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1.
翁坚  肖尚锋  陈双宏  戴松元 《物理学报》2007,56(6):3602-3606
通过对大面积染料敏化太阳电池的实验研究,探讨了串联电阻对大面积染料敏化太阳电池光伏特性的影响问题,给出了解决这一问题的有效方法. 在此基础上制作的大面积条状电池(0.8cm×18cm)光电转换效率达到6.89%,而由此条状电池并联组成的大面积电池(15cm×20cm)的效率接近6%. 使得大面积染料敏化太阳电池的研究工作取得突破性进展,迈出了实用化的关键一步,为其工业化生产及商业化应用提供了理论和实验依据. 关键词: 大面积 染料敏化 太阳电池 串联电阻  相似文献   

2.
染料敏化纳米薄膜太阳电池实验研究   总被引:10,自引:0,他引:10       下载免费PDF全文
染料敏化纳米薄膜太阳电池(DSCs)的性能主要是由纳米多孔TiO22薄膜、染 料光敏化剂 、电解质、反电极(光阴极)等几个主要部分决定的.通过优化DSCs各项关键技术和材料的 性能,并通过小面积DSCs的系列实验和优化组合实验来检测各项参数对DSCs性能的影响,获 得在光照1个太阳(AM15)下,光电转换效率达到895%.这为进行产业化制备大面积DSCs 打下了良好基础. 关键词: 染料敏化 太阳电池 优化 效率  相似文献   

3.
电沉积处理与染料敏化纳米薄膜太阳电池的优化   总被引:3,自引:0,他引:3       下载免费PDF全文
采用阳极氧化水解法对染料敏化纳米TiO2薄膜太阳电池的光阳极进行不同方式的电沉积优化处理.借助x射线衍射仪对处理后的样品进行分析,通过超高分辨率场发射扫描电子显微镜对导电玻璃以及电沉积处理前后纳米多孔薄膜表面进行了粒径和形貌的扫描.染料敏化太阳电池实验测试结果表明,电沉积处理和修饰后可以明显提高光生电子的收集率,增大短路电流密度,提高电池效率. 关键词: 2')" href="#">纳米TiO2 染料敏化 电沉积 太阳电池  相似文献   

4.
陈双宏  翁坚  王利军  张昌能  黄阳  姜年权  戴松元 《物理学报》2011,60(12):128404-128404
太阳电池组件由于局部电压不匹配,其中部分电池可能较长时间工作在负偏压状态下,从而影响电池光电性能.借助拉曼光谱、电化学阻抗谱和入射单色光量子效率(IPCE)等测试手段,研究长期负偏压作用下染料敏化太阳电池光电性能的变化及其影响机理.拉曼光谱研究结果表明:电池在1000 h负偏压作用下,电解质中阳离子(Li+)会向光阳极(TiO2电极)移动并嵌入TiO2薄膜中;长期负偏压作用还会致使TiO2/电解质界面阻抗增大和IPCE下降,导致电池开路电压升高和短路电流减小.通过加入苯并咪唑(BI)添加剂,经1000 h负偏压后电池的拉曼光谱实验表明,BI能在一定程度阻碍Li+的嵌入,电池具有较好的长期稳定性.不同负偏压下的老化实验进一步表明,通过加入添加剂能够使电池在长期负偏压下保持较好的稳定性. 关键词: 染料敏化 太阳电池 组件 负偏压  相似文献   

5.
吴宝山  王琳琳  汪咏梅  马廷丽 《物理学报》2012,61(7):78801-078801
以影响大面积染料敏化太阳电池性能的几个物理参量和几何参量为切入点, 分析了内部电阻对电池性能的影响, 针对几种构型不同的大面积电池, 建立了效率的半经验模型. 根据并联、串联、和各单元独立式串并联的大面积电池的相关物理参量和几何参量, 对电池效率进行了计算. 通过比较计算值与测试值的偏差, 分析了半经验模型的适用性. 在半经验模型的基础上, 分析了相关物理参量和几何参量对电池性能的影响. 结果表明, 在实际应用中, 通过半经验模型分析物理参量和几何参量的影响, 可以优化大面积电池的性能.  相似文献   

6.
染料敏化纳米ZnO薄膜太阳电池机理初探   总被引:8,自引:0,他引:8       下载免费PDF全文
讨论利用ZnO代替TiO2作为光阳极制作染料敏化薄膜太阳电池的可行性.使用LSV法,IR光谱和UV-vis光谱探讨了电池的工作机理和性能,并与染料敏化纳米TiO2薄膜太阳电池作了比较.结果发现ZnO薄膜表面与染料的吸附键合力太弱是导致ZnO太阳电池效率低下的主要原因. 关键词: 纳米ZnO 太阳电池 染料敏化 量子效率  相似文献   

7.
采用强度调制光电流谱(IMPS)和强度调制光电压谱(IMVS)技术,从染料敏化太阳电池(DSC)电子传输和复合角度对比了不同光强下导电玻璃表面阻挡层及TiO2薄膜优化使电池性能改善的内在原因.阻挡层的引入和TiO2薄膜的优化均通过电沉积法实现.结果表明,对多孔薄膜电极的不同改性均提高了电池的短路电流Jsc和效率η,但对电子传输和复合过程的作用机理有所不同:前者延长了电子寿命τ n,但电子传输时间τ d变化不明显;而后者则主要是延长τ n的同时也缩短了τ d. 关键词: 染料敏化 太阳电池 调制光电流谱/调制光电压谱 电子输运  相似文献   

8.
采用化学水浴法制备了大面积CdS多晶薄膜,研究了薄膜的形貌、结构和光学性质,结果表明,大面积CdS多晶薄膜具有良好的均匀性,通过优化CdS多晶薄膜,制成了不同CdS窗口层厚度的CdTe小面积太阳电池,减薄CdS薄膜可有效提高器件的短路电流,改善器件性能.随后,在面积30cm×40cm的衬底上制备了全面积为993.6cm2的CdTe太阳电池组件,其27个集成单元的电学性质较为均匀,太阳电池组件的光电转换效率8.13%. 关键词: 化学水浴法(CBD) CdS薄膜 CdTe太阳电池 CdTe太阳电池组件  相似文献   

9.
姜玲  张昌能  丁勇  莫立娥  黄阳  胡林华  戴松元 《物理学报》2015,64(1):17301-017301
本文主要利用TiO2亚微米球较强的光散射特性设计了纳米TiO2颗粒/亚微米球多层结构光阳极, 并借助强度调制光电流谱(intensity-modulated photocurrent spectroscopy)、电化学阻抗谱(electrochemical impedance spectroscopy)和入射单色光光电转化效率(incident photon-to-current conversion efficiency), 研究亚微米球的引入对多层结构薄膜内缺陷态、电子传输时间、电子收集效率和界面电荷转移性能的影响. 强度调制光电流谱反映出亚微米球表面缺陷态少, 但其颗粒间接触不紧密, 导致在接触部位形成了势垒, 阻碍了电子的传输, 导致电子传输时间增长. 电化学阻抗谱结果表明不同多层结构电池界面复合无明显差别, 同时底层采用纳米TiO2 透明薄膜结构的电池, 其光利用率要明显高于底层采用亚微米球薄膜结构的电池, TiO2费米能级电子填充水平也相对增大, 使得电池的光电转换效率得到提升. 多层结构复合薄膜电荷传输和光伏特性的研究, 为高效染料敏化太阳电池光阳极设计提供了实验基础.  相似文献   

10.
徐炜炜  胡林华  罗向东  刘培生  戴松元 《物理学报》2012,61(8):88801-088801
染料敏化太阳电池(DSC)中的纳米薄膜电极 是决定太阳电池光电转换性能的重要组成部分. 为改善薄膜电极特性, 采用了不同浓度的TiO2溶胶对DSC光阳极导电玻 璃和纳米TiO2多孔薄膜进行不同方式的界面处理. 利用X射线衍射方法对制备得到的多孔薄膜以及溶胶经高温处理 后致密层中纳米TiO2颗粒的尺寸及晶型进行了测试. 采用高分辨透射电子显微镜和场发射扫描电子 显微镜观察了纳米颗粒及薄膜微结构形貌. 采用强度调制光电流谱/光电压谱分析了TiO2溶 胶的不同处理方式对电子传输和复合的影响. 在100 mW· cm-2光强以及暗环境下分别测试了DSC的伏安输出性能以及暗电流. 结果表明, 不同浓度和处理方式均能较好地抑制暗电流. 溶胶处理后光生电子寿命τn延长, 电子传输平均时间τd相应缩短. 采用浓度为0.10 mol·L-1的 溶胶对导电玻璃和多孔膜同时处理, DSC的宏观输出特性最佳, 短路电流密度Jsc提高了10.9%, 光电转换效率η提高了11.9%.  相似文献   

11.
The present study involves fabrication and photovoltaic characterization including impedance properties of dye-sensitized solar cells based on natural dye from beetroot. The electrode of the cell was prepared with commercial Fluorine-doped Tin Oxide glass with 100 μm layer of nanostructured TiO2 whereas, the counter electrode consisted of platinum-coated glass. Fresh juice was extracted from beetroot to use as dye. The dye exhibited high absorption in visible range. Photovoltaic measurements of the solar cell gave a short circuit current density (Jsc) of 130 μA/cm2 and an open-circuit voltage (VOC) of 0.38 V under AM 1.5 illumination intensity. The VOC and Jsc showed linear behavior at higher values of illumination intensities. The conductance-voltage, the capacitance-voltage and the series resistance voltage characteristics of the dye solar cell was measured at frequency range from 5 kHz to 5 MHz to study performance of the dye-sensitized solar cells with natural dyes.  相似文献   

12.
Pt electrode prepared by chemical method has been employed as counter electrode in dye-sensitized solar cell. TiO2 nanomaterial was deposited on fluorine-doped tin oxide substrate to be used as photoanode. Structure of the TiO2 and Pt films was investigated by atomic force microscope. The effect of illumination intensity on the photovoltaic parameters such as open circuit voltage, short circuit current density, output power, fill factor and efficiency of these cells was investigated in the range 2.5–130 mW/cm?2. The cell efficiency is stable above 70 mW/cm2. The fill factor is almost constant all over the studied range of illumination intensity. Impedance spectroscopy of the studied device as the summary measurements of the capacitance–voltage, conductance–voltage and series resistance–voltage characteristics were investigated in a wide range of frequencies (5 kHz–1 MHz). At low frequencies, the capacitance has positive values with peak around the origin due to the interfaces. At 200 and 300 kHz, the capacitance is inverted to negative with further increasing of the positive biasing voltage. Above 400 kHz, C–V profile shows complete negative behavior. Also, the impedance–voltage and phase–voltage characteristics were investigated. This cell shows a new promising device for photosensor applications due to high sensitivity in low and high illuminations.  相似文献   

13.
The influence of tetrabutylammonium iodide on the polyvinylidene fluoride-poly(methyl methacrylate)-ethylene carbonate (PVDF-PMMA-EC)-I2 polymer blend electrolytes was investigated and optimized for use in a dye-sensitized solar cell. The different weight ratios (50, 60, 70, and 80 %) of tetrabutylammonium iodide (TBAI)-added PVDF-PMMA-EC-I2 polymer electrolytes were prepared. The prepared solid polymer blend electrolytes were characterized by using various techniques such as Fourier transform infrared (FT-IR) spectroscopy, differential scanning calorimetry (DSC), and electrochemical impedance spectroscopy (EIS). The FT-IR spectra revealed the interaction among all composition of polymer electrolytes. The influence of TBAI salt on the ionic conductivity of polymer electrolytes was studied using electrochemical impedance spectroscopy. The polymer electrolyte containing 60 % of TBAI in PVDF-PMMA-EC-I2 showed the highest room temperature conductivity of 5.10?×?10?3 S cm?1. The fabricated DSSC using PVDF-PMMA-EC-I2 polymer electrolytes with 60 % of TBAI showed the best performance with a short-circuit current density of 8.0 mA cm?2, open-circuit voltage of 0.66 V, fill factor of 0.65, and the overall power conversion efficiency of 3.45 % under an illumination of 100 mW cm?2. Hence, the weight content of organic iodide salt in polymer electrolytes influences the overall performance of dye-sensitized solar cells.  相似文献   

14.
Hydrothermal process has been employed to synthesize titanium oxide (TiO2) bottle brush. The nanostructured bottle brushes with tetragonal nanorods of ~75 nm diameter have been synthesized by changing the nature of the precursors and hydrothermal processing parameters. The morphological features and structural properties of TiO2 films were investigated by field emission scanning electron microscopy, X-ray diffraction, high-resolution transmission electron spectroscopy, Fourier transform Raman spectroscopy, and X-ray photoelectron spectroscopy. The influence of such nanostructures on the performance of dye-sensitized solar cells (DSSCs) is investigated in detail. The interface and transient properties of these nanorods and bottle brush-based photoanodes in DSSCs were analyzed by electrochemical impedance spectroscopic measurements in order to understand the critical factors contributing to such high power conversion efficiency. Surface area of sample was recorded using Brunauer–Emmett–Teller measurements. It is found that bottle brush provides effective large surface area 89.34 m2 g?1 which is much higher than TiO2 nanorods 63.7 m2 g?1. Such effective surface area can facilitate the effective light harvesting, and hence improves the dye adsorption and the photovoltaic performance of DSSCs, typically in short-circuit photocurrent and power conversion efficiency. A best power conversion efficiency of 6.63 % has been achieved. We believe that the present device performance would have wide interests in dye-sensitized solar cell research.  相似文献   

15.
Abstract ZnO nanoparticles with average diameter of 12 nm were used to fabricate ZnO photoanodes by electrohydrodynamic (EHD) technique for dye-sensitized solar cells (DSSCs). To enhance the light scattering and conversion efficiency, the ZnO film with scattering hollow cavities (HCs) was realized by calcining polystyrene spheres (PSs) in the film. The films had strong light scattering ability and the overall light to electricity conversion efficiency (η) was improved and reached 5.5% under illumination of simulated solar light (AM-1.5, 100 mW/cm2).  相似文献   

16.
Two kinds of prickly polyaniline samples, prickly polyaniline nanorods and microgranules, are prepared through the chemically oxidative polymerization method by regulating the concentration of aniline. Scanning electron microscopy images indicate that the diameter of prickly polyaniline nanorods (PPNRs) is about 80 nm and the size of prickly polyaniline microgranules (PPMGs) is about 400 nm. The as-prepared prickly polyaniline samples are subsequently explored as the Pt-free counter electrode materials for dye-sensitized solar cells (DSCs). Electrochemical impedance spectroscopy and cyclic voltammetry measurements demonstrate that PPNR electrode displays superior electrocatalytic activity for the I3 ? reduction reaction to PPMG electrode, which can be attributed to the unique prickly nanorod structure that provides abundant electrocatalytic active sites and the fast charge transport pathway simultaneously. As a consequence, the DSC fabricated with PPNR counter electrode achieves a high conversion efficiency of 6.86% under illumination of 100 mW cm?2, which is close to the efficiency of a Pt electrode-based device. This work presents a promising way to develop Pt-free and high-efficiency counter electrode in DSCs.  相似文献   

17.
详细讨论了染料敏化太阳电池(DSC)在稳态光照射或外加偏压下电荷的传输和转移过程,以及在调制光/电作用下电池的频率响应特点.通过电化学阻抗谱、光电化学阻抗谱、强度调制光电流谱和强度调制光电压谱等四种频谱光电测试手段,对DSC中TiO2薄膜电子传输和界面转移的相关时间常数进行测量.详细分析和比较了电荷的传输及转移过程对时间常数的影响.结果表明,在低光强或低偏压下电荷传输和转移过程对时间常数影响较小,但在高光强或高偏压下对电子寿命影响明显.  相似文献   

18.
Mechanisms controlling the efficiency of polymer solar cells   总被引:1,自引:0,他引:1  
To improve the efficiency of polymer solar cells, it is vital to understand which mechanisms control the current–voltage characteristics of a given device. Temperature and light intensity dependence of the main solar cell parameters are very informative for analyzing losses. We report on the current–voltage characteristics and the external photogeneration quantum yield of ITO/PEDOT:PSS/OC1C10-PPV:PCBM/Al as well as of ITO/PEDOT:PSS/P3HT:PCBM/Al devices investigated in the broad temperature range 120–325 K under variable illumination, between 0.02 and 100 mW/cm2. We discuss the recombination on traps and the low mobility of charge carriers caused by poor morphology of active layers as possible mechanisms limiting the efficiency of these devices. PACS 73.50.P; 73.61.P; 72.80.R  相似文献   

19.
Silicon dioxide (SiO2) is widely used to improve the surface passivation properties of silicon solar cells. To minimize solar cell potential-induced degradation when the PV module is installed outdoors, a silicon oxide film is widely used as an insulator. However, experiments have confirmed that solar cells with a silicon oxide (SiO2) film have a lower efficiency than solar cells without a silicon oxide (SiO2) film at low illumination (<0.4 sun). Actually, the efficiency in the low illumination condition affects the average power output per day because the PV module mostly operates when the solar irradiation dose is less than 1 sun. To maximize the performance of the PV module, the output at a low light intensity level should also be considered. Shunt resistance (Rshunt) is known to cause a decrease in solar cell efficiency under low illumination conditions. PC1D simulation was used to analyze parameters, such as the series resistance, parallel resistance, and surface recombination, that affect the characteristics of the solar cell at low light intensity. In this study, we confirmed how the SiO2 layer affected the low illumination properties of solar cells, even though these cells were more efficient at 1 sun. Silicon solar cells with a SiNx/SiO2 bilayer or a SiNx single film were fabricated, and their characteristics were evaluated. Passivation characteristics were measured using the quasi-steady-state photoconductance (QSSPC) technique to evaluate the minority carrier lifetime and the implied open-circuit voltage (VOC), and capacitance-voltage measurements were used to analyze the fixed charges. The values of the shunt resistance and series resistance in solar cells with different passivation layers were compared, and the cause of the decrease in the efficiency under low illumination was also analyzed via fill factor calculation.  相似文献   

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