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1.
利用水热法合成核壳结构Au@SiO2@CeO2纳米微球,制备了一系列双层结构复合光阳极并应用于染料敏化太阳能电池(DSSC)。研究表明:当CeO2纳米微球和核壳结构Au@SiO2@CeO2纳米微球应用于DSSC光阳极散射层时,电池的光电转化效率有了显著提高。相对于纯 TiO2 (P25)光阳极,P25/CeO2纳米球光阳极电池的 DSSC 光电性能提高了 15.3%,P25/Au@SiO2@CeO2纳米球光阳极电池的光电性能提高了27.9%。DSSC光电性能的提高主要归因于2个方面:一方面,Au纳米粒子的表面等离子体共振效应有效提高了光阳极薄膜的光散射效应。另一方面,CeO2具有较高的染料负载能力,核壳球形结构具有较高的比表面积,增强了光的散射效应,提高了电子传输能力。  相似文献   

2.
在纳米TiO2多孔薄膜表面包覆超薄绝缘体,形成"核-壳"结构的势垒层,是目前染料敏化太阳电池(DSC)光阳极改性的研究热点之一.本文选取氧化钇(Y2O3)作为包覆层材料,采用浸渍法对纳米TiO2多孔薄膜进行修饰,研究Y2O3包覆处理对TiO2薄膜微观结构及能带结构的影响;将浸渍法制备得到的Y2O3/TiO2"核-壳"结构光阳极应用于DSC中,研究了饣覆层对电子传输复合以及DSC光电转换性能的影响.结果表明,Y2O3包覆处理后,薄膜的平带电势负移,且电子复合得到有效抑制,电子寿命增大,电池的开路电压明显提高.研究表明,适量引入Y2O3可以达改善电池性能的目的.  相似文献   

3.
利用改进型的溶胶-凝胶法,制得了由锐钛矿相纳米颗粒组成的TiO2多孔微纳小球。通过调节前驱物浓度,合成出粒径可控的尺寸分别为100,175,225,475 nm的TiO2微纳小球,并通过电泳沉积法将合成出的小球作为光散射层引入到染料敏化太阳电池(DSSC)中。由于这种微纳小球在具备良好的光散射性能的同时也具备较高的染料吸附量,因此相较于基于纳米颗粒的单层结构的DSSC拥有更高的光电转换效率。通过比较分析,粒径尺寸为475 nm的微球作为光散射层的DSSC光电转换效率可以达到6.3%,较之于基于纳米颗粒的DSSC提高了30%。  相似文献   

4.
杨梅  时振领  徐楠  毛丹  王丹 《应用化学》2018,35(8):902-915
染料敏化太阳能电池(Dye-Sensitized Solar Cells,DSSC)以其低成本、易加工、高转化等特点受到广泛关注,半导体光阳极是DSSC的重要组成部分,其组成和微观结构直接影响电池性能,中空微/纳结构能够提供高表面积、增加染料负载量、促进光捕获,增强电子传输,因而成为近年来光阳极材料领域的一个热点内容。 本文综述了中空微/纳结构光阳极材料的研究进展,主要包括空心球、空心盒、核-壳结构、多级空心、多壳层结构等,并着重分析了各个结构特征与光电转换效率的关系和增益机制,探讨了中空微/纳结构光阳极面临的挑战及发展趋势。  相似文献   

5.
利用改进型的溶胶-凝胶法, 制得了由锐钛矿相纳米颗粒组成的TiO2多孔微纳小球。通过调节前驱物浓度, 合成出粒径可控的尺寸分别为100, 175, 225, 475 nm的TiO2微纳小球, 并通过电泳沉积法将合成出的小球作为光散射层引入到染料敏化太阳电池(DSSC)中。由于这种微纳小球在具备良好的光散射性能的同时也具备较高的染料吸附量, 因此相较于基于纳米颗粒的单层结构的DSSC拥有更高的光电转换效率。通过比较分析, 粒径尺寸为475 nm的微球作为光散射层的DSSC光电转换效率可以达到6.3%, 较之于基于纳米颗粒的DSSC提高了30%。  相似文献   

6.
采用水热法合成了TiO2空心微球,并通过XRD、SEM、TEM对其结构和形貌进行了分析.将TiO2空心微球作为光阳极制作成染料敏化太阳电池,并进行光电化学性能测试.结果表明,电流-电压曲线测试表明以TiO2空心微球为光阳极的电池光电转换效率远高于以TiO2纳米晶为光阳极的电池;紫外-可见吸收光谱及电化学阻抗谱(EIS)显示TiO2空心微球的光吸收能力增强,电池的电荷转移阻抗更低,表明其空心的球体结构是其光电性能提高的主要原因.  相似文献   

7.
本文利用水性过氧化钛配合物(peoxotitanium complex:PTC)前驱体可低温合成锐钛矿TiO2溶胶的特性,将其用作柔性染料敏化太阳能电池(DSSC)中的光阳极材料的成膜助剂.研究发现:加入基于PTC制得的TiO2溶胶可以明显提高DSSC的光电转换性能,在制备DSSC的浆料中加入10%(体积分数)的基于PTC制得的TiO2溶胶后,电池的光电效率可以提升50%.我们进一步研究了光电转换效率的影响因素,结果表明,溶胶的加入量和反应时间均有一最佳值,当基于PTC的TiO2溶胶添加量为10%,反应时间为9h,所得到电池的光电性能最好.  相似文献   

8.
金纳米壳球体的制备及其潜在的生物学应用   总被引:3,自引:0,他引:3  
谈勇  丁少华  王毅  钱卫平 《化学学报》2005,63(10):929-933
利用分子自组装和胶体还原化学制备出具有核-壳结构的金纳米壳球体Au@SiO2; 通过透射电子显微镜(TEM)、X射线光电子能谱 (XPS)和紫外-可见分光光度计对Au@SiO2的制备过程及其在全血中的光学特性进行了研究. 结果表明, 通过改变复合颗粒Au-APTES-SiO2的浓度, 可以得到具有合理核-壳比例的Au@SiO2, 其等离激元共振峰位于光谱的近红外区, 这使得具有红外消光特性的金纳米壳球体具有潜在的生物学应用价值.  相似文献   

9.
采用水热法制备了一种刺球状TiO_2(NT),将其作为光散射中心,与纳米晶TiO_2混合,制备成一种底层为P25薄膜(作为染料吸收层),上层为添加NT散射层的混合结构的薄膜光阳极。探讨了NT添加量对薄膜性能的影响,实验结果表明,当NT与P25粉体的质量比为35%时电池光电性能最优,电池短路光电流密度为14.30 m A·cm~(-2),其光电转换效率达到7.38%。质量比继续增大,当达到50%时电池性能有所下降,光电转换效率降为5.99%,同时染料吸附量也由73.2μmol·cm~(-2)降到70.1μmol·cm~(-2)。这表明过量的大颗粒TiO_2刺球散射中心会减少光阳极的比表面积从而降低染料的有效吸附量,并且还会引起不必要的反向散射,只有适量的散射中心才能得到最佳性能的太阳能电池器件。  相似文献   

10.
王桂强  段彦栋  张娟  林原  禚淑萍 《化学进展》2014,26(7):1255-1264
染料敏化太阳能电池(dye-sensitized solar cells, DSC)效率高、制作简单、成本低,因此被认为是最有希望的第三代太阳能电池。DSC光阳极的主要作用是吸附染料、传输电子和提供电解质扩散通道,因此对DSC光电性能具有决定性作用。近年来,通过掺杂调控TiO2光阳极的电子特性,从而提高DSC的光电效率受到广泛关注。本文对掺杂TiO2光阳极的研究现状进行了综述,重点分析了非金属元素、过渡金属元素及主族元素的掺杂对TiO2光阳极的能带结构、光吸收特性、染料吸附量、电子传输和界面复合过程以及所组装DSC光电性能的影响,分析了非金属元素共掺杂的协同效应。同时,对稀土元素掺杂TiO2作为光谱转换材料提高DSC光吸收效率和光电转换效率进行了探讨,最后论文对掺杂TiO2光阳极今后的研究重点和研究方向进行了展望。  相似文献   

11.
We present a simple sol-gel hydrothermal process for the fabrication of a double-layered structure composed of a TiO2 nanorod overlayer and TiO2 nanoparticle-embedded ZnO nanoflower (ZNFs@TNPs-TNRs) underlayer. The ZNFs@TNPs-TNRs was used as a photoanode in dye-sensitized solar cells (DSSCs) and their photovoltaic performance was analyzed. The ZNFs@TNPs-TNRs can enhance the adsorption of N719 dyes, charge transport, and light scattering. The cell performances can be maximized by optimizing thickness ratio and total thickness of the double-layered photoanode, and the preliminary results demonstrate that a promising power conversion efficiency (PCE) of 8.01% is determined on the DSSC with ZNFs@TNPs-TNRs anode, yielding a 28.9% enhancement in the PCE in comparison to pristine TiO2–P25 nanoparticle-based DSSC.  相似文献   

12.
采用模板辅助法制备了SnO2/TiO2复合空心球,样品直径为1.5~4.0μm,比表面积达到了92.9 m^2·g^-1,复合空心球表现出优越的光散射性能.以这种复合空心球作为染料敏化太阳能电池的光阳极,电池的光电转换效率可达到7.72%,高于SnO2微米球(2.70%)和TiO2微米球(6.26%).此外,以锐钛矿型TiO2纳米晶作为底层,SnO2/TiO2复合空心球作为光散射层制备的双层结构光阳极,电池光电转换效率进一步提升至8.43%.  相似文献   

13.
A galvanic replacement strategy has been successfully adopted to design AgxAu1–x@CeO2 core@shell nanospheres derived from Ag@CeO2 ones. After etching using HAuCl4, the Ag core was in situ replaced with AgxAu1–x alloy nanoframes, and void spaces were left under the CeO2 shell. Among the as-prepared AgxAu1–x@CeO2 catalysts, Ag0.64Au0.36@CeO2 shows the optimal catalytic performance, whose catalytic efficiency reaches even 2.5 times higher than our previously reported Pt@CeO2 nanospheres in the catalytic reduction of 4-nitrophenol (4-NP) by ammonia borane (AB). Besides, Ag0.64Au0.36@CeO2 also exhibits a much lower 100% conversion temperature of 120 °C for catalytic CO oxidation compared with the other samples.  相似文献   

14.
以水热法为基础,向其溶胶中掺入适量的P25(二氧化钛粉体),来制备纳晶TiO2胶体,以纳晶TiO2为电子传输体组装染料敏化太阳能电池.通过XRD、SEM、UV-vis和电池的光电性能测试,来分析掺入P25对染料敏化太阳能电池性能的影响.结果表明,加入适量P25([P25]/[Ti]=0.2)后,染料敏化太阳能电池性能达到最佳值,在100 mW/cm2光照条件下,光电转换效率达到5.4%.  相似文献   

15.
The shell-in-shell structured TiO2 hollow microspheres with enhanced light scattering ability were synthesized via a facile one step hydrothermal process. The diameter of the microsphere is about 1.5 μm, the core of the unique shell-in-shell structure is composed of TiO2 nanoparticles with a diameter of about 15 nm, while the shell is constructed with ∼50 nm TiO2 nanocubes. The hollow space between the outer shell and the inner shell is about 230 nm. The formation mechanism of the unique shell-in-shell structure is interpreted. The design and the optimized application of shell-in-shell structured TiO2 hollow microspheres in the light-trapping perovskite solar cells are also investigated. Owing to the light scattering properties of the shell-in-shell structure of the hollow microsphere, the optimized photoelectrode exhibits an enhanced photoelectric conversion efficiency of 4.29% using perovskite CH3NH3PbI3 as the sensitizer. The shell-in-shell hollow TiO2 microsphere shows a 21.2% increase in conversion efficiency when compared with P25 nanoparticels photoanode. The conversion efficiency enhancement is mainly attributed to the increase of short-current density induced by the light scattering effect.  相似文献   

16.
Hollow structures show both light scattering and light trapping, which makes them promising for dye‐sensitized solar cell (DSSC) applications. In this work, nanoparticulate hollow TiO2 fibers are prepared by layer‐by‐layer (LbL) self‐assembly deposition of TiO2 nanoparticles on natural cellulose fibers as template, followed by thermal removal of the template. The effect of LbL parameters such as the type and molecular weight of polyelectrolyte, number of dip cycles, and the TiO2 dispersion (amorphous or crystalline sol) are investigated. LbL deposition with weak polyelectrolytes (polyethylenimine, PEI) gives greater nanoparticle deposition yield compared to strong polyelectrolytes (poly(diallyldimethylammonium chloride), PDDA). Decreasing the molecular weight of the polyelectrolyte results in more deposition of nanoparticles in each dip cycle with narrower pore size distribution. Fibers prepared by the deposition of crystalline TiO2 nanoparticles show higher surface area and higher pore volume than amorphous nanoparticles. Scattering coefficients and backscattering properties of fibers are investigated and compared with those of commercial P25 nanoparticles. Composite P25–fiber films are electrophoretically deposited and employed as the photoanode in DSSC. Photoelectrochemical measurements showed an increase of around 50 % in conversion efficiency. By employing the intensity‐modulated photovoltage and photocurrent spectroscopy methods, it is shown that the performance improvement due to addition of fibers is mostly due to the increase in light‐harvesting efficiency. The high surface area due to the nanoparticulate structure and strong light harvesting due to the hollow structure make these fibers promising scatterers in DSSCs.  相似文献   

17.
One‐dimensional (1D) TiO2 nanostructures are desirable as photoanodes in dye‐sensitized solar cells (DSSCs) due to their superior electron‐transport capability. However, making use of the DSSC performance of 1D rutile TiO2 photoanodes remains challenging, mainly due to the small surface area and consequently low dye loading. Herein, a new type of photoanode with a three‐dimensional (3D) rutile‐nanorod‐based network structure directly grown on fluorine‐doped tin oxide (FTO) substrates was developed by using a facile two‐step hydrothermal process. The resultant photoanode possesses oriented rutile nanorod arrays for fast electron transport as the bottom layer and radially packed rutile head‐caps with an improved large surface area for efficient dye adsorption. The diffuse reflectance spectra showed that with the radially packed top layer, the light‐harvesting efficiency was increased due to an enhanced light‐scattering effect. A combination of electrochemical impedance spectroscopy (EIS), dark current, and open‐circuit voltage decay (OCVD) analyses confirmed that the electron‐recombiantion rate was reduced on formation of the nanorod‐based 3D network for fast electron transport. As a resut, a light‐to‐electricity conversion efficiency of 6.31 % was achieved with this photoanode in DSSCs, which is comparable to the best DSSC efficiencies that have been reported to date for 1D rutile TiO2.  相似文献   

18.
Structurally thermostable mesoporous anatase TiO2 (m‐TiO2) nanoparticles, uniquely decorated with atomically dispersed SiO2, is reported for the first time. The inorganic Si portion of the novel organosilane template, used as a mesopores‐directing agent, is found to be incorporated in the pore walls of the titania aggregates, mainly as isolated sites. This is evident by transmission electron microscopy and high‐angle annular dark field scanning transmission electron microscopy, combined with electron dispersive X‐ray spectroscopy. This type of unique structure provides exceptional stability to this new material against thermal collapse of the mesoporous structure, which is reflected in its high surface area (the highest known for anatase titania), even after high‐temperature (550 °C) calcination. Control of crystallite size, pore diameter, and surface area is achieved by varying the molar ratios of the titanium precursor and the template during synthesis. These mesoporous materials retain their porosity and high surface area after template removal and further NaOH/HCl treatment to remove silica. We investigate their performance for dye‐sensitized solar cells (DSSCs) with bilayer TiO2 electrodes, which are prepared by applying a coating of m‐TiO2 onto a commercial titania (P25) film. The high surface area of the upper mesoporous layer in the P25–m‐TiO2 DSSC significantly increases the dye loading ability of the photoanode. The photocurrent and fill factor for the DSSC with the bilayer TiO2 electrode are greatly improved. The large increase in photocurrent current (ca. 56 %) in the P25–m‐TiO2 DSSC is believed to play a significant role in achieving a remarkable increase in the photovoltaic efficiency (60 %) of the device, compared to DSSCs with a monolayer of P25 as the electrode.  相似文献   

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