首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 125 毫秒
1.
为了探究PVK对倒置平面异质结钙钛矿太阳能电池电子传输层的影响,向电子传输层PCBM中添加了一种富电子的聚乙烯基咔唑(PVK)。采用原子力显微镜、PL光谱对薄膜进行了表征。实验结果表明:少量PVK的添加提高了覆盖在钙钛矿薄膜上PCBM层的平整度。当PVK的添加质量分数为4%时得到最佳器件效率,相比于纯PCBM作为电子传输层的器件,器件效率由(5.11±0.14)%提升到(9.08±0.46)%。当PVK的添加质量分数大于4%时,粗糙度又趋于变大。PL光谱显示,少量PVK的加入使钙钛矿/电子传输层薄膜的PL强度降低,并使PL峰蓝移。研究表明:向PCBM中掺杂适量PVK能够改善钙钛矿/电子传输层/Al的界面接触,减少漏电流,并能够减少钙钛矿表面陷阱和晶界缺陷,减少电荷复合,从而提高了器件性能。  相似文献   

2.
为了钝化钙钛矿表面的缺陷、改善PCBM溶液的粘度和成膜性以达到优化器件性能的目的,通过引入非富勒烯小分子(ITIC)和富电子聚合物(PVK)共掺杂修饰PCBM薄膜。结果表明:通过调节ITIC的含量可以优化界面形貌,提高器件的性能。当ITIC的质量分数为6%时,获得了最优的器件性能。相比于纯PCBM的器件效率由5.26%提高到9.93%,器件没有回滞现象。ITIC和PVK的引入提高了PCBM的成膜性能。此外,还可以钝化钙钛矿表面的缺陷。这种协同作用有利于电荷传输和分离。综上所述,PVK和ITIC的加入抑制了大气中的水分和氧气,提高了器件的稳定性。  相似文献   

3.
采用N,N'-二正辛烷基-3,4,9,10-苝四甲酰二亚胺(PTCDI-C8)对钙钛矿电池电子传输层(PCBM)进行界面修饰以减少PCBM与Al电极之间的漏电流,提高阴极的电子收集效率。通过调节PTCDI-C8薄膜的厚度优化界面接触和电子传输性能。实验结果表明:当PTCDI-C8薄膜的厚度为20 nm时得到的器件性能最优。光电转换效率(PCE)由5.26%提高到了8.65%,开路电压(Voc)为0.92 V,短路电流(Jsc)为15.68 mA/cm2,填充因子(FF)为60%。PTCDI-C8能够有效阻挡空穴向阴极传输,同时PTCDI-C8具有较高的电子迁移率以及较高的稳定性,在增加电子传输的同时,可减少环境对PCBM的侵蚀,提高了器件的稳定性。  相似文献   

4.
采用N,N'-二正辛烷基-3,4,9,10-苝四甲酰二亚胺(PTCDI-C8)对钙钛矿电池电子传输层(PCBM)进行界面修饰以减少PCBM与Al电极之间的漏电流,提高阴极的电子收集效率。通过调节PTCDI-C8薄膜的厚度优化界面接触和电子传输性能。实验结果表明:当PTCDI-C8薄膜的厚度为20 nm时得到的器件性能最优。光电转换效率(PCE)由5.26%提高到了8.65%,开路电压(Voc)为0.92 V,短路电流(Jsc)为15.68 m A/cm2,填充因子(FF)为60%。PTCDI-C8能够有效阻挡空穴向阴极传输,同时PTCDI-C8具有较高的电子迁移率以及较高的稳定性,在增加电子传输的同时,可减少环境对PCBM的侵蚀,提高了器件的稳定性。  相似文献   

5.
有机无机复合钙钛矿材料被证明是非常出色的光伏材料,目前主要通过优化钙钛矿材料的结晶和形貌来提高钙钛矿太阳能电池的效率.而对于电荷传输层,特别是p-i-n结构中电子传输层的研究相对较少.因此,本文制备了结构为ITO/PEDOT:PSS/CH3NH3Pb I3/PCBM/Al的钙钛矿太阳能电池通过在电子传输层富勒烯衍生物[6,6]-苯基-C61丁酸甲酯(PCBM)中添加聚苯乙烯(PS)和1,8-二碘辛烷(DIO)使得钙钛矿太阳能电池的光电转换效率从10.8%提升到了12.5%.分析了性能提高的原因主要是:1)添加剂PS的加入提升了PCBM的黏度,从而形成了质量更高、更平滑的膜层,这有利于抑制电子和空穴在钙钛矿层和电子传输层之间的复合;2)添加剂DIO的加入改善了电子传输层的形貌,有利于电荷的分离、传输和收集.研究结果表明用成本较低的添加剂处理可以改善电子传输层的形貌和膜层的质量达到了改善电荷传输特性的效果提升了钙钛矿太阳能电池的效率为提升钙钛矿太阳能电池性能提供了一条可行的路径.  相似文献   

6.
研究了吡啶作为添加剂对一步法制备甲胺铅碘钙钛矿太阳能电池光电性能的影响.利用SEM、AFM、XRD、UV-Vis、PL等手段研究了不同吡啶掺杂浓度对制备的CH3 NH3 PbI3薄膜的表面形貌、结晶度和光学性能的影响.研究结果表明:少量的吡啶掺杂可以提高钙钛矿薄膜的覆盖率及降低薄膜的表面粗糙度.当在CH3 NH3 PbI3前驱体溶液中添加体积分数为1%的吡啶时,制备的钙钛矿太阳能电池的能量转换效率达到7.33%,而未加吡啶的对比器件效率仅为1.01%.进一步添加吡啶会导致钙钛矿材料的降解.  相似文献   

7.
研究了吡啶作为添加剂对一步法制备甲胺铅碘钙钛矿太阳能电池光电性能的影响。利用SEM、AFM、XRD、UV-Vis、PL等手段研究了不同吡啶掺杂浓度对制备的CH_3NH_3Pb I_3薄膜的表面形貌、结晶度和光学性能的影响。研究结果表明:少量的吡啶掺杂可以提高钙钛矿薄膜的覆盖率及降低薄膜的表面粗糙度。当在CH_3NH_3Pb I_3前驱体溶液中添加体积分数为1%的吡啶时,制备的钙钛矿太阳能电池的能量转换效率达到7.33%,而未加吡啶的对比器件效率仅为1.01%。进一步添加吡啶会导致钙钛矿材料的降解。  相似文献   

8.
锡铅钙钛矿太阳电池已被证明可以用于全钙钛矿叠层太阳电池中,作为窄带隙底电池进一步提高器件光电转换效率.目前, P-I-N型锡铅钙钛矿太阳电池的最高效率为21.7%,明显低于铅基钙钛矿太阳电池.本文分析了限制其性能提高的主要因素,并针对性地总结了近几年研究工作者们提出的有效解决策略,主要包括:1)通过添加富锡化合物、强还原剂或含大的有机阳离子的化合物以抑制Sn~(2+)氧化,减少锡铅钙钛矿材料p型掺杂程度,降低电池开路电压损耗; 2)通过调控组分、改变钙钛矿薄膜制备方法、溶剂工程或添加含功能性基团的化合物以延缓锡铅钙钛矿薄膜结晶生长速率,提高薄膜质量; 3)通过选用合适的电子传输层或空穴传输层,减少能级失配对载流子传输的影响或避免载流子传输层的本身不稳定性对器件的影响.最后,本文展望了锡铅钙钛矿太阳电池的未来发展,认为其不仅有望实现高效稳定的单结太阳电池,而且还可以应用于高效全钙钛矿叠层太阳电池.  相似文献   

9.
对蓝色磷光材料Ir(Fppy)3不同浓度掺杂PVK薄膜的光致发光(PL)和电致发光(EL)特性进行了研究。并制备了结构为ITO/PEDOT:PSS/PVK:Ir(Fppy)3/BCP/Alq3/LiF/Al的蓝色磷光有机电致发光器件。实验结果发现,磷光材料掺杂浓度不同,器件发光特性不同。当Ir(Fppy)3掺杂浓度比较低时,EL光谱中可以观察到PVK较弱的发光;当Ir(Fppy)3掺杂浓度较高时,会发生浓度猝灭;当Ir(Fppy)3掺杂浓度比较适中时,EL光谱中观察不到PVK的发光,只有Ir(Fppy)3的发光。通过I-V-L特性的比较,当掺杂浓度为4%时,器件的光电特性最好。  相似文献   

10.
张鹏  周印华  刘秀芬  田文晶  李敏  张国 《物理学报》2006,55(10):5494-5498
研究了不同比例的PVK与齐聚PPV衍生物DBVP掺杂体系的能量转移和发光特性.通过对PVK,DBVP及PVK:DBVP掺杂体系的UV-vis,PL和PLE光谱的研究,分析了PVK与DBVP之间的能量转移过程.利用PVK在体系中类似于溶剂的分散作用,制备了结构为ITO/PEDOT/PVK:DBVP/LiF/Al的电致发光器件,研究了掺杂体系的电致发光性能.结果表明,在掺杂体系的光致发光和电致发光中,PVK的发射被有效地抑制,PVK与DBVP之间发生了非常有效的能量转移,通过调节PVK与DBVP的比例,可以获得蓝色和绿色发光,同时可以改善器件的发光性能,当PVK与DBVP的重量比为1∶2时,器件的绿色发光效率达到1·06cd/A,此时发光亮度为52cd/m2.  相似文献   

11.
钙钛矿薄膜形貌的控制是一个提高太阳能电池能量转换效率的关键问题,而引入添加剂是解决这一问题的一种有效而简便的方法。利用聚丙烯腈(PNA)作为CH3NH3PbI3前驱体溶液溶剂添加剂,通过其浓度可以调控钙钛矿薄膜结晶和表面的覆盖率。本文通过SEM、XRD以及UV-Vis研究了PNA掺杂CH3NH3PbI3钙钛矿薄膜后的表面形貌、结晶度和光学性能的变化。结果表明,通过添加少量的PNA可以优化钙钛矿薄膜的性能,其强烈影响薄膜的结晶过程,有助于形成均匀连续的薄膜,减少针孔,从而增强了钙钛矿层的覆盖率和光吸收。当PNA 的含量为1%(质量分数)时,钙钛矿太阳能电池的各项性能最佳,能量转换效率达到了8.38%。与未加PNA 的电池效率(1.31%) 相比,提高了540%。这些结果表明,PNA可以有效调控钙钛矿薄膜的晶体生长和薄膜形貌,在钙钛矿太阳能电池的大规模生产过程中是一种可以改善钙钛矿薄膜质量的有效添加剂。  相似文献   

12.
Andrianov  A. V.  Aleshin  A. N.  Matyushkin  L. B. 《JETP Letters》2019,109(1):28-32
JETP Letters - Films of CH3NH3PbI3 organometallic perovskite, which is currently considered as a promising basic material for new-generation solar cells, as well as films containing CsPbI3...  相似文献   

13.
Optics and Spectroscopy - The influence of nanostructured titania surface on the photoluminescence of organometallic perovskite CH3NH3PbI3 films is studied. It is found that the CH3NH3PbI3...  相似文献   

14.
为研究掺杂石墨烯量子点(GQDs)对聚合物电池的影响,采用溶剂热法制备了GQDs,掺杂到聚3-己基噻吩和富勒烯衍生物(P3HT∶PCBM)中作光敏层制备了聚合物太阳能电池。掺杂不同浓度的GQDs后,聚合物电池的开路电压和填充因子都比未掺杂器件高。GQDs掺杂质量分数为0.15%时,形成的掺杂薄膜平整、均匀,填充因子提高了17.42%。GQDs经还原后,随还原时间的延长,填充因子FF增大。到45 min时,电池的FF基本稳定,从31.57%提高至40.80%,提高了29.24%。退火后,获得了最佳的掺杂GQDs的聚合物太阳能电池,开路电压Voc为0.54 V,填充因子FF为55.56%,光电转换效率为0.75%。  相似文献   

15.
In this paper, we investigate the effects of glycerol doping on transmittance, conductivity and surface morphology of poly(3,4-ethylene dioxythiophene):poly(styrene sulfonate))(PEDOT:PSS) and its influence on the performance of perovskite solar cells.. The conductivity of PEDOT:PSS is improved obviously by doping glycerol. The maximum of the conductivity is 0.89 S/cm when the doping concentration reaches 6 wt%, which increases about 127 times compared with undoped. The perovskite solar cells are fabricated with a configuration of indium tin oxide(ITO)/PEDOT:PSS/CH_3NH_3PbI_3/PC_(61)BM/Al, where PEDOT:PSS and PC_(61)BM are used as hole and electron transport layers, respectively. The results show an improvement of hole charge transport as well as an increase of short-circuit current density and a reduction of series resistance, owing to the higher conductivity of the doped PEDOT:PSS. Consequently, it improves the whole performance of perovskite solar cell. The power conversion efficiency(PCE) of the device is improved from 8.57% to 11.03% under AM 1.5 G(100 mW/cm~2 illumination) after the buffer layer has been modified.  相似文献   

16.
杜会静  王韦超  朱键卓 《中国物理 B》2016,25(10):108802-108802
The lead-free perovskite solar cells(PSCs) have drawn a great deal of research interest due to the Pb toxicity of the lead halide perovskite.CH_3NH_3SnI_3 is a viable alternative to CH_3NH_3PbX_3,because it has a narrower band gap of 1.3 eV and a wider visible absorption spectrum than the lead halide perovskite.The progress of fabricating tin iodide PSCs with good stability has stimulated the studies of these CH_3NH_3SnI_3 based cells greatly.In the paper,we study the influences of various parameters on the solar cell performance through theoretical analysis and device simulation.It is found in the simulation that the solar cell performance can be improved to some extent by adjusting the doping concentration of the perovskite absorption layer and the electron affinity of the buffer and HTM,while the reduction of the defect density of the perovskite absorption layer significantly improves the cell performance.By further optimizing the parameters of the doping concentration(1.3 × 10~(16) cm~3) and the defect density(1 × 10~(15) cm~3) of perovskite absorption layer,and the electron affinity of buffer(4.0 eV) and HTM(2.6 eV),we finally obtain some encouraging results of the J_(sc) of 31.59 mA/cm~2,V_(oc) of 0.92 V,FF of 79.99%,and PCE of 23.36%.The results show that the lead-free CH_3NH_3SnI_3 PSC is a potential environmentally friendly solar cell with high efficiency.Improving the Sn~(2+) stability and reducing the defect density of CH_3NH_3SnI_3 are key issues for the future research,which can be solved by improving the fabrication and encapsulation process of the cell.  相似文献   

17.
Morphology and surface property of ZnO thin films as electron transporting layer in perovskite solar cells are crucial for obtaining high-efficient and stable perovskite solar cells. In this work, two different preparation methods of ZnO thin films were carried out and the photovoltaic performances of the subsequent perovskite solar cells were investigated. ZnO thin film prepared by sol–gel method was homogenous but provided high series resistance in solar cells, leading to low short circuit current density. Lower series resistance of solar cell was obtained from homogeneous ZnO thin film from spin-coating of colloidal ZnO nanoparticles (synthesized by hydrolysis–condensation) in a mixture of 1-butanol, chloroform and methanol. The perovskite solar cells using this film achieved the highest power conversion efficiency (PCE) of 4.79% when poly(3-hexylthiophene) was used as a hole transporting layer. In addition, the stability of perovskite solar cells was also examined by measuring the photovoltaic characteristic for six consecutive weeks with the interval of 2 weeks. It was found that using double layers of the sol–gel ZnO and ZnO nanoparticles provided better stability with no degradation of PCE in 10 weeks. Therefore, this work provides a simple method for preparing homogeneous ZnO thin films in order to achieve stable perovskite solar cells, also for controlling their surface properties which help better understand the characteristics of perovskite solar cells.  相似文献   

18.
钙钛矿层的品质极大影响钙钛矿太阳能电池性能. 然而,在溶液法生成多晶钙钛矿膜过程中会不可避免地形成缺陷和陷阱位. 通过在钙钛矿层中嵌入添加物改善钙钛矿晶化,用于减少和钝化缺陷是非常重要的. 本文合成一种环境友好的二维纳米材料质子化石墨相氮化碳(p-g-C3N4),并掺杂于碳基钙太阳能电池的钙钛矿层中. 实验证明,在钙钛矿前驱体溶液中添加p-g-C3N4不仅能调解碘铅甲胺(MAPbI3)结晶的成核和生长速率,获得大晶粒尺寸的平滑表面,还能减少钙钛矿层的本征缺陷. 质子化过程在氮化碳表面引入活性基团-NH2/-NH3,它们和钙钛矿晶体表面N-H键发生强化学作用,有效地钝化电子陷阱,提高钙钛矿结晶质量. 结果表明,与不掺杂的对照电池(效率为4.48%)和掺杂石墨相氮化碳(g-C3N4)电池(效率为5.93%)相比,掺杂质子化石墨相氮化碳(p-g-C3N4)的电池获得了6.61%的较高效率. 本工作展示了一种通过掺杂改性添加物改善钙钛矿膜的简单方法,为碳基钙钛矿太阳能电池的低成本制备提供了建议.  相似文献   

19.
Inverted organic solar cells are fabricated using low-temperature-annealed ZnO film as an electron transport layer. Uniform ZnO films were prepared by spin coating a diethylzinc (DEZ) precursor solution in air, followed by annealing at 100 °C. Organic solar cells prepared on these ZnO films with a 1:1 P3HT:PCBM blend as the active layer show a high power conversion efficiency of 4.03 %, which is more than 10 % higher than the PCE of solar cells comprising ZnO prepared via a high-temperature sol–gel route.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号