Department of Materials and Engineering, Seoul National University , 1 Gwanak-ro, Gwanak-gu, Seoul 151-744, Korea.
Pohang Accelerator Laboratory , Pohang, Kyungbuk 790-784, Republic of Korea.
ACS Appl Mater Interfaces. 2016 May 4;8(17):10961-7. doi: 10.1021/acsami.5b12717. Epub 2016 Apr 25.
Ternary blends composed of two donor absorbers with complementary absorptions provide an opportunity to enhance the short-circuit current and thus the power conversion efficiency (PCE) of organic solar cells. In addition to complementary absorption of two donors, ternary blends may exhibit favorable morphology for high-performance solar cells when one chooses properly the donor pair. For this purpose, we develop a ternary blend with two donors (diketopyrrolopyrrole-based polymer (PTDPP2T) and small molecule ((TDPP)2Ph)) and one acceptor (PC71BM). The solar cell made of a ternary blend with 10 wt % (TDPP)2Ph exhibits higher PCE of 7.49% as compared with the solar cells with binary blends, PTDPP2T:PC71BM (6.58%) and (TDPP)2Ph:PC71BM (3.21%). The higher PCE of the ternary blend solar cell is attributed mainly to complementary absorption of two donors. However, a further increase in (TDPP)2Ph content in the ternary blend (>10 wt %) decreases the PCE. The ternary blend with 10 wt % (TDPP)2Ph exhibits well-developed morphology with narrow-sized fibrils while the blend with 15 wt % (TDPP)2Ph shows phase separation with large-sized domains, demonstrating that the phase morphology and compatibility of ternary blend are important factors to achieve a high-performance solar cell made of ternary blends.
由两种具有互补吸收的给体组成的三元共混物为提高短路电流,从而提高有机太阳能电池的能量转换效率(PCE)提供了机会。除了两种给体的互补吸收之外,当选择合适的给体对时,三元共混物可能会表现出有利于高性能太阳能电池的形态。为此,我们开发了一种由两种给体(二酮吡咯并吡咯聚合物(PTDPP2T)和小分子((TDPP)2Ph)和一种受体(PC71BM)组成的三元共混物。与二元共混物 PTDPP2T:PC71BM(6.58%)和(TDPP)2Ph:PC71BM(3.21%)相比,含有 10wt%(TDPP)2Ph 的三元共混物制成的太阳能电池具有更高的 PCE 为 7.49%。三元共混物太阳能电池的更高 PCE 主要归因于两种给体的互补吸收。然而,三元共混物中(TDPP)2Ph 含量的进一步增加(>10wt%)会降低 PCE。含有 10wt%(TDPP)2Ph 的三元共混物具有发达的形态,纤维尺寸较小,而含有 15wt%(TDPP)2Ph 的共混物则显示出具有较大尺寸的相分离,表明三元共混物的相形态和相容性是实现高性能三元共混物太阳能电池的重要因素。