TY - JOUR
T1 - Through-Space C-Br···π Halogen Interaction
T2 - Efficient Modulation of Reaction-Based Photochromism and Photoluminescence at Crystalline States for Irradiation Time-Dependent Anti-Counterfeiting
AU - Zhou, Zhibiao
AU - Liu, Qing
AU - Chen, Xian
AU - Xu, Gaoqiang
AU - Wang, Shuodong
AU - Tu, Yujie
AU - Zhang, Jia
AU - Zheng, Xiaoyan
AU - Xiang, Jiannan
AU - Feng, Xing
AU - Zhang, Yang
AU - Xie, Sheng
AU - Zeng, Zebing
AU - Tang, Ben Zhong
N1 - Publisher Copyright:
© 2020 Wiley-VCH GmbH
PY - 2021/3/3
Y1 - 2021/3/3
N2 - Reaction-based photo-responsive molecular systems have been used as a reliable platform for building intelligent materials, but often suffer from high inactivity in terms of conversion efficiency and reversibility when it comes to solid-state applications. Herein, a class of Spiro-conjugated diphenylindene (DPI) aggregation-induced emission materials that exhibit solid-state photocyclization-based photochromism and photoluminescence, achieved by manipulating through-space C-Br···π halogen interactions is reported. In the crystalline state, the Spiro bridge enables a pair of perpendicularly configured C-Br···π interactions that suppress photoluminescence while activating a highly reversible (>10 000 cycles) and efficient photochromism based on photocyclization. After breaking this intermolecular C-Br···π interaction, for example, by grinding, the solid-state photochromic properties are sensitively de-activated. In addition, this spontaneously reversible photochromism behavior gives a controllable decolorization time (from a few seconds to a few minutes), depending on the light exposure conditions, while displaying a luminescence change. In a proof-of-principle study, these photo-function features demonstrate an attractive potential for novel anti-counterfeiting applications. This work reveals the efficient regulation of C-Br···π halogen interactions for spatial molecular packing, molecular electronic transitions, and chemical transformations, paving the way for the development of solid-state intelligent materials with good reversibility.
AB - Reaction-based photo-responsive molecular systems have been used as a reliable platform for building intelligent materials, but often suffer from high inactivity in terms of conversion efficiency and reversibility when it comes to solid-state applications. Herein, a class of Spiro-conjugated diphenylindene (DPI) aggregation-induced emission materials that exhibit solid-state photocyclization-based photochromism and photoluminescence, achieved by manipulating through-space C-Br···π halogen interactions is reported. In the crystalline state, the Spiro bridge enables a pair of perpendicularly configured C-Br···π interactions that suppress photoluminescence while activating a highly reversible (>10 000 cycles) and efficient photochromism based on photocyclization. After breaking this intermolecular C-Br···π interaction, for example, by grinding, the solid-state photochromic properties are sensitively de-activated. In addition, this spontaneously reversible photochromism behavior gives a controllable decolorization time (from a few seconds to a few minutes), depending on the light exposure conditions, while displaying a luminescence change. In a proof-of-principle study, these photo-function features demonstrate an attractive potential for novel anti-counterfeiting applications. This work reveals the efficient regulation of C-Br···π halogen interactions for spatial molecular packing, molecular electronic transitions, and chemical transformations, paving the way for the development of solid-state intelligent materials with good reversibility.
KW - aggregation-induced emission
KW - anti-counterfeiting
KW - halogen-π interaction
KW - photo-responsive solid-state materials
KW - reaction-based photochromism
UR - http://www.scopus.com/inward/record.url?scp=85096831303&partnerID=8YFLogxK
U2 - 10.1002/adfm.202009024
DO - 10.1002/adfm.202009024
M3 - Article
AN - SCOPUS:85096831303
SN - 1616-301X
VL - 31
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 10
M1 - 2009024
ER -