Light-driven self-assembly of spiropyran-functionalized covalent organic framework

被引:0
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作者
Gobinda Das
Thirumurugan Prakasam
Nour Alkhatib
Rasha G. AbdulHalim
Falguni Chandra
Sudhir Kumar Sharma
Bikash Garai
Sabu Varghese
Matthew A. Addicoat
Florent Ravaux
Renu Pasricha
Ramesh Jagannathan
Na’il Saleh
Serdal Kirmizialtin
Mark A. Olson
Ali Trabolsi
机构
[1] New York University Abu Dhabi (NYUAD),Chemistry Program
[2] Saadiyat Island,Chemistry Department, College of Science
[3] United Arab Emirates University,Engineering Division
[4] New York University Abu Dhabi (NYUAD),NYUAD Water Research Center
[5] New York University Abu Dhabi (NYUAD),CTP
[6] Saadiyat Island,School of Science and Technology
[7] New York University Abu Dhabi,Quantum research center
[8] Nottingham Trent University,Zayed Center for Health Sciences
[9] Technology Innovation Institute,Center for Smart Engineering Materials
[10] United Arab Emirates University,Department of Physical and Environmental Sciences
[11] New York University Abu Dhabi (NYUAD),undefined
[12] Texas A&M University Corpus Christi,undefined
来源
Nature Communications | / 14卷
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摘要
Controlling the number of molecular switches and their relative positioning within porous materials is critical to their functionality and properties. The proximity of many molecular switches to one another can hinder or completely suppress their response. Herein, a synthetic strategy involving mixed linkers is used to control the distribution of spiropyran-functionalized linkers in a covalent organic framework (COF). The COF contains a spiropyran in each pore which exhibits excellent reversible photoswitching behavior to its merocyanine form in the solid state in response to UV/Vis light. The spiro-COF possesses an urchin-shaped morphology and exhibits a morphological transition to 2D nanosheets and vesicles in solution upon UV light irradiation. The merocyanine-equipped COFs are extremely stable and possess a more ordered structure with enhanced photoluminescence. This approach to modulating structural isomerization in the solid state is used to develop inkless printing media, while the photomediated polarity change is used for water harvesting applications.
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