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Synthesis and excited-state photodynamics of perylene-porphyrin dyads. 4. ultrafast charge separation and charge recombination between tightly coupled units in polar media

机译:per-卟啉二联体的合成和激发态光动力学。 4.极性介质中紧密耦合单元之间的超快电荷分离和电荷复合

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New perylene-porphyrin dyads that have excellent light-harvesting and energy-utilization capabilities in nonpolar media are found to exhibit efficient, ultrafast and tunable charge-transfer activity in polar media. The dyads consist of a perylene-monoimide dye (PMI) connected to a porphyrin (Por) via an ethynylphenyl (ep) linker. The porphyrin constituent of the PMI-ep-Por arrays is either a zinc or magnesium complex (Por = Zn or Mg) or a free-base form (Por = Fb). Following excitation of the perylene in each array in acetonitrile, PMI~* decays in ≤0.4 ps by a combination of energy transfer to the ground-state porphyrin (forming Por~*) and hole transfer (forming PMI-Por~+). The excited porphyrin formed by energy transfer (or via direct excitation) then undergoes effectively quantitative electron transfer back to the perylene (τ= 1, 1, 700 ps for Por = Mg, Zn, Fb). Subsequently, charge recombination within PMI~- Por~+ returns each dyad quantitatively to the ground state (τ= 2, 4, 8 ps for Por = Mg, Zn, Fb). The dynamics of the PMI Por~* → PMI~- Por~+ and PMI~- Por~+ → PMI Por charge-transfer processes can be modulated by altering the type of polar solvent (acetonitrile, benzonitrile, tetrahydrofuran and 2, 6-lutidine). The charge-separation times for PMI-ep-Zn are 1, 6, 9 and 22 ps in these solvents, while the charge-recombination times are 4, 24, 38 and 34 ps. The efficient, rapid and tunable nature of the charge-transfer processes in polar media makes the PMI-ep-Por dyads useful units for performing molecular-switching functions. These properties when combined with the excellent light-harvesting and energy-transfer capabilities of the same arrays in nonpolar media afford a robust perylene-porphyrin motif that can be tailored for a variety of functions in molecular optoelectronics.
机译:发现在非极性介质中具有出色的光收集和能量利用能力的新型per-卟啉二元化合物在极性介质中显示出高效,超快和可调的电荷转移活性。二元组由通过乙炔基苯基(ep)接头与卟啉(Por)连接的per-单酰亚胺染料(PMI)组成。 PMI-ep-Por阵列中的卟啉成分是锌或镁络合物(Por = Zn或Mg)或游离碱形式(Por = Fb)。在乙腈中每个阵列中的the激发后,PMI〜*在能量转移到基态卟啉(形成Por〜*)和空穴转移(形成PMI-Por〜+)的组合中以≤0.4ps的速度衰减。然后,通过能量转移(或通过直接激发)形成的激发卟啉有效地进行了定量的电子转移回到the(对于Por = Mg,Zn,Fb,τ= 1,1,700 ps)。随后,PMI--Por- +中的电荷重组使每个二元组定量地返回基态(对于Por = Mg,Zn,Fb,τ= 2、4、8 ps)。 PMI Por〜*→PMI〜-Por〜+和PMI〜-Por〜+→PMI Por的动力学可通过改变极性溶剂的类型(乙腈,苄腈,四氢呋喃和2,6-卢迪啶)。在这些溶剂中,PMI-ep-Zn的电荷分离时间为1、6、9和22 ps,而电荷重组时间为4、24、38和34 ps。极性介质中电荷转移过程的高效,快速和可调​​节的性质使PMI-ep-Por二元组成为执行分子转换功能的有用单元。这些特性与非极性介质中相同阵列的出色的光收集和能量转移功能相结合,可提供强大的per-卟啉基序,可针对分子光电中的多种功能进行定制。

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