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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Synthesis and applications of main-chain Ru(II) metallo-polymers containing bis-terpyridyl ligands with various benzodiazole cores for solar cells
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Synthesis and applications of main-chain Ru(II) metallo-polymers containing bis-terpyridyl ligands with various benzodiazole cores for solar cells

机译:含双苯并吡啶配体并带有各种苯并二唑核的太阳能电池主链Ru(II)金属聚合物的合成与应用

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摘要

A series of it-conjugated bis-terpyridyl ligands (M1-M3) bearing various benzodiazole cores and their corresponding main-chain Ru(II) metallo-polymers were designed and synthesized. The formation of metallo-polymers were confirmed by NMR, relative viscosity, and UV-visible titration measurements. The effects of electron donor and acceptor interactions on their thermal, optical, electrochemical, and photovoltaic properties were investigated. Due to the strong intramolecular charge transfer (ICT) interaction and metal to ligand charge transfer (MLCT) in Ru(II)-containing polymers, the absorption spectra covered a broad range of 260-750 nm with the optical band gaps of 1.77-1.63 eV. In addition, due to the broad sensitization areas of the metallo-polymers, their bulk heterojunction (BHJ) solar cell devices containing [6,6]-phenyl-C_(61)-butyric acid methyl ester (PCBM) as an electron acceptor exhibited a high short-circuit current (J_(sc)). An optimum PVC device based on the blended polymer PI : PCBM = 1 : 1 (w/w) achieved the maximum power conversion efficiency (PCE) value up to 0.45%, with V_(oc) = 0.61 V, J_(sc) = 2.18 mA cm~(-2), and FF= 34.1% (under AM 1.5 G 100 mW cm~(-2)), which demonstrated a novel family of conjugated polyelectrolytes with the highest PCE value comparable with BHJ solar cells fabricated from ionic polythiophene and C_(60).
机译:设计并合成了一系列带有各种苯并二唑核及其相应主链Ru(II)金属聚合物的共轭双-叔吡啶基配体(M1-M3)。通过NMR,相对粘度和UV-可见滴定测量法证实了金属聚合物的形成。研究了电子给体和受体相互作用对其热,光学,电化学和光伏性质的影响。由于含Ru(II)的聚合物具有强大的分子内电荷转移(ICT)相互作用和金属至配体电荷转移(MLCT),吸收光谱覆盖了260-750 nm的宽范围,光学带隙为1.77-1.63 eV。另外,由于金属聚合物的敏化区域宽,因此它们的包含[6,6]-苯基-C_(61)-丁酸甲酯(PCBM)作为电子受体的本体异质结(BHJ)太阳能电池器件表现出了优势。高短路电流(J_(sc))。基于共混聚合物PI:PCBM = 1:1(w / w)的最佳PVC设备实现了高达0.45%的最大功率转换效率(PCE)值,其中V_(oc)= 0.61 V,J_(sc)= 2.18 mA cm〜(-2),且FF = 34.1%(在AM 1.5 G 100 mW cm〜(-2)下),证明了一种新型的共轭聚电解质家族,其PCE值最高,可与由离子水制备的BHJ太阳能电池媲美聚噻吩和C_(60)。

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