Название: Handbook of Aggregation-Induced Emission, Volume 2
Автор: Группа авторов
Издательство: John Wiley & Sons Limited
Жанр: Химия
isbn: 9781119642961
isbn:
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48 48 Liu H, Song P, Wei R, Li K, Tong A. A facile, sensitive and selective fluorescent probe for heparin based on aggregation‐induced emission. Talanta 2014; 118:348–52.
49 49 Song P, Chen X, Xiang Y, Huang L, Zhou Z, Wei R, et al. A ratiometric fluorescent pH probe based on aggregation‐induced emission enhancement and its application in live‐cell imaging. J. Mater. Chem. 2011; 21(35):13470–5.
50 50 Ma X, Cheng J, Liu J, Zhou X, Xiang H. Ratiometric fluorescent pH probes based on aggregation‐induced emission‐active salicylaldehyde azines. N. J. Chem. 2015; 39(1):492–500.
51 51 Kachwal V, Vamsi Krishna IS, Fageria L, Chaudhary J, Kinkar Roy R, Chowdhury R, et al. Exploring the hidden potential of a benzothiazole‐based Schiff‐base exhibiting AIE and ESIPT and its activity in pH sensing, intracellular imaging and ultrasensitive & selective detection of aluminium (Al3+). Analyst 2018; 143(15):3741–8.
52 52 Li K, Feng Q, Niu G, Zhang W, Li Y, Kang M, et al. Benzothiazole‐based AIEgen with tunable excited‐state intramolecular proton transfer and restricted intramolecular rotation processes for highly sensitive physiological pH sensing. ACS Sens. 2018; 3(5):920–8.
53 53 Li K, Wang J, Li Y, Si Y, He J, Meng X, et al. Combining two different strategies to overcome the aggregation caused quenching effect in the design of ratiometric fluorescence chemodosimeters for pH sensing. Sens. Actuat. B. 2018; 274:654–61.
54 54 Shuai Z, Peng Q. Organic light‐emitting diodes: theoretical understanding of highly efficient materials and development of computational methodology. Natl. Sci. Rev. 2016; 4(2):224–39.
55 55 Liang J, Tang BZ, Liu B. Specific light‐up bioprobes based on AIEgen conjugates. Chem. Soc. Rev. 2015; 44(10):2798–11.
56 56 Hu Q, Gao M, Feng G, Liu B. Mitochondria‐targeted cancer therapy using a light‐up probe with aggregation‐induced‐emission characteristics. Ang. Chem. Int. Ed. 2014; 53(51):14225–9.
57 57 Chen X, Li Y, Li S, Gao M, Ren L, Tang BZ. Mitochondria‐ and lysosomes‐targeted synergistic chemo‐photodynamic therapy associated with self‐monitoring by dual light‐up fluorescence. Adv. Funct. Mater. 2018; 28(44):1804362.
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59 59 Gao M, Sim CK, Leung CWT, Hu Q, Feng G, Xu F, et al. A fluorescent light‐up probe with AIE characteristics for specific mitochondrial imaging to identify differentiating brown adipose cells. Chem. Commun. 2014; 50(61):8312–5.
60 60 Xu J‐L, Quan Y, Li Q‐Y, Lu H, Wu H, Yin J, et al. Significant emission enhancement of a bola‐amphiphile with salicylaldehyde azine moiety induced by the formation of [2]pseudorotaxane with γ‐cyclodextrin. RSC Adv. 2015; 5(107):88176–80.
61 61 Nunes da Silva R, Costa CC, Santos MJG, Alves MQ, Braga SS, Vieira SI, et al. Fluorescent light‐up probe for the detection of protein aggregates. Chem. Asian J. 2019; 14(6):859–63.
62 62 Gao M, Hu Q, Feng G, Tang BZ, Liu B. A fluorescent light‐up probe with “AIE + ESIPT” characteristics for specific detection of lysosomal esterase. J. Mater. Chem. B. 2014; 2(22):3438–42.
63 63 Hu Q, Gao M, Feng G, Chen X, Liu B. A cell apoptosis probe based on fluorogen with aggregation induced emission characteristics. ACS Appl. Mater. Interf. 2015; 7(8):4875–82.
64 64 Gao M, Hu Q, Feng G, Tomczak N, Liu R, Xing B, et al. A multifunctional probe with aggregation‐induced emission characteristics for selective fluorescence imaging and photodynamic killing of bacteria over mammalian cells. Adv. Health. Mat. 2015; 4(5):659–63.
65 65 Gao M, Wang L, Chen J, Li S, Lu G, Wang L, et al. Aggregation‐induced emission active probe for light‐up detection of anionic surfactants and wash‐free bacterial imaging. Chem. Eur. J. 2016; 22(15):5107–12.
66 66 Leung CWT, Wang Z, Zhao E, Hong Y, Chen S, Kwok RTK, et al. A lysosome‐targeting AIEgen for autophagy visualization. Adv. Health. Mater. 2016; 5(4):427–31.
67 67 Wang Z, Gui C, Zhao E, Wang J, Li X, Qin A, et al. Specific fluorescence probes for lipid droplets based on simple AIEgens. ACS Appl. Mater. Interf. 2016; 8(16):10193–200.
68 68 Kwon JE, Park SY. Advanced organic optoelectronic materials: harnessing excited‐state intramolecular proton transfer (ESIPT) process. Adv. Mater. 2011; 23(32):3615–42.
69 69 Dick B, Ernsting NP. Excited‐state intramolecular proton transfer in 3‐hydroxylflavone isolated in solid argon: fluoroescence and fluorescence‐excitation spectra and tautomer fluorescence rise time. J. Phys. Chem. 1987; 91(16):4261–5.
70 70 Chen X‐T, Xiang Y, Song P‐S, Wei R‐R, Zhou Z‐J, Li K, et al. p‐Carboxyl‐N‐salicylideneanilines: simple but efficient chromophores for one‐dimensional microrods with aggregation‐induced emission enhancement (AIEE) characteristics. J. Lumin. 2011; 131(7):1453–9.
71 71 Cai M, Gao Z, Zhou X, Wang X, Chen S, Zhao Y, et al. A small change in molecular structure, a big difference in the AIEE mechanism. Phys. Chem. Chem. Phys. 2012; 14(15):5289–96.
72 72 Peng L, Zheng Y, Wang X, Tong A, Xiang Y. Photoactivatable aggregation‐induced emission fluorophores with multiple‐color fluorescence and wavelength‐selective activation. Chem. Eur. J. 2015; 21(11):4326–32.
73 73 Wang L, Li Y, You X, Xu K, Feng Q, Wang J, et al. An erasable photo‐patterning material based on a specially designed 4‐(1,2,2‐triphenylvinyl)aniline salicylaldehyde hydrazone aggregation‐induced emission (AIE) molecule. J. Mater. Chem. C. 2017; 5(1):65–72.
74 74 Wei R, Song P, Tong A. Reversible thermochromism of aggregation‐induced emission‐active benzophenone azine based on polymorph‐dependent excited‐state intramolecular proton transfer fluorescence. J. Phys. Chem. C. 2013; 117(7):3467–74.
75 75 Peng L, Wei R, Guo Y, Zheng X, Zheng Y, Ding Y, et al. Tuning emission wavelength of polymorphous crystal via controllable alkyl chain stacking and its vapor‐ and thermo‐responsive fluorescence. Chem. Eur. J. 2019; 25(34):8043–52.
76 76 Chen X, Wei R, Xiang Y, Zhou Z, Li K, Song P, et al. Organic crystalline solids response to piezo/thermo stimulus: donor–acceptor (D–A) attached salicylaldehyde azine derivatives. J. Phys. Chem. C. 2011; 115(29):14353–9.
77 77 Wang X, Song P, Peng L, Tong A, Xiang Y. Aggregation‐induced emission luminogen‐embedded silica nanoparticles containing DNA aptamers for targeted cell imaging. ACS Appl. Mater. Interf. 2016; 8(1):609–16.
78 78 Xu D, Liu M, Zou H, Tian J, Huang H, Wan Q, et al. A new strategy for fabrication of water dispersible and biodegradable fluorescent organic nanoparticles with AIE and ESIPT characteristics and their utilization for bioimaging. Talanta 2017; 174:803–8.
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