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Porphyrin Dyads Bearing Carbon Tethers for Studies of High-Density Molecular Charge Storage on Silicon Surfaces

机译:带有碳系链的卟啉染料,用于在硅表面上高密度分子电荷的研究

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摘要

Redox-active molecules that afford high charge density upon attachment to an electroactive surface are of interest for use in molecular-based information-storage applications.One strategy for increasing charge density is to covalently link a second redox center to the first in an architecture that uses the vertical dimension in essentially the same molecular footprint.Toward this end,a set of four new porphyrin dyads have been prepared and characterized.Each dyad consists of two zinc porphyrins,an intervening linker(p-phenylene or 4,4'-diphenylethyne),and a surface attachment group(ethynyl or triallyl group).The porphyrin dyads were attached to an electroactive Si(100)surface and interrogated via electrochemical and FTIR techniques.The charge density obtainable for the ethynyl-functionalized porphyrin dyads is approximately double that observed for an analogously functionalized monomer,whereas that for the triallyl-functionalized dyads is at most 40% larger.These results indicate that the molecular footprint of the former dyads is similar to that of a monomer while that of the latter dyads is larger.For both the ethynyl-and triallyl-functionalized porphyrin dyads,higher charge densities(smaller molecular footprints)are obtained for the molecules containing the 4,4'-diphenylethyne versus the p-phenylene linker.This feature is attributed to the enhanced torsional flexibility of the former linker compared with that of the latter,which affords better packed monolayers.The FTIR studies indicate that the adsorption geometry of all the dyads is qualitatively similar and similar to that of monomers.However,the dyads containing the 4,4'-diphenylethyne linker sit somewhat more upright on the surface than those containing the p-phenylene linker,generally consistent with the smaller molecular footprint for the former dyads.Collectively,the high surface charge density(34-58 mu C centre dot cm~(-2))of the porphyrin dyads makes these constructs viable candidates for molecular-information-storage applications.
机译:在附着于电活性表面上时能提供高电荷密度的氧化还原活性分子非常适合用于基于分子的信息存储应用。提高电荷密度的一种策略是将第二个氧化还原中心与第一个氧化还原中心共价连接。为此,我们制备并表征了一组四个新的卟啉二联体。每个二联体由两个锌卟啉组成,中间有一个连接基(对-亚苯基或4,4'-二苯基乙炔) ),以及一个表面附着基团(乙炔基或三烯丙基基团)。将卟啉二联体附着到电活性Si(100)表面上,并通过电化学和FTIR技术对其进行研究。乙炔基官能化的卟啉二联体可获得的电荷密度约为观察到类似功能化的单体,而三烯丙基功能化的二倍体最多大40%。这些结果表明:对于乙炔基和三烯丙基官能化的卟啉二元化合物,对于含有乙炔基和三烯丙基官能化的卟啉二元化合物,其电荷密度较高(分子足迹较小)。 4,4'-二苯乙炔与对亚苯基接头。此特征归因于前一个接头与后者相比具有增强的扭转挠性,后者具有更好的堆积单层。FTIR研究表明,所有接头的吸附几何形状dyads在质量上与单体相似且相似。但是,包含4,4'-diphenylethyne接头的dyads在表面上比包含p-亚苯基接头的dyads更直立,通常与前者较小的分子足迹一致总的来说,卟啉染料的高表面电荷密度(34-58μC中心点cm〜(-2))使这些构建物成为分子信息的可行候选物。 rmation-storage应用程序。

著录项

  • 来源
    《The Journal of Organic Chemistry》 |2006年第3期|p.1156-1171|共16页
  • 作者单位

    Department of Chemistry,North Carolina State University,Raleigh,North Carolina 27695-8204,Department of Chemistry,University of California,Riverside,California 92521-0403;

    Department of Chemistry,North Carolina State University,Raleigh,North Carolina 27695-8204,Department of Chemistry,University of California,Riverside,California 92521-0403;

    Department of Chemistry,North Carolina State University,Raleigh,North Carolina 27695-8204,Department of Chemistry,University of California,Riverside,California 92521-0403;

    Department of Chemistry,North Carolina State University,Raleigh,North Carolina 27695-8204,Department of Chemistry,University of California,Riverside,California 92521-0403;

    Department of Chemistry,North Carolina State University,Raleigh,North Carolina 27695-8204,Department of Chemistry,University of California,Riverside,California 92521-0403;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
  • 关键词

  • 入库时间 2022-08-18 00:02:39

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