首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Probing the pi-stacking induced molecular aggregation in pi-conjugated polymers, oligomers, and their blends of p-phenylenevinylenes
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Probing the pi-stacking induced molecular aggregation in pi-conjugated polymers, oligomers, and their blends of p-phenylenevinylenes

机译:探索π共轭聚合物,低聚物及其对苯撑亚乙烯基的共混物中π堆积引起的分子聚集

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摘要

The role of pi-stack induced molecular aggregation on solution and solid-state luminescent properties was investigated for the tricyclodecane substituted bulky (p-phenylenevinylene)s (BTCD-60, with 60% bulky group), oligophenylenevinylenes (MEH-OPV and BTCD-OPV)s, and their polymer-oligomer binary blends. The natures of the solvent, concentration, solvent combinations (good or bad), and temperature were employed as stimuli to probe the origin of the molecular aggregates in bulky conducting polymers. Absorption, photoluminescence (PL), and time-resolved fluorescence spectroscopic techniques were employed as tools to trace aggregation in solvents such as toluene, tetrahydrofuran (THF), THF and methanol, or THF and water as well as in the solid state. The absorbance spectra of poly(2-methoxy-5-(2-ethylhexyloxy))-1,4-phenylenevinylene (MEH-PPV) and BTCD-60 indicated that the films obtained from polymers that were dissolved in aromatic solvents such as toluene were found to possess more pi-stacking as compared to that of films obtained from a good solvent such as THE The solid-state emission spectrum of BTCD-60 was found to show almost a 5-6 times enhancement in PL intensity as compared to that of MEH-PPV. Concentration dependent excitation spectra of the polymers confirmed the presence of aggregated polymer chains in MEH-PPV, which is the main reason for the quenching of luminescence intensity in the polymer. Solvent induced aggregation studies of polymers in THF and methanol mixture further supports the existence of strong aggregation in MEH-PPV as compared to that of bulky BTCD-60. Variable temperature absorption studies confirmed the reversibility of molecular aggregation, on heating/cooling cycles, and the extent of aggregation was found more in MEH-PPV chains as compared to that of BTCD-60. MEH-PPV/OPV binary blends were prepared in the entire composition range from 0 to 100% via solution blending techniques. Through selective PL excitation techniques, the effect of oligomer-to-polymer energy transfer and. also luminescent enhancement in MEH-PPV via interchain separation were investigated. Both the energy transfer and the interchain separation were found to be more effective on the enhancement of luminescence properties in the BTCD blends as compared to that of MEH blends. Time-resolved fluorescence studies confirmed the existence of two types of species corresponding to the free and aggregated chains in the polymer matrix with lifetimes in the range of 0.5-2.0 ns. In the present investigation, we have successfully shown that the molecular aggregation of the pi-conjugated polymers, oligomers, and their binary blends can be controlled via suitable bulky substitution to tune their emission properties in solution as well as in the solid state.
机译:研究了三环癸烷取代的大体积(对亚苯基亚乙烯基)(BTCD-60,具有60%的大体积基团),低聚亚苯基亚乙烯基(MEH-OPV和BTCD- OPV及其聚合物-低聚物的二元混合物。使用溶剂的性质,浓度,溶剂组合(好或坏)和温度作为刺激,以探测大体积导电聚合物中分子聚集体的起源。吸收,光致发光(PL)和时间分辨荧光光谱技术被用作跟踪在甲苯,四氢呋喃(THF),THF和甲醇,THF和水以及固态溶剂中的聚集的工具。聚(2-甲氧基-5-(2-乙基己氧基))-1,4-亚苯基亚乙烯基(MEH-PPV)和BTCD-60的吸收光谱表明,由溶于甲苯等芳香族溶剂的聚合物制得的薄膜为与从良好的溶剂(例如)制得的膜相比,发现具有更多的pi堆积。发现BTCD-60的固态发射光谱显示PL强度几乎是π的5-6倍。 MEH-PPV。聚合物的浓度依赖性激发光谱证实了MEH-PPV中存在聚集的聚合物链,这是聚合物中发光强度猝灭的主要原因。与大体积BTCD-60相比,溶剂诱导的THF和甲醇混合物中聚合物的聚集研究进一步支持了MEH-PPV中强聚集的存在。可变温度吸收研究证实了在加热/冷却循环中分子聚集的可逆性,并且与BTCD-60相比,在MEH-PPV链中发现了更多的聚集程度。通过溶液共混技术,制备了MEH-PPV / OPV二元共混物,其组成范围为0至100%。通过选择性PL激发技术,可实现低聚物到聚合物能量转移的效果。还研究了通过链间分离在MEH-PPV中增强发光。与MEH共混物相比,发现能量转移和链间分离在增强BTCD共混物中的发光性能方面都更有效。时间分辨荧光研究证实,存在两种类型的物质,它们对应于聚合物基质中的自由链和聚集链,其寿命在0.5-2.0 ns的范围内。在本研究中,我们成功地显示了可以通过适当的大体积取代来控制π共轭聚合物,低聚物及其二元共混物的分子聚集,以调节它们在溶液中以及在固态时的发射性能。

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