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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Synergy of a titanium chelate electron collection layer and a vertical phase separated photoactive layer for efficient inverted polymer solar cells
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Synergy of a titanium chelate electron collection layer and a vertical phase separated photoactive layer for efficient inverted polymer solar cells

机译:用于高效倒聚合物太阳能电池的钛螯合电子收集层的协同作用和垂直相分离的光活性层

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摘要

Both interfacial and photoactive layers play crucial roles in efficient polymer solar cells (PSCs). Herein, inverted PSCs with a power conversion efficiency (PCE) of 10.23% are achieved via the conjunct effect of a titanium(iv) oxide bis(2,4-pentanedionate) (TOPD) electron collection layer and a perpendicular phase separated PBDB-T:ITIC-M photoactive layer. Careful studies on the energy level and optical and morphological properties of TOPD elucidate its outstanding electron-collecting and hole-blocking function besides its highly transparent properties. Atomic force microscopy (AFM), water contact angle (WCA) measurements and time-of-flight secondary-ion mass spectroscopy (TOF-SIMS) jointly verify the vertical phase separated PBDB-T:ITIC-M photoactive layer and further present the concentration distribution of the donor and acceptor in the blend film, which ensures effective exciton dissociation and simultaneously offers independent pathways for charge transportation. The combination of their virtues facilitates the high enhancement of open circuit voltage (V-OC) up to 0.21 V besides the increased short circuit density (J(SC)) of 1.9 mA cm(-2), leading to an encouraging PCE enhancement from 4.59% to 10.23% exceeding the traditional BHJ-PSCs with a PCE of 9.08%. Therefore, we may conclude that TOPD is a suitable electron collection layer to synergize with the vertical composition profile of photoactive blends for high performance i-PSCs.
机译:两个界面和光活性层都在高效的聚合物太阳能电池(PSC)中起重要作用。这里,通过钛(IV)氧化物双(2,4-戊烷)(2,4-戊烷)(TOPD)电子收集层和垂直相分离的PBDB-T的倒置的PSC,通过电力转换效率(PCE)为10.23%的PSC。和垂直相分离的PBDB-T :ITIC-M光活性层。除了高度透明的性能之外,仔细研究TOPD的能量水平和光学和光学和形态特性阐明其出色的电子收集和空穴阻挡功能。原子力显微镜(AFM),水接触角(WCA)测量和飞行时间二次离子质谱(TOF-SIMS)联合验证垂直相分离的PBDB-T:ITIC-M光活性层,进一步存在浓度在共混膜中的供体和受体的分布,确保有效的激子解离并同时提供了独立的电荷运输途径。它们的优点的组合促进了开路电压(V-OC)的高度增强,其除了增加的短路密度(J(SC))为1.9 mA cm(-2)的增加,导致令人鼓舞的PCE增强4.59%至10.23%超过传统的BHJ-PSC,PCE为9.08%。因此,我们可以得出结论,顶部是合适的电子收集层,以便与高性能I-PSC的光活性混合物的垂直组合物谱进行协同。

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    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

    Quiad I Azam Univ Dept Math Islamabad 45320 Pakistan;

    King Abdulaziz Univ NAAM Res Grp Fac Sci Jeddah 21589 Saudi Arabia;

    North China Elect Power Univ State Key Lab Alternate Elect Power Syst Renewabl Beijing 102206 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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