁酯水解制备了具有锐钛矿-金红石-板钛矿混晶晶粒的TiO2溶胶。以四磺酸酞菁铜(CuTsPc)为敏化剂,经水浴加热后获得具有可见光响应活性的TiO2溶胶。使用该溶胶浸渍-提拉涂膜,在室温下晾干即可得到酞菁敏化的TiO2薄膜(CuTsPc-TiO2)。对敏化溶胶的制备条件及薄膜的性能进行了考察,并探讨了CuTsPc的负载机理。结果表明:延长水浴时间或提高TiO2溶胶中的CuTsPc浓度有利于增大薄膜中CuTsPc的负载量。随着薄膜中CuTsPc量的增加,薄膜的可见光催化活性增强,但CuTsPc负载过多又会导致薄膜光催化活性降低。CuTsPc通过静电作用在TiO2胶粒表面发生吸附,从而实现在薄膜中均匀、牢固的负载,保证了CuTsPc-TiO2薄膜在循环使用过程中的稳定性。 相似文献
6.
7.
CuTSPc/SnO2纳米介孔复合材料的合成及其可见光光催化活性 总被引:4,自引:0,他引:4
采用无模板水热法,以四磺基酞菁铜(CuTSPc)敏化SnO2制备了CuTSPc/SnO2纳米介孔复合材料,通过X射线衍射、透射电镜、氮气吸附-脱附、紫外-可见光谱和傅里叶变换红外光谱等对复合材料进行了表征,并以罗丹明B (RhB)为目标降解物考察了其低功率(15 W光源)可见光光催化活性及循环使用性. 结果表明, CuTSPc周环的磺基与SnO2表面的锡离子形成双齿螯合, 0.1 mol% (CuTSPc与SnO2物质的量比) CuTSPc/SnO2复合材料的比表面积和平均孔径分别为236 m2/g和2.6 nm, 反应180 min时可见光降解率高达87%, 循环使用率较高(87%±5%). 相似文献
8.
Cu掺杂TiO_2薄膜的摩擦学性能 总被引:1,自引:0,他引:1
采用溶胶-凝胶法在普通玻璃基底上制备了纯TiO2和Cu掺杂的TiO2(Cu-TiO2)纳米结构薄膜,利用X射线光电子能谱(XPS)、原子力显微镜(AFM)、粉末X射线衍射(XRD)及UMT-3摩擦磨损试验机考察了Cu掺杂量对薄膜组成、结构、表面形貌及摩擦学性能的影响.结果表明,相比于纯TiO2薄膜,Cu掺杂TiO2纳米薄膜平整、均匀,具有较好的耐磨减摩性能.Cu掺杂量的多少直接影响Cu-TiO2薄膜的减摩抗磨性能,当Cu掺杂量为5%(摩尔分数)时,Cu-TiO2膜具有最佳的耐磨寿命和最低的摩擦系数. 相似文献
9.
柔性TiO2纳米管薄膜电极的制备及其光电性能 总被引:1,自引:0,他引:1
采用水热合成法制备出TiO2纳米管,通过XRD、TEM和氮气等温吸附-脱附仪等测试手段对TiO2纳米管进行了表征.用烧结的TiO2纳米管和P25粉末混合制成薄膜电极,并研究了薄膜电极的表面形貌、染料吸附量和光电性能.研究表明,加入TiO2纳米管可以制备出机械稳定的薄膜;掺杂TiO2纳米管的含量越多,薄膜电极的染料吸附量越大;掺杂5%烧结纳米管粉末的薄膜电极的光电性能最好,其短路电流可达3.25mA,光电转换效率达到1.67%. 相似文献
10.
新型CdS/TiO2纳米复合材料的制备及其可见光催化性能研究 总被引:1,自引:0,他引:1
采用浸渍法和水热法相结合制备了新型的CdS/TiO2纳米复合材料,并采用X射线衍射(XRD)、透射电子显微镜(TEM)、UV-Vis吸收光谱(UV-VIS)、电子自旋共振谱(ESR)等对样品进行了表征,XRD、TEM表明所制备的新型CdS/TiO2粒径小、分散均匀,TiO2以锐钛矿型存在,CdS以高分散的立方相和六方相存在,对比直接法制备的CdS/TiO2,新型的CdS/TiO2对活性艳红X-3B具有明显提高的可见光催化活性;大量的束缚单电子氧空位及电子之间强相互作用是新型CdS/TiO2可见光催化活性提高的主要原因. 相似文献
11.
12.
SHANG Jing ZHAO FengWei ZHU Tong & LI Jia State Key Joint Laboratory of Environmental Simulation Pollution Control College of Environmental Sciences Engineering Peking University Beijing China 《中国科学B辑(英文版)》2011,(1)
Perylene tetracarboxylic diimide (PTCDI),widely used in organic photovoltaic devices,is an n-type semiconductor with strong absorption in the visible-light spectrum.There has been almost no study of the PTCDI-sensitized TiO2 composite used to photocatalytically degrade pollutants.In this study,PTCDIand copper phthalocyanine tetrasulfonic acid (CuPcTs)-sensitized TiO2 composites were prepared using a hydrothermal method.The morphologies and structures of the two composites were characterized by X-ray diffrac... 相似文献
13.
用光电化学方法研究了不对称菁类染料敏化TiO2纳米结构电极的光电转换过程.结果表明,该染料的电子激发态能级位置与TiO2纳米粒子导带边位置匹配较好,光激发染料后,其激发态电子可以注入到TiO2纳米多孔膜的导带,从而使TiO2纳米结构电极的吸收光谱和光电流谱红移至可见光区,其 IPCE(Incident photon-to-electron conversion efficiency)值最高可达84.3%.并进一步结合现场紫外-可见吸收光谱研究了外加电势对激发态染料往TiO2纳米多孔膜注入电子过程的影响. 相似文献
14.
J. Bandara U.W. Pradeep R.G.S.J. Bandara 《Journal of photochemistry and photobiology. A, Chemistry》2005,170(3):273-278
The composite electrode comprising n-type TiO2 and p-type NiO oxides when sensitized with Ru-dye showed short-circuit photocurrent (Isc) of 17 mA/cm2 and open-circuit photovoltage (Voc) of 730 mV compared to Isc of 12 mA/cm2 and 700 mV for TiO2 electrodes. Formation of a n–p junction between TiO2 and NiO oxide layers contributes to the enhanced photocurrent, photovoltage, fill factor and efficiency. In addition to the junction effect, NiO acts as a barrier for charge recombination leading to higher cell performance. The efficiency of the NiO coated TiO2 solar cell is 30% more than that of bare TiO2. The negative shift of the flat-band potential of the NiO coated TiO2 electrode compared to TiO2 also could be one of the reasons for higher photovoltage observed for TiO2/NiO electrode. The highest cell efficiencies were obtained immersing TiO2 thin films in Ni2+ solution and converting them to NiO by firing and the optimum NiO coating thickness was found to be only a few angstroms. The energy levels of the excited dye and the band positions of TiO2 and NiO suggest that the electron transfer from the excited dye to the underlying n-type oxide layer occurs by tunneling through the p-type NiO layer. 相似文献
15.
Direct investigation of the electronic structure of catalyst surfaces on the near-atomic scale in general has not been impossible in the past. However, with the advent of the scanning tunneling microscope (STM), the opportunity arises for incorporating the scanning tunneling spectroscopy (STS) for correlation in-situ surface electronic structure with topography on a sub-nanometer scale. In this paper, we report the STS results of thin film TiO2 and Pt-deposited TiO2 annealed at 450℃. It was found that the TiO2 semiconductor changes from n-type to p-type after Pt deposition.Fig. 1 shows the surface electronic property (Ⅰ-Ⅴ curve) of thin TiO2 film measured in air by STS. A steep descent of the anodic tunneling current at ca.- 1.0 Ⅴ and a rapid ascent of cathodic tunneling current at ca. +2.0V. The zero bias represents the Fermi level (Ef). Ef is situated at the Ecb side indicating that the thin TiO2 film possesses the same band gap as that of bulk TiO2 phase ( Egs =3.0 to 3.2 eV). For the sample of Pt-deposited TiO2 film, Pt/(Pt+Ti+O) atomic ratio≈0.2, which indicates that the surface of TiO2 film is partly covered by Pt particles, and there are two types of Ⅰ-Ⅴ curves to be detected. One of them (Fig.2a)is attributed to the electronic property of TiO2, which has same Egs as that shown in Fig. 1. However, the Ef is transferred to valence side (△≈1eV). This phenomenon hints that TiO2 is doped by an impurity which can introduce h+ into TiO2 lattice.Such a type of defects may be described by Ti1-xPtxO2(h )2x, here Pt+2 as a substitutional site of Ti+4. Fig.2b is the Ⅰ-Ⅴ curve of a Pt particle situated on a TiO2 particle contained Ti1-xPtxO2(h )2x. 相似文献
16.
TiO2 film was prepared on soda-lime glass by sol-gel method. The water contact angle (θ) of the fresh TiO2 film is 0°. During storage in air, the surface of TiO2 film is gradually converted to the hydrophobic state. XPS and ITD results reveal that it is due to the adsorption of organic contaminants on TiO2 surface in air ambience. The lost hydrophilicity of TiO2 film can be regenerated by UV illumination. 相似文献
17.
低聚噻吩酸敏化多孔TiO2膜的光电转换性能 总被引:7,自引:2,他引:7
自从 Gratzel等 [1 ]于 1991年发现染料敏化的 Ti O2 膜具有良好的光电转换性质以来 ,对染料敏化半导体太阳能电池的研究已成为半导体电化学领域的研究热点 [2~ 4] ,这类电池的光电转换效率不断提高[5,6] .但具有较高转换效率的器件多是采用液体电解质和价格昂贵的联吡啶钌化合物作为染料 ,不利于其实际应用的推广 .采用聚噻吩作为电解质 ,并兼敏化作用组装电池已见报道 [7] .低聚噻吩酸具有一定的电导率 ,其分子连有端基羧酸 ,能有效地与 Ti O2 表面羟基作用而吸附 ,同时它们在可见光区有较好的吸光特性 ,是一种潜在的、具有敏化效应… 相似文献
18.
By varying the hydrolysis and hydrothermal processing parameters in preparing TiO2 nanoparticles different sizes of TiO2 nanoparticles are obtained.(1) At higher autoclaving temperature,lower pH and longer autoclaving period,larger sizes of TiO2 nanoparticles are prepared.(2) The nanoporous electrodes made from sintering smaller TiO2 nanoparticles show relatively poor IPCE and low absorption in UV-Vis spectrum,(3) Higher IPCE can be achieved with TiO2 nanoporous electrodes made from sintering larger TiO2 nanoparticles.These electrodes are suitable for studying behavior of the photoelectrochemistry of dye sensitized nanoporous electrodes. 相似文献
19.
~~Controllable preparation of nanosized TiO_2 thin film and relationship between structure of film and its photocatalytic activity@魏刚$College of Material Science and Engineering,Beijing University of Chemical Technology! Beijing 100029,China
@张元晶$College of Material Science and Engineering,Beijing University of Chemical Technology! Beijing 100029,China
@熊蓉春$College of Material Science and Engineering,Beijing University of Chemical Technology! Beijing 100029,China~… 相似文献