Hao Taotao, Yang Yongsheng, Liang Wenting, Fan Chunying, Wang Xin, Wu Wanhua, Chen Xiaochuan, Fu Haiyan, Chen Hua, Yang Cheng
Key Laboratory of Green Chemistry & Technology, College of Chemistry, Sichuan University 29 Wangjiang Road Chengdu 610064 China
Institute of Environmental Science, Department of Chemistry, Shanxi University Taiyuan 030006 China.
Chem Sci. 2020 Dec 28;12(7):2614-2622. doi: 10.1039/d0sc05213b.
Stilbene derivatives have long been known to undergo "acid-catalyzed" → isomerization, where a strong mineral acid at high concentration is practically necessary. Such severe reaction conditions often cause undesired by-reactions and limit their potential application. Herein, we present a trace mild acid-catalyzed → isomerization found with stilbene derivatives fused with a norbornene moiety. By-reactions, such as the migration of the C[double bond, length as m-dash]C double bond and electrophilic addition reactions, were completely inhibited because of the ring strain caused by the fused norbornene component. Direct photolysis of the isomers at selected wavelengths led to the → photoisomerization of these stilbene derivatives and thus constituted a unique class of molecular switches orthogonally controllable by light and acid. The catalytic amount of acid could be readily removed, and the → isomerization could be controlled by turning on/off the irradiation of a photoacid, which allowed repeated isomerization in a non-invasive manner. Moreover, the isomer produced by photoisomerization could spontaneously self-recover to the isomer in the presence of a catalytic amount of acid. The kinetics of → isomerization were adjustable by manipulating catalytic factors and, therefore, unprecedented molecular photoswitches with adjustable self-recovery were realized.
长期以来,人们一直知道芪衍生物会发生“酸催化”异构化反应,而高浓度的强无机酸实际上是必需的。如此苛刻的反应条件常常会引发不希望的副反应,并限制其潜在应用。在此,我们展示了一种与降冰片烯部分稠合的芪衍生物所发生的痕量温和酸催化异构化反应。由于稠合的降冰片烯组分引起的环张力,诸如C=C双键迁移和亲电加成反应等副反应被完全抑制。在选定波长下对异构体进行直接光解会导致这些芪衍生物发生光异构化,从而构成了一类独特的可通过光和酸进行正交控制的分子开关。酸的催化量可以很容易地除去,并且异构化反应可以通过开启/关闭光酸的照射来控制,这使得能够以非侵入性方式进行重复异构化。此外,光异构化产生的异构体在存在催化量的酸时能够自发地自我恢复为异构体。通过操纵催化因素可以调节异构化反应的动力学,因此,实现了具有可调节自我恢复功能的前所未有的分子光开关。