English
新闻公告
More
化学进展 2009, Vol. 21 Issue (01): 106-115 前一篇   后一篇

• 综述与评论 •

光驱动分子梭*

马骧;王巧纯;田禾**   

  1. (结构可控先进功能材料及其制备教育部重点实验室 华东理工大学精细化工研究所 上海 200237)
  • 收稿日期:2008-04-25 修回日期:2008-05-20 出版日期:2009-01-24 发布日期:2009-01-25
  • 通讯作者: 田禾 E-mail:tianhe@ecust.edu.cn

Photo-Driven Molecular Shuttles

Ms Xiang;Wang Qiaochun;Tian He**   

  1. (Key Laboratory for Advanced Materials and Institute of Fine Chemicals, East China University of Science & Technology, Shanghai 200237, China)
  • Received:2008-04-25 Revised:2008-05-20 Online:2009-01-24 Published:2009-01-25
  • Contact: Tian He E-mail:tianhe@ecust.edu.cn

分子梭在分子开关、分子逻辑门、信息存储等领域有着潜在的应用价值,是超分子化学领域的研究热点之一。本文综述了光驱动分子梭的研究进展:重点举例介绍了荧光光谱识别法和圆二色光谱识别法这两种识别光驱动分子梭位置状态的方法;阐述了构建光驱动轮烷分子梭的新型方法学,包括光驱动环糊精[2]轮烷和[1]轮烷分子梭的定向合成,举例介绍了光间接驱动的轮烷分子梭,以及光驱动[3]轮烷型分子梭和分子梭聚合物;举例说明了光驱动分子梭的功能性应用,用光驱动分子梭来模拟分子水平的逻辑门,研究光驱动分子梭体系中的能量传递机理,以及非溶液态的光驱动分子梭;并对分子梭今后的发展做了展望。

Molecular shuttle, as a formidable challenge to construct motors and machines of nano-size dimension, have potential applications in areas such as nano-structured functional materials, molecular switches, molecular logic gates, memory devices, and so on. In this paper, the progress in photo-driven molecular shuttles is introduced. Co-conformational identifications of molecular shuttles, like using fluorescence spectra and circular dichroism spectra are mainly generalized. The methodology to construct novel photo-driven molecular shuttles, like the unidirectional synthesis of cyclodextrin [2]rotaxane and [1]rotaxane, rotaxane shuttles driven by light indirectly, [3]rotaxane shuttle and polyrotaxane, is elaborated. The potential functionality of molecular machine in such areas as molecular logic gates, the energy transfer of molecular shuttles, and the properties of molecular shuttles in non-solution media are reviewed, and the future development of molecular machine is prospected.

Contents
1 Introduction
2 Process in photo-driven molecular shuttles
2.1 Co-conformational identification of photo-driven molecular shuttles
2.2 Novel methodology to construct photo-driven rotaxane shuttles
2.3 Functionality of photo-driven molecular shuttles
3 Prospect

中图分类号: 

()

[ 1 ]  Balzani V , Venturi M, Credi A. Molecular Devices and Machines.Weinheim: Wiley2VCH , 2003
[ 2 ]  Tian H , Wang Q C. Chem. Soc. Rev. , 2006 , 35 : 361 —374
[ 3 ]  Kay E R , Leigh D A , Zerbetto F. Angew. Chem. Int . Ed. , 2007 ,46 : 72 —191
[ 4 ]  Balzani V , Credi A , Silvi S , Venturi M. Chem. Soc. Rev. , 2006 ,35 : 1135 —1149
[ 5 ]  Sindelar V , Silvi S , Kaifer A E. Chem. Commun. , 2006 , 2185 —2187
[ 6 ]  Sauvage J P. Chem. Commun. , 2005 , 1507 —1510
[ 7 ]  Wenz G, Han B H , Müller A. Chem. Rev. , 2006 , 106 : 782 —817
[ 8 ]  Credi A , Tian H. Adv. Funct . Mater. , 2007 , 17 : 679 —682
[ 9 ]  Liu Y, Ke C F , Zhang H Y, Wu W J , Shi J . J . Org. Chem. ,2007 , 72 : 280 —283
[10 ]  Shao X B , Jiang X K, Zhao X, Zhao C X, Chen Y, Li Z T. J .Org. Chem. , 2004 , 69 : 899 —907
[11 ]  Marlin D S , Cabrera D G, Leigh D A , Slawin A M Z. Angew.Chem. Int . Ed. , 2006 , 45 : 1385 —1390
[12 ]  Zhang C , Li S , Zhang J , Zhu K, Li N , Huang F. Org. Lett . ,2007 , 9 : 5553 —5556
[13 ]  Letinois-Halbes U , Hanss D , Beierle J M, Collin J P , Sauvage J P.Org. Lett . , 2005 , 7 : 5753 —5756
[14 ]  Jeppesen J O , Becher J , Stoddar J F. Org. Lett . , 2002 , 4 : 557 —560
[15 ]  Sauvage J P. Chem. Commun. , 2005 , 1507 —1510
[16 ]  Balzani V , Credi A , Mattersteig G, Matthews O A , Raymo F M,Stoddart J F , Venturi M, White A J P , Williams D J . J . Org.Chem. , 2000 , 65 : 1924 —1936
[17 ]  Stanier C A , Alderman S J , Claridge T D W, Anderson H L.Angew. Chem. Int . Ed. , 2002 , 41 : 1769 —1772
[18 ]  Li YJ , Li H , Li YL , Liu H B , Wang S , He X R , Wang N , Zhu D B. Org. Lett . , 2005 , 7 : 4835 —4838
[19 ]  Bottari G, Dehez F , Leigh D A , Nash P J , Pérez E M, Wong J K Y, Zerbetto F. Angew. Chem. Int . Ed. , 2003 , 42 : 5886 —5889
[20 ]  Laursen B W, Nygaard S , Jeppesen J O , Stoddart J F. Org. Letts. ,2004 , 6 : 4167 —4170
[21 ]  Ong W, Gómez-Kaifer M, Kaifer A E. Org. Lett . , 2002 , 4 :1791 —1794
[22 ]  Wurpel G W H , Brouwer A M, van Stokkum I H M, Farran A ,Leigh D A. J . Am. Chem. Soc. , 2001 , 123 : 11327 —11328
[23 ]  Grubert L , Jacobi D , Buck K, Abraham W, Mügge C , Krause E.Eur. J . Org. Chem. , 2001 , 20 : 3921 —3932
[24 ]  Iijima T, Vignon S A , Tseng H R , Jarrosson T, Sanders J K M,Marchioni F , Venturi M, Apostoli E , Balzani V , Stoddart J F.Chem. Eur. J . , 2004 , 10 : 6375 —6392
[25 ]  Poleschak I , Kern J M, Sauvage J P. Chem. Commun. , 2004 ,474 —476
[26 ]  Altieri A , Gatti F G, Kay E R , Leigh D A , Martel D , Paolucci F ,Slawin A M Z, Wong J K Y. J . Am. Chem. Soc. , 2003 , 125 :8644 —8654
[27 ]  Bottari G, Leigh D A , Perez E M. J . Am. Chem. Soc. , 2003 ,125 : 13360 —13361
[28 ]  Wang Q C , Qu D H , Ren J , Chen K, Tian H. Angew. Chem. Int .Ed. , 2004 , 43 : 2661 —2665
[29 ]  Pérez E M, Dryden D T F , Leigh D A , Teobaldi G, Zerbetto F. J .Am. Chem. Soc. , 2004 , 126 : 12210 —12211
[30 ]  Qu D H , Wang Q C , Ren J , Tian H. Org. Lett . , 2004 , 6 : 2085 —2088
[31 ]  Ma X, Wang Q C , Qu D H , Xu Y, Ji F Y, Tian H. Adv. Funct .Mater. , 2007 , 17 : 829 —837
[32 ]  Bottari G, Leigh D A , Pérez E M. J . Am. Chem. Soc. , 2003 ,125 : 13360 —13361
[33 ]  Wang Q C , Ma X, Qu D H , Tian H. Chem. Eur. J . , 2006 , 12 :1088 —1096
[34 ]  Ma X, Qu D H , Ji F Y, Wang Q C , Zhu L L , Xu Y, Tian H.Chem. Commun. , 2007 , 14 : 1409 —1411
[35 ]  Ma X, Wang Q C , Tian H. Tetrahedron Letters , 2007 , 48 : 7112 —7116
[36 ]  Saha S , Flood A H , Stoddart J F , Impellizzeri S , Silvi S , Venturi M, Credi A. J . Am. Chem. Soc. , 2007 , 129 : 12159 —12171
[37 ]  Zhou WD , Chen D G, Li J B , Xu J L , LüJ , Liu H B , Li YL.Org. Lett . , 2007 , 9 : 3929 —3932
[38 ]  Qu D H , Wang Q C , Ma X, Tian H. Chem. Eur. J . , 2005 , 11 :5929 —5937
[39 ]  Michels J J , O’Connell MJ , Taylor P N , Wilson J S , Cacialli F ,Anderson H L. Chem. Eur. J . , 2003 , 9 : 6167 —6176
[40 ]  Sardone L , Williams C C , Anderson H L , Marletta G, Cacialli F ,SamorìP. Adv. Funct . Mater. , 2007 , 17 : 927 —932
[41 ]  Peasw A R , Jeppesen J O , Stoddart J F , Luo Y, Collier C P , Heath J R. Acc. Chem. Res. , 2001 , 34 : 433 —444
[42 ]  Ball P. Nature , 2000 , 406 : 118 —120
[43 ]  Qu D H , Wang Q C , Tian H. Angew. Chem. Int . Ed. , 2005 , 44 :5296 —5299
[44 ]  Qu D H , Ji F Y, Wang Q C , Tian H. Adv. Mater. , 2006 , 18 :2035 —2038
[45 ]  Serreli V , Lee C F , Kay E R , Leigh D A. Nature , 2007 , 45 :523 —527
[46 ]  Leigh D A , Morales M F , Pérez E M, Wong J K Y, Saiz C G,Slawin A M Z, Carmichael AJ , Haddleton D M, Brouwer A M, Jan Buma W, Wurpel GW H , León S , Zerbetto F. Angew. Chem. Int .Ed. , 2005 , 44 : 3062 —3069
[47 ]  Collier C P , Mattersteig G, Wong EW, Lou Y, Beverly K, Sampaio K, Raymo F M, Stoddart J F , Heath J R. Science , 2000 , 289 :1172 —1175
[48 ]  Wong E W, Collier C P , Behloradsk?M, Raymo FM, Stoddart J F ,Heath J R. J . Am. Chem. Soc. , 2000 , 122 : 5831 —5840
[49 ]  Stewart D , Ohlberg D A A , Beck P A , Chen Y, Williams R S ,Jeppesen J O , Nielsen K A , Stoddart J F. Nano Lett . , 2004 , 4 :133 —136
[50 ]  Katz E , Lioubashevsky O , Willner I. J . Am. Chem. Soc. , 2004 ,126 : 15520 —15532
[51 ]  Cavallini M, Biscarni F , León S , Zerbetto F , Bottari G, Leigh D A.Science , 2003 , 299 : 531 —531
[52 ]  Feng M, Guo X F , Lin X, He X B , Ji W, Du S X, Zhang D Q ,Zhu D B , Gao H J . J . Am. Chem. Soc. , 2005 , 127 :15338 —15339
[53 ]  Saha S , Leung K C F , Nguyen T D , Stoddart J F , Zink J I. Adv.Funct . Mater. , 2007 , 17 : 685 —693
[54 ]  Berna J , Leigh D A , Lubomska M, Mendoza S M, Perez E M,Rudolf P , Teobaldi G, Zerbetto F. Nature Mat . , 2005 , 4 :704 —710
[55 ]  Zhu L L , Ma X, Ji F Y, Wang Q C , Tian H. Chem. Eur. J . ,2007 , 13 : 9216 —9222
[56 ]  Liu Y, Yu L , Chen Y, Zhao YL , Yang H. J . Am. Chem. Soc. ,2007 , 129 : 10656 —10657
[57 ]  Hwang I , Baek K, Jung M, Kim Y, Park K M, Lee D W,Selvapalam N , Kim K. J . Am. Chem. Soc. , 2007 , 129 :4170 —4171

[1] 于兰, 薛沛然, 李欢欢, 陶冶, 陈润锋, 黄维. 圆偏振发光性质的热活化延迟荧光材料及电致发光器件[J]. 化学进展, 2022, 34(9): 1996-2011.
[2] 赖燕琴, 谢振达, 付曼琳, 陈暄, 周戚, 胡金锋. 基于1,8-萘酰亚胺的多分析物荧光探针的构建和应用[J]. 化学进展, 2022, 34(9): 2024-2034.
[3] 李立清, 郑明豪, 江丹丹, 曹舒心, 刘昆明, 刘晋彪. 基于邻苯二胺氧化反应的生物分子比色/荧光探针[J]. 化学进展, 2022, 34(8): 1815-1830.
[4] 周宇航, 丁莎, 夏勇, 刘跃军. 荧光探针在半胱氨酸检测的应用[J]. 化学进展, 2022, 34(8): 1831-1862.
[5] 颜范勇, 臧悦言, 章宇扬, 李想, 王瑞杰, 卢贞彤. 检测谷胱甘肽的荧光探针[J]. 化学进展, 2022, 34(5): 1136-1152.
[6] 赵惠, 胡文博, 范曲立. 双光子荧光探针在生物传感中的应用[J]. 化学进展, 2022, 34(4): 815-823.
[7] 田浩, 李子木, 汪长征, 许萍, 徐守芳. 分子印迹荧光传感构建及应用[J]. 化学进展, 2022, 34(3): 593-608.
[8] 张婷婷, 洪兴枝, 高慧, 任颖, 贾建峰, 武海顺. 基于铜金属有机配合物的热活化延迟荧光材料[J]. 化学进展, 2022, 34(2): 411-433.
[9] 李彬, 于颖, 幸国香, 邢金峰, 刘万兴, 张天永. 手性无机纳米材料圆偏振发光的研究进展[J]. 化学进展, 2022, 34(11): 2340-2350.
[10] 张业文, 杨青青, 周策峰, 李平, 陈润锋. 热激活延迟荧光材料的光物理行为及性能预测[J]. 化学进展, 2022, 34(10): 2146-2158.
[11] 王振, 李曦, 栗园园, 王其, 卢晓梅, 范曲立. 可激活的NIR-Ⅱ探针用于肿瘤成像[J]. 化学进展, 2022, 34(1): 198-206.
[12] 李斌, 付艳艳, 程建功. 检测有机磷神经毒剂及模拟物的荧光探针[J]. 化学进展, 2021, 33(9): 1461-1472.
[13] 赵丹, 王昌涛, 苏磊, 张学记. 荧光纳米材料在病原微生物检测中的应用[J]. 化学进展, 2021, 33(9): 1482-1495.
[14] 王学川, 王岩松, 韩庆鑫, 孙晓龙. 有机小分子荧光探针对甲醛的识别及其应用[J]. 化学进展, 2021, 33(9): 1496-1510.
[15] 谢勇, 韩明杰, 徐钰豪, 熊晨雨, 王日, 夏善红. 荧光内滤效应在环境检测领域的应用[J]. 化学进展, 2021, 33(8): 1450-1460.
阅读次数
全文


摘要

光驱动分子梭*