Zhongxiao Shan, Li Xiao, Zhimin Zhang, Michail O. Danilov, Jianguo Tang* and Jiuxing Wang*,
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引用次数: 0
摘要
活性层的形貌控制对有机太阳能电池的性能起着至关重要的作用。本文研究了3种苯并[b]噻吩(BzT)系化合物,即BzT、5-溴苯并[b]噻吩(BzTB5)和5-氯苯并[b]噻吩(BzTC5),作为挥发性固体添加剂(VSAs)应用于OSCs中。理论计算表明,bzt系列vsa比噻吩[3,2-b]噻吩(TT)系列vsa具有更多的负静电势分布和更大的偶极矩,导致与Y6的相互作用更强。这些相互作用促进了分子有序堆积,较好地改善了pbdt - dbt与Y6的混相性,使表面更光滑,相分离更小,片层和π -π堆积更紧密,晶体相干长度值更大。这些特性促进了激子扩散、电荷分离、输运和收集,同时提高了填充系数和短路电流密度。结果,功率转换效率(PCE)显著提高了23.3%。此外,BzT将PM6: y6基OSCs的PCE从14.2%提高到16.1%,PM6: it - 4f基OSCs的PCE从11.9%提高到12.5%,PM6: pyt基OSCs的PCE从13.3%提高到14.4%,D18: y6基OSCs的PCE从15.4%提高到17.7%。经bzt处理的OSCs的长期储存稳定性也得到了提高。BzTB5和BzTC5也表现出约8%的有效PCE增强。这项工作证明了bzt系列在改善osc的形态和光伏性能方面具有作为通用vsa的潜力。
Benzo[b]thiophene-Series Solid Additives for Improving the Morphology and Photovoltaic Performance of Organic Solar Cells
Morphology control of the active layer plays a crucial role in affecting the performance of organic solar cells (OSCs). Herein, three benzo[b]thiophene (BzT)-series compounds, namely BzT, 5-bromobenzo[b]thiophene (BzTB5), and 5-chlorobenzo[b]thiophene (BzTC5), were developed as volatile solid additives (VSAs) in OSCs. Theoretical calculations revealed that BzT-series VSAs have more negative electrostatic potential distributions and larger dipole moments than do thiophene[3,2-b]thiophene (TT)-series VSAs, leading to stronger interactions with Y6. These interactions promoted ordered molecular stacking, better improved the miscibility between PBDT-DTBT and Y6, and induced smoother surface, smaller phase separation, tighter lamellar and π–π stacking, and large crystal coherence length values. These characteristics promoted the exciton diffusion, charge separation, transport, and collection, leading to simultaneously enhanced fill factor and short-circuit current density. As a result, the power conversion efficiency (PCE) significantly increased by 23.3%. In addition, BzT increased the PCE of PM6:Y6-based OSCs from 14.2% to 16.1%, PM6:IT-4F-based OSCs from 11.9% to 12.5%, PM6:PYTT-based OSCs from 13.3% to 14.4%, and D18:Y6-based OSCs from 15.4% to 17.7%. The long-term storage stability of BzT-treated OSCs was also improved. BzTB5 and BzTC5 also exhibited effective PCE enhancements of about 8%. This work demonstrated the potential of BzT-series as universal VSAs in improving the morphology and photovoltaic properties of OSCs.
期刊介绍:
ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers.
The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.