Handbook of Aggregation-Induced Emission, Volume 3

Здесь есть возможность читать онлайн «Handbook of Aggregation-Induced Emission, Volume 3» — ознакомительный отрывок электронной книги совершенно бесплатно, а после прочтения отрывка купить полную версию. В некоторых случаях можно слушать аудио, скачать через торрент в формате fb2 и присутствует краткое содержание. Жанр: unrecognised, на английском языке. Описание произведения, (предисловие) а так же отзывы посетителей доступны на портале библиотеки ЛибКат.

Handbook of Aggregation-Induced Emission, Volume 3: краткое содержание, описание и аннотация

Предлагаем к чтению аннотацию, описание, краткое содержание или предисловие (зависит от того, что написал сам автор книги «Handbook of Aggregation-Induced Emission, Volume 3»). Если вы не нашли необходимую информацию о книге — напишите в комментариях, мы постараемся отыскать её.

The third volume of the ultimate reference on the science and applications of aggregation-induced emission  The Handbook of Aggregation-Induced Emission In 
the editors address the applications of AIEgens in several fields, including bio-imaging, fluorescent molecular switches, electrochromic materials, regenerative medicine, detection of organic volatile contaminants, hydrogels, and organogels. Topics covered include: 
AIE-active emitters and their applications in OLEDs, and circularly polarized luminescence of aggregation-induced emission materials AIE polymer films for optical sensing and energy harvesting, aggregation-induced electrochemiluminescence, and mechanoluminescence materials with aggregation-induced emission Dynamic super-resolution fluorescence imaging based on photoswitchable fluorescent spiropyran Visualization of polymer microstructures Self-assembly of micelle and vesicles New strategies for biosensing and cell imaging Perfect for academic researchers working on aggregation-induced emission, this set of volumes is also ideal for professionals and students in the fields of photophysics, photochemistry, materials science, optoelectronic materials, synthetic organic chemistry, macromolecular chemistry, polymer science, and biological sciences.

Handbook of Aggregation-Induced Emission, Volume 3 — читать онлайн ознакомительный отрывок

Ниже представлен текст книги, разбитый по страницам. Система сохранения места последней прочитанной страницы, позволяет с удобством читать онлайн бесплатно книгу «Handbook of Aggregation-Induced Emission, Volume 3», без необходимости каждый раз заново искать на чём Вы остановились. Поставьте закладку, и сможете в любой момент перейти на страницу, на которой закончили чтение.

Тёмная тема
Сбросить

Интервал:

Закладка:

Сделать

30 30 Pucci A, Ruggeri G, Bronco S, Signori F, Donati F, Bernabò M, et al. (2011). Colour responsive smart polymers and biopolymers films through nanodispersion of organic chromophores and metal particles. Progr. Org. Coat. 72(1–2): 21–5.

31 31 Th F and Kasper K (1954). Ein konzentrationsumschlag der fluoreszenz. Z. Phys. Chem. 1(5–6): 275–7.

32 32 Yang J, Chi Z, Zhu W, Tang BZ, Li Z (2019). Aggregation‐induced emission: a coming‐of‐age ceremony at the age of eighteen. Sci. Chin. Chem. 62(9): 1090–8.

33 33 Gu J, Qin A, Tang BZ (2019). Polymers with aggregation‐induced emission characteristics. In: Tang Y, Tang BZ, editors. Principles and Applications of Aggregation‐Induced Emission. Cham: Springer International Publishing. p. 77–108.

34 34 Qi J, Chen C, Ding D, Tang BZ (2018). Aggregation‐induced emission luminogens: union is strength, gathering illuminates healthcare. Adv. Healthcare Mater. 7(20): 1800477.

35 35 Xu S, Duan Y, Liu B (2020). Precise molecular design for high‐performance luminogens with aggregation‐induced emission. Adv. Mater. 32(1): 1903530.

36 36 Chen Y, Lam JWY, Kwok RTK, Liu B, Tang BZ (2019). Aggregation‐induced emission: fundamental understanding and future developments. Mater. Hor. 6(3): 428–33.

37 37 Kenry, Duan Y, Liu B (2018). Recent advances of optical imaging in the second near‐infrared window. Adv. Mater. 30(47): 1802394.

38 38 Hu F, Xu S, Liu B (2018). Photosensitizers with aggregation‐induced emission: materials and biomedical applications. Adv. Mater. 30(45): 1801350.

39 39 Ong KH, Liu B (2017). Applications of fluorogens with rotor structures in solar cells. Molecules 22(6): 897.

40 40 Liu B (2016). Aggregation‐induced emission: a new research frontier. Small 12(47): 6427–8.

41 41 Hu R, Qin A, Tang BZ (2020). AIE polymers: synthesis and applications. Progr. Polym. Sci. 100: 101176.

42 42 Pucci A (2018). Luminescent solar concentrators based on aggregation induced emission. Israel J. Chem. 58(8): 837–44.

43 43 Haidekker MA, Brady TP, Lichlyter D, Theodorakis EA (2005). Effects of solvent polarity and solvent viscosity on the fluorescent properties of molecular rotors and related probes. Bioorg. Chem. 33(6): 415–25.

44 44 Haidekker MA, Theodorakis EA (2010). Environment‐sensitive behavior of fluorescent molecular rotors. J. Biol. Eng. 4(11). https://doi.org/10.1186/1754‐1611‐4‐11.

45 45 Mustafic A, Huang H‐M, Theodorakis EA, Haidekker MA (2010). Imaging of flow patterns with fluorescent molecular rotors. J. Fluoresc. 20(5): 1087–98.

46 46 Koenig M, Bottari G, Brancato G, Barone V, Guldi DM, Torres T (2013). Unraveling the peculiar modus operandi of a new class of solvatochromic fluorescent molecular rotors by spectroscopic and quantum mechanical methods. Chem. Sci. 4(6): 2502–11.

47 47 Haidekker MA, Akers W, Lichlyter D, Brady TP, Theodorakis EA (2005). Sensing of flow and shear stress using fluorescent molecular rotors. Sens. Lett. 3(1–1): 42–8.

48 48 Zhou F, Shao J, Yang Y, Zhao J, Guo H, Li X, et al. (2011). Molecular rotors as fluorescent viscosity sensors: molecular design, polarity sensitivity, dipole moments changes, screening solvents, and deactivation channel of the excited states. Eur. J. Org. Chem. 2011(25): 4773–87, S/1–S/70.

49 49 Martini G, Martinelli E, Ruggeri G, Galli G, Pucci A (2015). Julolidine fluorescent molecular rotors as vapour sensing probes in polystyrene films. Dye. Pigm. 113(0): 47–54.

50 50 Calvino C, Neumann L, Weder C, Schrettl S (2017). Approaches to polymeric mechanochromic materials. J. Polym. Sci. A Polym. Chem. 55(4): 640–52.

51 51 Herbert KM, Schrettl S, Rowan SJ, Weder C (2017). 50th anniversary perspective: solid‐state multistimuli, multiresponsive polymeric materials. Macromolecules 50(22): 8845–70.

52 52 Seeboth A, Loetzsch D, Ruhmann R, Muehling O (2014). Thermochromic polymers‐function by design. Chem. Rev. 114(5): 3037–68.

53 53 Minei P, Pucci A (2016). Fluorescent vapochromism in synthetic polymers. Polym. Int. 65(6): 609–20.

54 54 Pucci A (2019). Mechanochromic fluorescent polymers with aggregation‐induced emission features. Sensors (Swit.) 19(22).

55 55 La DD, Bhosale SV, Jones LA, Bhosale SV (2018). Tetraphenylethylene‐based AIE‐active probes for sensing applications. ACS Appl. Mater. Interf. 10(15): 12189–216.

56 56 Iasilli G, Battisti A, Tantussi F, Fuso F, Allegrini M, Ruggeri G, et al. (2014). Aggregation‐induced emission of tetraphenylethylene in styrene‐based polymers. Macromol. Chem. Phys. 215(6): 499–506.

57 57 Taniguchi R, Yamada T, Sada K, Kokado K (2014). Stimuli‐responsive fluorescence of AIE elastomer based on PDMS and tetraphenylethene. Macromolecules 47(18): 6382–8.

58 58 Wu Y, Hu J, Huang H, Li J, Zhu Y, Tang B, et al. (2014). Memory chromic polyurethane with tetraphenylethylene. J. Polym. Sci. B Polym. Phys. 52(2): 104–10.

59 59 Robb MJ, Li W, Gergely RCR, Matthews CC, White SR, Sottos NR, et al. (2016). A robust damage‐reporting strategy for polymeric materials enabled by aggregation‐induced emission. ACS Cent. Sci. 2(9): 598–603.

60 60 Caruso MM, Blaiszik BJ, Jin H, Schelkopf SR, Stradley DS, Sottos NR, et al. (2010). Robust, double‐walled microcapsules for self‐healing polymeric materials. ACS Appl. Mater. Interf. 2(4): 1195–9.

61 61 Song YK, Kim B, Lee TH, Kim JC, Nam JH, Noh SM, et al. (2017). Fluorescence detection of microcapsule‐type self‐healing, based on aggregation‐induced emission. Macromol. Rapid Commun. 38(6): 1600657.

62 62 Calvino C, Guha A, Weder C, Schrettl S (2018). Self‐calibrating mechanochromic fluorescent polymers based on encapsulated excimer‐forming dyes. Adv. Mater. 30(19): 1704603.

63 63 Song YK, Kim B, Lee TH, Kim SY, Kim JC, Noh SM, et al. (2018). Monitoring fluorescence colors to separately identify cracks and healed cracks in microcapsule‐containing self‐healing coating. Sens. Actuat. B Chem. 257: 1001–8.

64 64 Zhao W, He Z, Peng Q, Lam JWY, Ma H, Qiu Z, et al. (2018). Highly sensitive switching of solid‐state luminescence by controlling intersystem crossing. Nat. Commun. 9(1): 3044.

65 65 Qiu Z, Zhao W, Cao M, Wang Y, Lam JWY, Zhang Z, et al. (2018). Dynamic visualization of stress/strain distribution and fatigue crack propagation by an organic mechanoresponsive AIE luminogen. Adv. Mat. 30(44): 1803924.

66 66 Carlotti M, Gullo G, Battisti A, Martini F, Borsacchi S, Geppi M, et al. (2015). Thermochromic polyethylene films doped with perylene chromophores: experimental evidence and methods for characterization of their phase behaviour. Polym. Chem. 6(21): 4003–12.

67 67 Sorgi C, Martinelli E, Galli G, Pucci A (2018). Julolidine‐labelled fluorinated block copolymers for the development of two‐layer films with highly sensitive vapochromic response. Sci. Chin. Chem. 61(8): 947–56.

68 68 Bao S, Wu Q, Qin W, Yu Q, Wang J, Liang G, et al. (2015). Sensitive and reliable detection of glass transition of polymers by fluorescent probes based on AIE luminogens. Polym. Chem. 6(18): 3537–42.

69 69 Qiu Z, Chu EKK, Jiang M, Gui C, Xie N, Qin W, et al. (2017). A simple and sensitive method for an important physical parameter: reliable measurement of glass transition temperature by AIEgens. Macromolecules 50(19): 7620–7.

70 70 Han T, Gui C, Lam JWY, Jiang M, Xie N, Kwok RTK, et al. (2017). High‐contrast visualization and differentiation of microphase separation in polymer blends by fluorescent AIE probes. Macromolecules 50(15): 5807–15.

71 71 Wu J‐L, Zhang C, Qin W, Quan D‐P, Ge M‐L, Liang G‐D (2019). Thermoresponsive fluorescent semicrystalline polymers decorated with aggregation induced emission luminogens. Chin. J. Polym. Sci. 37(4): 394–400.

Читать дальше
Тёмная тема
Сбросить

Интервал:

Закладка:

Сделать

Похожие книги на «Handbook of Aggregation-Induced Emission, Volume 3»

Представляем Вашему вниманию похожие книги на «Handbook of Aggregation-Induced Emission, Volume 3» списком для выбора. Мы отобрали схожую по названию и смыслу литературу в надежде предоставить читателям больше вариантов отыскать новые, интересные, ещё непрочитанные произведения.


Отзывы о книге «Handbook of Aggregation-Induced Emission, Volume 3»

Обсуждение, отзывы о книге «Handbook of Aggregation-Induced Emission, Volume 3» и просто собственные мнения читателей. Оставьте ваши комментарии, напишите, что Вы думаете о произведении, его смысле или главных героях. Укажите что конкретно понравилось, а что нет, и почему Вы так считаете.

x