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1.
李国龙  李进 《物理学报》2012,61(20):435-440
基于共轭聚合物给体材料P3HT和富勒烯衍生物受体材料PCBM共混的体异质结结构的聚合物太阳能电池,因其空穴载流子迁移率低而限制了P3HT:PCBM功能层厚度,从而影响了器件对入射光的吸收.在聚合物功能层表面引入微纳光栅结构可以使器件内电场重新分布并改善器件的光吸收.本文基于时域有限差分方法仿真得到了光栅周期为1μm,占空比为0.5以及入射波长分别为500和700 nm时二维器件内光电场分布;并基于严格耦合波分析方法计算得到了不同光栅深度和光栅占空比的器件光吸收.理论分析表明:插入微纳光栅结构后,由于光栅衍射增强作用使器件内出现了光聚焦现象;当占空比为0.5时,光栅深度为10 nm的器件在入射波长为512 nm时,器件光学吸收增加了4.2%.基于聚二甲基硅氧烷的微压印技术,制备了微纳光栅结构聚合物太阳能,器件结构为ITO/PEDOT:PSS光栅层/P3HT:PCBM/LiF/Al.该器件与平板器件的性能对比实验证实,通过在PEDOT:PSS上引入微纳光栅结构,器件能量转化效率增加了31%.  相似文献   

2.
李国龙  李进  甄红宇 《物理学报》2012,61(20):428-434
基于共轭聚合物给体材料聚3-己基噻吩(P3HT)和富勒烯衍生物受体材料(6,6)-苯基-C61(PCBM)共混的体异质结结构的聚合物太阳能电池因其空穴载流子迁移率低而限制了P3HT:PCBM功能层厚度,从而影响了器件对入射光的吸收、在聚合物功能层和反射电极间插入TiO2光学间隔层可以使器件内电场重新分布并改善器件的光吸收.基于薄膜传递矩阵法计算了不同的P3HT:PCBM功能层厚度和TiO2插入层厚度的器件内光电场和光吸收.理论分析证明:器件结构为铟锡氧化物(ITO)(100 nm)/聚3,4-乙撑二氧噻吩/聚苯乙烯磺酸盐PEDOT:PSS(40 nm)/P3HT:PCBM/TiO2/LiF(1 nm)/Al(120 nm)时,插入10 nm厚的TiO2膜层可以使器件的聚合物功能层厚度在减薄25 nm的同时增加16.3%的光子吸收数,并且不明显降低功能层的激子分离概率,即功能层和TiO2光学间隔层厚度分别约为75和10 nm时的器件性能为宜,此结果通过器件性能实验得以证实.  相似文献   

3.
蒲年年  李海蓉  谢龙珍 《物理学报》2014,63(6):67201-067201
基于多层膜系模型的传输矩阵方法、麦克斯韦方程和光子吸收方程,研究了NiOx作为替代3,4-乙撑二氧噻吩:聚苯乙烯磺酸盐(PEDOT:PSS)的空穴传输材料对聚3-己噻吩(P3HT)和富勒烯衍生物([6,6]-phenyl-C61-butyric acid methyl ester,PC61BM)共混体异质结有机太阳能电池器件内部光电场分布和光吸收特性的影响.分别制备了以NiOx和PEDOT:PSS为空穴传输层,P3HT:PCBM为活性层的有机太阳能电池,并通过数值模拟的方法比较了NiOx和PEDOT:PSS两种空穴传输材料对器件光伏特性的影响.结果表明:10 nm的NiOx空穴传输层器件比40 nm的PEDOT:PSS器件获得了更大的短路电流和填充因子,并具有更高的能量转化效率.  相似文献   

4.
利用Ag2O/PEDOT:PSS(聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐)作为复合阳极缓冲层,制备了P3HT:PCBM(聚(3-已基噻吩):富勒烯衍生物)聚合物太阳能电池器件,并通过改变氧化银插入层的厚度来分析复合缓冲层对器件性能的影响.实验发现,具有阳极缓冲层修饰的器件在退火处理后,光伏性能得到了改善.相比于单一PEDOT:PSS缓冲层的器件,Ag2O/PEDOT:PSS复合缓冲层可以增大器件的短路电流密度和外量子效率,使器件效率得到提高.分析表明,退火处理可以有效改善活性层的薄膜形貌,增加光的吸收和激子的解离,而较薄氧化银的引入,可以有效降低阳极处空穴的输运势垒,提高器件空穴收集效率,并能充当化学间隔层,提高器件光伏性能和稳定性.  相似文献   

5.
郝志红  胡子阳  张建军  郝秋艳  赵颖 《物理学报》2011,60(11):117106-117106
研究了掺杂后poly(3,4-ethylene dioxythiophene):poly(styrenesulphonic acid)(PEDOT ∶PSS)电导率的变化以及掺杂PEDOT ∶PSS薄膜对聚合物太阳能电池器件性能的影响. 实验发现,向PEDOT ∶PSS中掺入极性溶剂二甲基亚砜(DMSO)明显提高了薄膜的电导率,掺杂后的电导率最大值达到1.25 S/cm,比未掺杂时提高了3个数量级. 将掺杂的PEDOT ∶PSS薄膜作为缓冲层应用于聚合物电池 (ITO/PEDOT ∶PSS/P3HT ∶PCBM/LiF/Al) 中,发现高电导率的PEDOT ∶PSS降低了器件的串联电阻,增加了器件的短路电流,从而提高了器件的性能. 最好的聚合物太阳能电池在100 mW/cm2的光照下,开路电压(Voc)为0.63 V,短路电流密度(Jsc)为11.09 mA·cm-2,填充因子(FF)为63.7%,能量转换效率(η)达到4.45%. 关键词: PEDOT ∶PSS 电导率 聚合物太阳能电池 能量转换效率  相似文献   

6.
李畅  章婷  薛唯 《发光学报》2014,35(2):202-206
活性层的微观形貌在很大程度上决定了聚合物光伏器件的性能表现并依赖于制备工艺条件。为了改善薄膜内部分子排布结构并追求较高的器件光电转化效率,采用溶液法制备了基于P3HT:PCBM的聚合物太阳能电池(器件结构:ITO/PEDOT:PSS/P3HT:PCBM/Al),通过改变器件制备流程中活性层退火处理工艺,研究了热退火、溶剂退火以及溶剂预处理结合热处理的双重退火对聚合物太阳电池性能的影响。研究发现:双重退火的光伏器件的各项性能参数均优于单一退火处理器件,获得了3.25%的光电转化效率。原子力显微镜及X射线衍射仪的表征结果进一步证明:双重退火处理能够在促进聚合物给体良好有序结晶的同时保证共混组分适度地相分离,从而有利于光生激子的解离以及载流子的传输。  相似文献   

7.
以PEDOT∶PSS作为空穴注入层,聚合物PVK作为空穴传输层,制备了结构为ITO/PEDOT∶PSS/PVK/8-羟基喹啉钕(Ndq3)/Al的近红外OLED,研究了PVK与PEDOT∶PSS功能层对器件I-V特性和EL光谱的影响。结果显示,在EL光谱中的905,1 064,1 340 nm处均观察到了荧光发射,分别对应于Nd3+的4F3/2→4I9/2、4F3/2→4I11/2和4F3/2→4I13/2能级跃迁。与参考器件对比分析认为,PEDOT∶PSS高的导电性降低了器件的串联电阻,增大了器件的工作电流;PVK与PEDOT∶PSS共同降低了空穴的注入势垒,实现了Ndq3发光层区域的载流子的注入平衡并改善了器件的发射强度。此外,PVK有效降低了ITO电极表面粗糙度,也是器件性能提高的原因之一。  相似文献   

8.
溶剂预处理结合热退火提升聚噻吩结晶度及其光伏性能   总被引:1,自引:1,他引:0  
李畅  章婷  薛唯 《发光学报》2014,35(2):202
活性层的微观形貌在很大程度上决定了聚合物光伏器件的性能表现并依赖于制备工艺条件。为了改善薄膜内部分子排布结构并追求较高的器件光电转化效率,采用溶液法制备了基于P3HT∶PCBM的聚合物太阳能电池(器件结构:ITO/PEDOT∶PSS/P3HT∶PCBM/Al),通过改变器件制备流程中活性层退火处理工艺,研究了热退火、溶剂退火以及溶剂预处理结合热处理的双重退火对聚合物太阳电池性能的影响。研究发现:双重退火的光伏器件的各项性能参数均优于单一退火处理器件,获得了3.25%的光电转化效率。原子力显微镜及X射线衍射仪的表征结果进一步证明:双重退火处理能够在促进聚合物给体良好有序结晶的同时保证共混组分适度地相分离,从而有利于光生激子的解离以及载流子的传输。  相似文献   

9.
为提高聚合物太阳能电池的能量转换效率,将聚乙二醇(PEG)掺入PEDOT∶PSS阳极缓冲层,研究了阳极缓冲层修饰对聚合物太阳能电池性能的影响。首先研究了聚乙二醇对PEDOT∶PSS薄膜电导率的影响,发现PEG会与PEDOT和PSS相互作用,使得PEDOT链重新排布,有利于电荷载流子的传输,从而显著改善了PEDOT∶PSS薄膜的电导率,当PEDOT∶PSS中掺入体积分数为2%~4%的PEG时,可得到较大的电导率。然后,以PEG修饰的PEDOT∶PSS薄膜作为阳极缓冲层制备了聚合物太阳能电池,研究了PEG的掺入对聚合物太阳能电池性能的影响。实验发现,PEG改善的PEDOT∶PSS电导率有利于提高电池的短路电流密度和填充因子,从而改善了器件光伏性能。当PEDOT∶PSS中掺入体积分数为2%的PEG时,聚合物太阳能电池的能量转换效率最高,比未掺杂的器件提高了24.4%。  相似文献   

10.
将银纳米片引入有机太阳能电池,增强了器件的光吸收及光电转换效率。制备得到了具有不同等离子共振吸收特性的银纳米片。当银纳米片的等离子共振吸收与活性层的吸收相匹配时,器件的光电流显著增强。通过改变银纳米片与活性层之间的距离,研究了等离子体共振增强电磁场的传递特性。两者的距离越近则耦合入活性层的电磁场越强,器件的光电流越高。经优化后,以P3HT∶PCBM为活性层的有机太阳能电池的光电转换效率由3.04%增长到3.82%,提高了26%。  相似文献   

11.
Because of the restriction of low energy difference between the highest occupied molecular orbital of P3HT and the lowest unoccupied molecular orbital of PCBM, the obtained power conversion efficiency of P3HT:PCBM solar cells is merely half the ideal value. In this paper, we have fabricated bulk heterojunction solar cells based on PCDTBT and PC71BM (structure: ITO/PEDOT:PSS/PCDTBT:PC71BM/LiF (0.8 nm)/Al (80 nm)). In order to optimize the performance of the cells, the weight ratio of PCDTBT to PC71BM, the thickness of the active layer and thermal annealing are investigated. When the weight ratio of PCDTBT to PC71BM is 1:2 and the thickness of the active layer is 73 nm, a short circuit current density of 10.36 mA/cm2, an open-circuit voltage of 0.91 V, a fill factor of 55.06 % and a power conversion efficiency of 5.19 % can be achieved. Moreover, we probe the influence of annealing temperature on the performance of organic solar cells, and find that the thermal treatment methodology (apart from the removal of trapped casting solvent) is of limited benefit.  相似文献   

12.
In this research, we report a bulk heterojunction(BHJ) solar cell consisting of a ternary blend system. Poly(3-hexylthiophene) P3 HT is used as a donor and [6,6]-phenyl C61-butyric acid methylester(PCBM) plays the role of acceptor whereas vanadyl 2,9,16,23-tetraphenoxy-29 H, 31H-phthalocyanine(VOPc Ph O) is selected as an ambipolar transport material. The materials are selected and assembled in such a fashion that the generated charge carriers could efficiently be transported rightwards within the blend. The organic BHJ solar cells consist of ITO/PEDOT:PSS/ternary BHJ blend/Al structure. The power conversion efficiencies of the ITO/ PEDOT:PSS/P3HT:PCBM/Al and ITO/PEDOT:PSS/P3HT:PCBM:VOPcPhO/Al solar cells are found to be 2.3% and 3.4%, respectively.  相似文献   

13.
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   

14.
通过精确设定不同的退火环境气压,实现对P3HT(Poly(3-hexylthiophene -2,5-diyl)与PCBM([6,6]-Phenyl C61 butyric acid methyl ester)体系中聚噻吩结晶度以及共混相分离程度的控制,并在此基础上制备了结构为ITO/PEDOT∶PSS/P3HT∶PCBM/Al的正型光伏器件。在允许的压强设定范围内,器件各项性能参数均随退火环境压强的增大表现出先升高后下降的变化规律,并统一于气压设定为1 500 mTorr时获得最大值。从活性层的紫外-可见(UV-Vis)吸收光谱中发现P3HT在510 nm吸收峰以及550和600 nm肩峰附近的吸收强度随退火气压升高而增大,在气压为1 500 mTorr时达到最高,吸收强度的提升源于聚合物分子π—π堆叠的增加。原子力显微镜(AFM)进一步分析结果表明,高气压环境(>1 000 mTorr)能够促进P3HT∶PCBM共混组分在退火过程中形成较大程度的相分离,而当环境压强合适时(1 500 mTorr)适度的相分离利于聚合物形成良好有序结晶,从而能够提升活性层内部载流子传输能力,保证较高的短路电流与填充因子,制备的器件也因此表现出良好的光伏性能,光电转化效率达到3.56%。  相似文献   

15.
Silver nanospheres (Ag NSs) buffer layers were introduced via a solution casting process to enhance the light absorption in poly (3‐hexylthiophene) (P3HT) and [6,6]‐phenyl‐C61 butyric acid methyl ester (PCBM) bulk heterojunction organic solar cells. These Ag NSs, as surface plasmons, could increase the optical electric field in the photoactive layer whilst simultaneously improving the light scattering. As a result, this buffer layer improves the light absorption of P3HT:PCBM blend and consequently improves the external quantum efficiency (EQE) of organic solar cells. In this work, different sizes of Ag NSs plasmon‐enhanced layer were investigated, with the aim of optimizing the performance of devices. UV‐vis spectrometer measurement demonstrates that the total optical absorption of P3HT:PCBM blend films in the spectral range of 350–650 nm is increased by ~4 and 6% with incorporation of the 20 and 40 nm Ag NSs, respectively. The Jsc was shown to increase by ~21 and 24% for 20 and 40 nm Ag NSs, respectively. This is due to the extra photogenerated excitons by the plasmonic resonance of Ag NSs. (© 2012 WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim)  相似文献   

16.
《Current Applied Physics》2020,20(2):277-281
Poly(3,4-ethylenedioxythiophene)-poly(styrene sulfonate) (PEDOT:PSS) films were fabricated using an electrospray deposition (ESD) method. The ESD PEDOT:PSS films exhibited higher PSS content on the surface than spin-coated PEDOT:PSS films, which results in a higher work function. Based on this result, metal-electrode-free inverted organic photovoltaics (OPVs) were fabricated. The ESD PEDOT:PSS was used as the top electrode on the poly(3-hexythiophene-2,5-diyl) (P3HT):[6,6]-phenyl C61 butyric acid methyl ester (PCBM) light-absorbing layer. The power conversion efficiency (PCE) of OPVs was significantly increased with the 1,4,5,8,9,11-hexaazatriphenylene hexacarbonitrile layer. The improved PCE would be attributed to the suppression of exciton quenching at the P3HT:PCBM and PEDOT:PSS interface.  相似文献   

17.
Nanosilver island thin films with different thickness were synthesized by vacuum vapor deposition between ITO and PEDOT:PSS for organic solar cells, forming the structure of ITO/AgNPs layer/PEDOT:PSS/P3HT:PCBM/LiF/Al. Surface morphology and UV–vis absorption spectrum were investigated by AFM and UV–vis scanning spectrophotometer. It was found that after adding the nanosilver film, the optical properties of the device were enhanced with increasing the thickness of nanosilver island films. When the thickness of nanosilver thin films is 3.0 nm, the most significant surface plasmon response and red-shift of the resonance absorption peak appeared. Meanwhile, short circuit current density of the device increased from 9.93 mA/cm2 to 12.98 mA/cm2, the fill factor increased from 49.35% to 52.79% and the power conversion efficiency increased from 3.05% to 4.01%. These results provided a theoretical guidance to optimize the design and increase the performance of solar cells.  相似文献   

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