Читать книгу Supramolecular Polymers and Assemblies - Andreas Winter - Страница 20

References

Оглавление

1 1 Staudinger, H. (1920). Ber. Dtsch. Chem. Ges. 53: 1073–1085.

2 2 Carothers, W.H. (1931). Chem. Rev. 8: 353–426.

3 3 Schneider, H.‐J. and Strongin, R.M. (2009). Acc. Chem. Res. 42: 1489–1500.

4 4 Shunmugam, R., Gabriel, G.J., Aamer, K.A., and Tew, G.N. (2010). Macromol. Rapid Commun. 31: 784–793.

5 5 Wang, X.‐S., Guerin, G., Wang, H. et al. (2007). Science 317: 644–647.

6 6 Schappacher, M. and Deffieux, A. (2008). Science 319: 512–1515.

7 7 Tang, C.‐B., Lennon, E.M., Fredrickson, G.H. et al. (2008). Science 322: 429–432.

8 8 Ruokolainen, J., Mäkinen, R., Torkkeli, M. et al. (1998). Science 280: 557–560.

9 9 Pochan, D.J., Chen, Z.‐Y., Cui, H.‐G. et al. (2004). Science 306: 94–97.

10 10 Cui, H.‐G., Chen, Z.‐Y., Zhong, S. et al. (2007). Science 317: 647–650.

11 11 Cornelissen, J.J.L.M., Fischer, M., Sommerdijk, N.A.J.M., and Nolte, R.J.M. (1998). Science 280: 1427–1430.

12 12 Fréchet, J.M.J. (2002). Proc. Natl. Acad. Sci. U.S.A. 99: 4782–4787.

13 13 Kato, T., Mizoshita, N., and Kishimoto, K. (2006). Angew. Chem. Int. Ed. 45: 36–68.

14 14 Kato, T., Hirai, Y., Nakaso, S., and Moriyama, M. (2007). Chem. Soc. Rev. 36: 1857–1867.

15 15 Sivakova, S. and Rowan, S.J. (2005). Chem. Soc. Rev. 34: 9–21.

16 16 Pollino, J.M. and Weck, M. (2005). Chem. Soc. Rev. 34: 193–207.

17 17 Weck, M. (2007). Polym. Int. 56: 453–460.

18 18 Percec, V., Dulcey, A.E., Balagurusamy, V.S.K. et al. (2004). Nature 430: 764–768.

19 19 Feldman, K.E., Kade, M.J., de Greef, T.F.A. et al. (2008). Macromolecules 41: 4694–4700.

20 20 Gohy, J.‐F. (2009). Coord. Chem. Rev. 253: 2214–2225.

21 21 Lehn, J.‐M. (1988). Angew. Chem. Int. Ed. Engl. 27: 89–112.

22 22 Lehn, J.‐M. (1990). Angew. Chem. Int. Ed. Engl. 29: 1304–1319.

23 23 Lehn, J.‐M. (1993). Science 260: 1762–1763.

24 24 Lehn, J.‐M. (2002). Polym. Int. 51: 825–839.

25 25 Ciferri, A. (2005). Supramolecular Polymers. New York, NY: Taylor & Francis.

26 26 de Greef, T.F.A., Smulders, M.M.J., Wolffs, M. et al. (2009). Chem. Rev. 109: 5687–5754.

27 27 Brunsveld, L., Folmer, B.J.B., Meijer, E.W., and Sijbesma, R.P. (2001). Chem. Rev. 101: 4071–4098.

28 28 Ciferri, A. (2000). Supramolecular Polymers. New York, NY: Marcel Dekker.

29 29 Fox, J.D. and Rowan, S.J. (2009). Macromolecules 42: 6823–6835.

30 30 Binder, W.H. and Zirbs, R. (2007). Adv. Polym. Sci. 207: 1–78.

31 31 Bouteiller, L. (2007). Adv. Polym. Sci. 207: 79–112.

32 32 Rieth, S., Baddeley, C., and Badjić, J.D. (2007). Soft Matter 3: 137–154.

33 33 de Greef, T.F.A. and Meijer, E.W. (2010). Aust. J. Chem. 63: 596–598.

34 34 Hofmeier, H. and Schubert, U.S. (2005). Chem. Commun.: 2423–2432.

35 35 Hoogenboom, R., Fournier, D., and Schubert, U.S. (2007). Chem. Commun.: 155–162.

36 36 Winter, A. and Schubert, U.S. (2016). Chem. Soc. Rev. 45: 5311–5357.

37 37 Yang, L., Tan, X., Wang, Z., and Zhang, X. (2015). Chem. Rev. 115: 7196–7239.

38 38 Friese, V.A. and Kurth, D.G. (2009). Curr. Opin. Colloid Interface Sci. 14: 81–93.

39 39 Winter, A., Hager, M.D., and Schubert, U.S. (2012). Supramolecular polymers. In: Polymer Science: A Comprehensive Review, vol. 5 (eds. H.‐W. Schmidt and M. Ueda), 269–310. Amsterdam: Elsevier BV.

40 40 Sorrenti, A., Leira‐Iglesias, J., Markvoort, A.J. et al. (2017). Chem. Soc. Rev. 46: 5476–5490.

41 41 Ciferri, A. (2002). Macromol. Rapid Commun. 23: 511–529.

42 42 Odian, G.G. (2004). Principles of Polymerization, 4e. Hoboken, NJ: Wiley‐Interscience.

43 43 Zhao, D.‐H. and Moore, J.S. (2003). Org. Biomol. Chem. 1: 3471–3491.

44 44 Flory, P.J. (1953). Principles of Polymer Chemistry. Ithaca, NY: Cornell University Press.

45 45 Flory, P.J. (1946). Chem. Rev. 39: 137–197.

46 46 Ueberreier, K. and Engel, M. (1977). Makromol. Chem. 178: 2257–2260.

47 47 Chiper, M., Meier, M.A.R., Wouters, D. et al. (2008). Macromolecules 41: 2771–2777.

48 48 Knoben, W., Besseling, N.A.M., and Cohen Stuart, M.A. (2006). Macromolecules 39: 2643–2653.

49 49 Knoben, W., Besseling, N.A.M., and Cohen Stuart, M.A. (2007). J. Chem. Phys. 126, Article ID: 2409296.

50 50 Dudowicz, J., Freed, K.F., and Douglas, J.F. (2003). J. Chem. Phys. 119, Article ID: 12645.

51 51 Douglas, J.F., Dudowicz, J., and Freed, K.F. (2008). J. Chem. Phys. 128, Article ID: 224901.

52 52 Greer, S.C. (2002). Annu. Rev. Phys. Chem. 53: 173–200.

53 53 Greer, S.C. (1998). J. Phys. Chem. B 102: 5413–5422.

54 54 Greer, S.C. (1996). Adv. Chem. Phys. 94: 261–296.

55 55 Dainton, F.S. and Ivin, K.J. (1948). Nature 162: 705–707.

56 56 Dainton, F.S. and Ivin, K.J. (1958). Q. Rev. Chem. Soc. 12: 61–92.

57 57 van der Schoot, P. (2005). Theory of supramolecular polymerization. In: Supramolecular Polymers (ed. A. Ciferri), 77–106. London: Taylor & Francis.

58 58 Flory, P.J. (1942). J. Chem. Phys. 10: 51–61.

59 59 Huggins, M.L. (1942). Ann. N.Y. Acad. Sci. 43: 1–32.

60 60 Lou, X.‐W., Zhu, Q.‐S., van Dongeren, J.L.J., and Meijer, E.W. (2004). J. Chromatogr. A 1029: 67–75.

61 61 Meier, M.A.R., Hofmeier, H., Abeln, C.H. et al. (2006). e‐Polymers 6, Article ID: 016.

62 62 Winnik, M.A. (1981). Chem. Rev. 81: 491–524.

63 63 Semlyen, J.A. (2000). Cyclic Polymers. Dordrecht: Kluwer Academic.

64 64 Kuchanov, S., Slot, H., and Stroeks, A. (2004). Prog. Polym. Sci. 29: 563–633.

65 65 Kricheldorf, H.R. and Schwarz, G. (2003). Macromol. Rapid Commun. 24: 359–381.

66 66 Scott, D.W. (1946). J. Am. Chem. Soc. 68: 2294–2298.

67 67 Brown, J.F. Jr., and Slusarczuk, G.M.J. (1965). J. Am. Chem. Soc. 87: 931–932.

68 68 Carmichael, J.B. and Winger, R. (1965). J. Polym. Sci., Part A: Gen. Pap. 3: 971–984.

69 69 Flory, P.J. and Semlyen, J.A. (1966). J. Am. Chem. Soc. 88: 3209–3212.

70 70 Hodge, P. and Kamau, S.D. (2003). Angew. Chem. Int. Ed. 42: 2412–2414.

71 71 Gee, G. (1952). Trans. Faraday Soc. 48: 515–526.

72 72 Tobolsky, A.V. and Eisenberg, A. (1959). J. Am. Chem. Soc. 81: 780–782.

73 73 Steudel, R., Mäusle, H.‐J., Rosenbauer, D. et al. (1981). Angew. Chem. Int. Ed. Engl. 20: 394–395.

74 74 Kuhn, W. (1934). Colloid. Polym. Sci. 68: 2–15.

75 75 Flory, P.J. (1969). Statistical Mechanics of Chain Molecules. New York: Wiley‐Interscience.

76 76 Morawetz, H. and Goodman, N. (1970). Macromolecules 3: 699–700.

77 77 Crothers, D.M. and Metzger, H. (1972). Immunochemistry 9: 341–357.

78 78 Zhou, H.‐X. (2001). J. Phys. Chem. B 105: 6763–6766.

79 79 Zhou, H.‐X. (2003). J. Mol. Biol. 329: 1–8.

80 80 Mandolini, L. (1987). Adv. Phys. Org. Chem. 22: 1–111.

81 81 Page, M.I. and Jencks, W.P. (1971). Proc. Natl. Acad. Sci. U.S.A. 68: 1678–1683.

82 82 Page, M.I. (1973). Chem. Soc. Rev. 2: 295–323.

83 83 Ercolani, G., Mandolini, L., Mencarelli, P., and Roelens, S. (1993). J. Am. Chem. Soc. 115: 3901–3908.

84 84 Galli, C. and Mandolini, L. (2000). Eur. J. Org. Chem. 2000: 3117–3125.

85 85 Kirby, A.J. (2008). Adv. Phys. Org. Chem. 17: 183–278.

86 86 Hamacek, J., Borkovec, M., and Piguet, C. (2006). Dalton Trans.: 1473–1490.

87 87 Jacobsen, H. and Stockmayer, W.H. (1950). J. Chem. Phys. 18: 1600–1606.

88 88 Chan, H.‐S. and Dill, K.A. (1989). J. Chem. Phys. 90: 492–509.

89 89 Hiley, B.J. and Sykes, M.F. (1961). J. Chem. Phys. 34: 1531–1537.

90 90 Martin, J.L., Sykes, M.F., and Hioe, F.T. (1967). J. Chem. Phys. 46: 3478–3481.

91 91 Flory, P.J., Suter, U.W., and Mutter, M. (1976). J. Am. Chem. Soc. 98: 5733–5739.

92 92 Chen, C.‐C. and Dormidontova, E.E. (2004). Macromolecules 37: 3905–3917.

93 93 Harris, R.E. (1970). J. Phys. Chem. 74: 3102–3111.

94 94 Hodge, P. and Colquhoun, H.M. (2005). Polym. Adv. Technol. 16: 84–94.

95 95 Cantrill, S.J., Youn, G.J., Stoddard, J.F., and Williams, D.J. (2001). J. Org. Chem. 66: 6857–6872.

96 96 Ashton, P.R., Baxter, I., Cantrill, S.J. et al. (1998). Angew. Chem. Int. Ed. Engl. 37: 1294–1297.

97 97 Ashton, P.R., Parsons, I.W., Raymo, F.M. et al. (1998). Angew. Chem. Int. Ed. Engl. 37: 1913–1916.

98 98 Abed, S., Boileau, S., and Bouteiller, L. (2000). Macromolecules 33: 8479–8487.

99 99 Bielejewska, A.G., Marjo, C.E., Prins, L.J. et al. (2001). J. Am. Chem. Soc. 123: 7518–7533.

100 100 Zhao, D.‐H. and Moore, J.S. (2003). J. Am. Chem. Soc. 125: 16294–16299.

101 101 Zhao, D.‐H. and Yue, K. (2008). Macromolecules 41: 4029–4036.

102 102 Ferrone, F.A. (1999). Analysis of protein aggregation kinetics. In: Methods of Enzymology, vol. 309 (ed. R. Wetzel), 256–273. New York, NY: Academic Press.

103 103 Katshchiev, D. (2000). Nucleation: Basic Theory with Applications. Oxford: Butterworth‐Heinemann.

104 104 Wolffs, M., Korevaar, P.A., Jonkheijm, P. et al. (2008). Chem. Commun.: 4613–4615.

105 105 Cabaleiro‐Lago, C., Quinlan‐Pluck, F., Lynch, I. et al. (2008). J. Am. Chem. Soc. 130: 15437–15443.

106 106 Linse, S., Cabaleiro‐Lago, C., Xue, W.‐F. et al. (2007). Proc. Natl. Acad. Sci. U.S.A. 104: 8691–8696.

107 107 Rogers, S.S., Krebs, M.R.H., Bromley, E.H.C. et al. (2006). Biophys. J. 90: 1043–1054.

108 108 Powers, E.T. and Powers, D.L. (2006). Biophys. J. 91: 122–132.

109 109 Firestone, M.P., De Levie, R., and Rangarajan, S.K. (1983). J. Theor. Biol. 104: 535–552.

110 110 Mukerjee, P. (1972). J. Phys. Chem. 76: 565–570.

111 111 Mukerjee, P. (1967). Adv. Colloid Interface Sci. 1: 242–275.

112 112 Mukerjee, P., Mysels, K., and Kapauan, P. (1967). J. Phys. Chem. 71: 4166–4175.

113 113 Mukerjee, P. (1969). J. Phys. Chem. 73: 2054–2056.

114 114 Mukerjee, P. (1974). J. Pharm. Sci. 63: 972–981.

115 115 Tanford, C. (1974). J. Phys. Chem. 78: 2469–2479.

116 116 Yokozawa, T., Asai, T., Sugi, R. et al. (2000). J. Am. Chem. Soc. 122: 8313–8314.

117 117 Yokozawa, T. and Yokoyama, A. (2007). Prog. Polym. Sci. 32: 147–172.

118 118 Yokoyama, A. and Yokozawa, T. (2007). Macromolecules 40: 4093–4101.

119 119 Metselaar, G.A., Cornelissen, J.J.L.M., Rowan, A.E., and Nolte, R.J.M. (2005). Angew. Chem. Int. Ed. 44: 1990–1993.

120 120 Nakano, T., Okamoto, Y., and Hatada, K. (1992). J. Am. Chem. Soc. 114: 1318–1329.

121 121 Iwakura, Y., Uno, K., and Oya, M. (1967). J. Polym. Sci., Part A1: Polym. Chem. 5: 2867–2874.

122 122 Komoto, T., Akaishi, T., Oya, M., and Kawai, T. (1972). Makromol. Chem. 154: 151–159.

123 123 Ikeda, M., Nobori, T., Schmutz, M., and Lehn, J.‐M. (2005). Chem. Eur. J. 11: 662–668.

124 124 Tomović, Ž., van Dongen, J., George, S.J. et al. (2007). J. Am. Chem. Soc. 129: 16190–16196.

125 125 Kaiser, T.E., Stepanenko, V., and Würthner, F. (2009). J. Am. Chem. Soc. 131: 6719–6732.

126 126 Kano, K., Fukuda, K., Wakami, H. et al. (2000). J. Am. Chem. Soc. 122: 7494–7502.

127 127 Hong, D.‐J., Lee, E., and Lee, M. (2007). Chem. Commun.: 1801–1803.

128 128 Mayoral, M.J., Rest, C., Stepanenko, V. et al. (2013). J. Am. Chem. Soc. 135: 2148–2151.

129 129 Wang, X., Han, Y., Liu, Y. et al. (2017). Angew. Chem. Int. Ed. 56: 12466–12470.

130 130 Arnaud, A., Belleney, J., Boué, F. et al. (2004). Angew. Chem. Int. Ed. 43: 1718–1721.

131 131 Horne, W.S., Stout, C.D., and Ghadiri, M.R. (2003). J. Am. Chem. Soc. 125: 9372–9376.

132 132 Mukhopadhyay, R.D. and Ajayaghosh, A. (2015). Science 349: 241–242.

133 133 Besenius, P., Portale, G., Bomans, P.H.H. et al. (2010). Proc. Natl. Acad. Sci. U.S.A. 107: 17888–17893.

134 134 Ogi, S., Sugiyasu, K., Manna, S. et al. (2014). Nat. Chem. 6: 188.

135 135 Gilroy, J.B., Gädt, T., Whittle, G.R. et al. (2010). Nat. Chem. 2: 566–570.

136 136 Ulbricht, C., Beyer, B., Friebe, C. et al. (2009). Adv. Mater. 21: 4418–4441.

137 137 Roy, N., Buhler, E., and Lehn, J.‐M. (2013). Polym. Chem. 4: 2949–2957.

138 138 Yang, L., Liu, X., Tan, X. et al. (2014). Polym. Chem. 5: 323–326.

139 139 Li, S.‐L., Xiao, T.‐X., Lin, C., and Wang, L.‐Y. (2012). Chem. Soc. Rev. 41: 5950–5968.

140 140 Huang, Z., Yang, L., Liu, Y. et al. (2014). Angew. Chem. Int. Ed. 53: 5351–5355.

141 141 Chen, H., Huang, Z., Wu, H. et al. (2017). Angew. Chem. Int. Ed. 56: 16575–16578.

142 142 Sorrenti, A., Leira‐Iglesias, J., Sato, A., and Hermans, T.M. (2017). Nat. Commun. 8: 15899.

143 143 Mishra, A., Korlepara, D.B., Kumar, M. et al. (2018). Nat. Commun. 9: 1295.

144 144 Leira‐Iglesias, J., Tassoni, A., Adachi, T. et al. (2018). Nat. Nanotechnol. 13: 1021–1027.

145 145 van Rossum, S.A.P., Tena‐Solsona, M., van Esch, J.H. et al. (2017). Chem. Soc. Rev. 46: 5519–5535.

146 146 Alberts, B., Johnson, A., Lewis, J. et al. (2014). Molecular Biology of the Cell, 6e. New York: Norton & Company.

147 147 Yin, Z., Song, G., Jiao, Y. et al. (2019). CCS Chem. 1: 335–342.

148 148 Aida, T., Meijer, E.W., and Stupp, S.I. (2012). Science 335: 813–817.

Supramolecular Polymers and Assemblies

Подняться наверх