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7-(2-Decyltetradecyl)-18-[2-[4-[2-[25-[2-[4-[2-[18-(2-decyltetradecyl)-6,8,17,19-tetraoxo-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaen-7-yl]ethyl]phenyl]ethynyl]-11,20,34,39-tetrakis(3,7-dimethyloctyl)-6-tridecacyclo[28.12.0.02,15.03,8.04,41.09,14.013,18.016,29.017,22.023,28.027,32.031,36.037,42]dotetraconta-1(42),2(15),3,5,7,9,11,13,16(29),17,19,21,23,25,27,30,32,34,36,38,40-henicosaenyl]ethynyl]phenyl]ethyl]-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaene-6,8,17,19-tetrone | 1369426-72-1

中文名称
——
中文别名
——
英文名称
7-(2-Decyltetradecyl)-18-[2-[4-[2-[25-[2-[4-[2-[18-(2-decyltetradecyl)-6,8,17,19-tetraoxo-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaen-7-yl]ethyl]phenyl]ethynyl]-11,20,34,39-tetrakis(3,7-dimethyloctyl)-6-tridecacyclo[28.12.0.02,15.03,8.04,41.09,14.013,18.016,29.017,22.023,28.027,32.031,36.037,42]dotetraconta-1(42),2(15),3,5,7,9,11,13,16(29),17,19,21,23,25,27,30,32,34,36,38,40-henicosaenyl]ethynyl]phenyl]ethyl]-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaene-6,8,17,19-tetrone
英文别名
7-(2-decyltetradecyl)-18-[2-[4-[2-[25-[2-[4-[2-[18-(2-decyltetradecyl)-6,8,17,19-tetraoxo-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaen-7-yl]ethyl]phenyl]ethynyl]-11,20,34,39-tetrakis(3,7-dimethyloctyl)-6-tridecacyclo[28.12.0.02,15.03,8.04,41.09,14.013,18.016,29.017,22.023,28.027,32.031,36.037,42]dotetraconta-1(42),2(15),3,5,7,9,11,13,16(29),17,19,21,23,25,27,30,32,34,36,38,40-henicosaenyl]ethynyl]phenyl]ethyl]-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaene-6,8,17,19-tetrone
7-(2-Decyltetradecyl)-18-[2-[4-[2-[25-[2-[4-[2-[18-(2-decyltetradecyl)-6,8,17,19-tetraoxo-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaen-7-yl]ethyl]phenyl]ethynyl]-11,20,34,39-tetrakis(3,7-dimethyloctyl)-6-tridecacyclo[28.12.0.02,15.03,8.04,41.09,14.013,18.016,29.017,22.023,28.027,32.031,36.037,42]dotetraconta-1(42),2(15),3,5,7,9,11,13,16(29),17,19,21,23,25,27,30,32,34,36,38,40-henicosaenyl]ethynyl]phenyl]ethyl]-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaene-6,8,17,19-tetrone化学式
CAS
1369426-72-1
化学式
C198H226N4O8
mdl
——
分子量
2789.99
InChiKey
FRVQLLKCODFWKX-UHFFFAOYSA-N
BEILSTEIN
——
EINECS
——
  • 物化性质
  • 计算性质
  • ADMET
  • 安全信息
  • SDS
  • 制备方法与用途
  • 上下游信息
  • 反应信息
  • 文献信息
  • 表征谱图
  • 同类化合物
  • 相关功能分类
  • 相关结构分类

计算性质

  • 辛醇/水分配系数(LogP):
    66.4
  • 重原子数:
    210
  • 可旋转键数:
    82
  • 环数:
    29.0
  • sp3杂化的碳原子比例:
    0.46
  • 拓扑面积:
    150
  • 氢给体数:
    0
  • 氢受体数:
    8

反应信息

  • 作为产物:
    描述:
    2-(2-decyltetradecyl)-9-(4-ethynylphenethyl)anthra[2,1,9-def:6,5,10-d'e'f']diisoquinoline-1,3,8,10(2H,9H)-tetraone 、 1,10-dibromo-4,7,13,16-penta(3,7-dimethyloctyl)-hexa-peri-hexabenzocoronene 在 哌啶copper(l) iodide四(三苯基膦)钯 作用下, 以 四氢呋喃 为溶剂, 反应 72.0h, 以10%的产率得到7-(2-Decyltetradecyl)-18-[2-[4-[2-[25-[2-[4-[2-[18-(2-decyltetradecyl)-6,8,17,19-tetraoxo-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaen-7-yl]ethyl]phenyl]ethynyl]-11,20,34,39-tetrakis(3,7-dimethyloctyl)-6-tridecacyclo[28.12.0.02,15.03,8.04,41.09,14.013,18.016,29.017,22.023,28.027,32.031,36.037,42]dotetraconta-1(42),2(15),3,5,7,9,11,13,16(29),17,19,21,23,25,27,30,32,34,36,38,40-henicosaenyl]ethynyl]phenyl]ethyl]-7,18-diazaheptacyclo[14.6.2.22,5.03,12.04,9.013,23.020,24]hexacosa-1(23),2,4,9,11,13,15,20(24),21,25-decaene-6,8,17,19-tetrone
    参考文献:
    名称:
    作为研究基本能量和电子转移过程模型的共价连接的六邻六苯并苊烯/苝二亚胺二元组的合成和受控自组装
    摘要:
    我们报告了一系列与刚性桥共价连接的六对六苯并可罗烯 (HBC)/苝四羧基二亚胺 (PDI) 二元组的合成和光物理表征。系统地修改了两种组分的比例和桥接元素的共轭,以研究对电子供体 HBC 和受体 PDI 之间自组装和能量和电子转移的影响。STM 和 2D-​​WAXS 实验表明,无论是在溶液中还是在块状固态中,二元组都组装成有序的二维超分子结构,在纳米尺度上,供体和受体之间的相互方向和距离可控。根据二元组的对称性,观察到具有 HBC 和 PDI 纳米隔离堆叠的柱子或具有交替 HBC 和 PDI 部分的交叉网络。UV-vis、光致发光、瞬态光致发光和瞬态吸收光谱证实,在供体 HBC 光激发后,HBC 和 PDI 之间的光诱导电子转移只能与主要的 Förster 共振能量转移竞争,如果通过 HBC 和 PDI 的紧密堆叠促进有足够的轨道重叠。然而,虽然交替堆叠允许有效的电子转移,但只有纳米隔离
    DOI:
    10.1021/ja211504a
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文献信息

  • Synthesis and Controlled Self-Assembly of Covalently Linked Hexa-<i>peri</i>-hexabenzocoronene/Perylene Diimide Dyads as Models To Study Fundamental Energy and Electron Transfer Processes
    作者:Lukas F. Dössel、Valentin Kamm、Ian A. Howard、Frédéric Laquai、Wojciech Pisula、Xinliang Feng、Chen Li、Masayoshi Takase、Tibor Kudernac、Steven De Feyter、Klaus Müllen
    DOI:10.1021/ja211504a
    日期:2012.4.4
    We report the synthesis and photophysical characterization of a series of hexa-peri-hexabenzocoronene (HBC)/perylenetetracarboxy diimide (PDI) dyads that are covalently linked with a rigid bridge. Both the ratio of the two components and the conjugation of the bridging element are systematically modified to study the influence on self-assembly and energy and electron transfer between electron donor
    我们报告了一系列与刚性桥共价连接的六对六苯并可罗烯 (HBC)/苝四羧基二亚胺 (PDI) 二元组的合成和光物理表征。系统地修改了两种组分的比例和桥接元素的共轭,以研究对电子供体 HBC 和受体 PDI 之间自组装和能量和电子转移的影响。STM 和 2D-​​WAXS 实验表明,无论是在溶液中还是在块状固态中,二元组都组装成有序的二维超分子结构,在纳米尺度上,供体和受体之间的相互方向和距离可控。根据二元组的对称性,观察到具有 HBC 和 PDI 纳米隔离堆叠的柱子或具有交替 HBC 和 PDI 部分的交叉网络。UV-vis、光致发光、瞬态光致发光和瞬态吸收光谱证实,在供体 HBC 光激发后,HBC 和 PDI 之间的光诱导电子转移只能与主要的 Förster 共振能量转移竞争,如果通过 HBC 和 PDI 的紧密堆叠促进有足够的轨道重叠。然而,虽然交替堆叠允许有效的电子转移,但只有纳米隔离
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