TY - JOUR
T1 - Endowing nitro-compounds with bright and stimuli-responsive luminescence based on propeller-like AIEgens
AU - Ding, Riqing
AU - Qin, Ke
AU - Sun, Huili
AU - Zhou, Shasha
AU - Guo, Sidan
AU - Feng, Hui
AU - Ma, Huili
AU - Qian, Zhaosheng
N1 - Publisher Copyright:
© The Royal Society of Chemistry 2021.
PY - 2021/9/28
Y1 - 2021/9/28
N2 - An electron-rich nitro group, having higher sensitivity to various environments, is attractive for constructing stimuli-responsive luminescent materials. However, it also causes the fluorescence quenching of luminogens, making a formidable challenge to achieving intense luminescence in nitro-compounds. Herein, we design a group of bright nitro-compounds with high fluorescence efficiency, long-wavelength emission and multi-stimuli-responsive behaviors by combining through-space conjugated AIEgens and nitro groups. Two bright nitro-compounds were constructed by introducing a propeller-like skeleton with the π-conjugated rings, showing a strong intramolecular spatial delocalization of π-electrons. This character not only stabilizes the (π, π*) states to enable their energy below the n → π* transitions caused by the nitro groups, enormously hindering the intersystem crossing process and promoting radiative transition, but also provides a strong steric hindrance of aromatic rings to vastly restrict the nonradiative decay of the singlet excitons, thereby enabling a high fluorescence efficiency, up to 95%. Moreover, the propeller-like chromophore and the nitro group with strong electron-withdrawing capacity work in synergy to induce an environmentally responsive conversion of local excitation and charge transfer states, endowing these nitro-compounds with stimuli-responsive luminescence, including solvatochromism, thermochromism, and mechanochromism in a reversible way, which varies from green to red. These findings outline a fundamental principle for the construction of bright nitro-compounds with stimuli-responsive behaviors, endowing traditional nitro-compounds with new features for potential applications.
AB - An electron-rich nitro group, having higher sensitivity to various environments, is attractive for constructing stimuli-responsive luminescent materials. However, it also causes the fluorescence quenching of luminogens, making a formidable challenge to achieving intense luminescence in nitro-compounds. Herein, we design a group of bright nitro-compounds with high fluorescence efficiency, long-wavelength emission and multi-stimuli-responsive behaviors by combining through-space conjugated AIEgens and nitro groups. Two bright nitro-compounds were constructed by introducing a propeller-like skeleton with the π-conjugated rings, showing a strong intramolecular spatial delocalization of π-electrons. This character not only stabilizes the (π, π*) states to enable their energy below the n → π* transitions caused by the nitro groups, enormously hindering the intersystem crossing process and promoting radiative transition, but also provides a strong steric hindrance of aromatic rings to vastly restrict the nonradiative decay of the singlet excitons, thereby enabling a high fluorescence efficiency, up to 95%. Moreover, the propeller-like chromophore and the nitro group with strong electron-withdrawing capacity work in synergy to induce an environmentally responsive conversion of local excitation and charge transfer states, endowing these nitro-compounds with stimuli-responsive luminescence, including solvatochromism, thermochromism, and mechanochromism in a reversible way, which varies from green to red. These findings outline a fundamental principle for the construction of bright nitro-compounds with stimuli-responsive behaviors, endowing traditional nitro-compounds with new features for potential applications.
UR - http://www.scopus.com/inward/record.url?scp=85115885587&partnerID=8YFLogxK
U2 - 10.1039/d1tc01713f
DO - 10.1039/d1tc01713f
M3 - 文章
AN - SCOPUS:85115885587
SN - 2050-7526
VL - 9
SP - 12177
EP - 12183
JO - Journal of Materials Chemistry C
JF - Journal of Materials Chemistry C
IS - 36
ER -