Chemical Research in Chinese Universities ›› 2022, Vol. 38 ›› Issue (3): 653-670.doi: 10.1007/s40242-022-2080-3
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GAO Huimin, SHI Rui, ZHU Youliang, QIAN Hujun and LU Zhongyuan
Received:
2022-03-09
Revised:
2022-04-05
Online:
2022-06-01
Published:
2022-05-26
Contact:
QIAN Hujun, LU Zhongyuan
E-mail:hjqian@jlu.edu.cn;luzhy@jlu.edu.cn
Supported by:
GAO Huimin, SHI Rui, ZHU Youliang, QIAN Hujun and LU Zhongyuan. Coarse-grained Dynamics Simulation in Polymer Systems: from Structures to Material Properties[J]. Chemical Research in Chinese Universities, 2022, 38(3): 653-670.
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[1] Staudinger H., Ber. Dtsch. Chem. Ges., 1920, 53, 1073 [2] Anguita J. V., Smith C. T. G., Stute T., Funke M., Delkowski M., Silva S. R. P., Nat. Mater., 2020, 19, 317 [3] Taub A., De Moor E., Luo A., Matlock D. K., Speer J. G., Vaidya U., Annu. Rev. Mater. Res., 2019, 49, 327 [4] Tran H., Feig V. R., Liu K., Zheng Y., Bao Z. N., Macromolecules, 2019, 52, 3965 [5] Charles A. P. R., Jin T. Z., Mu R., Wu Y., Compr. Rev. Food Sci. Food Saf., 2021, 20, 6027 [6] Pfitzner A. K., Moser von Filseck J., Roux A., Trends Cell Biol., 2021, 31, 856 [7] Zhao X. H., Chen X. Y., Yuk H., Lin S. T., Liu X. Y., Parada G., Chem. Rev., 2021, 121, 4309 [8] Rubinstein M., Colby R. H., Polymer Physics, Oxford University Press, New York, 2003 [9] Singh C., Ghorai P. K., Horsch M. A., Jackson A. M., Larson R. G., Stellacci F., Glotzer S. C., Phys. Rev. Lett., 2007, 99, 226106 [10] Zhu G. L., Huang Z. H., Xu Z. Y., Yan L.T., Acc. Chem. Res., 2018, 51, 900 [11] Gao H. M., Liu H., Qian H. J., Jiao G. S., Lu Z. Y., Phys. Chem. Chem. Phys., 2018, 20, 1381 [12] Gao H. M., Li B., Zhang R., Sun Z. Y., Lu Z. Y., J. Chem. Phys., 2020, 152, 094905 [13] Li Z. Q, Zhu Y. L., Niu W. W., Yang X., Jiang Z. Y., Lu Z. Y., Liu X. K., Sun J. Q., Adv. Mater., 2021, 33, 2101498 [14] Zhu Y. L., Lu Z. Y., Acta Polymerica Sinica, 2021, 52, 884 [15] Ananth N., Annu. Rev. Phys. Chem., 2022, 73, 14.1 [16] Chen P. Y., Yang Y., Dong B. J., Huang Z. H., Zhu G. L., Cao Y. F., Yan L. T., Macromolecules, 2017, 50, 2078 [17] Xu G. X., Huang Z. H., Chen P. Y., Cui T. Q., Zhang X. H., Miao B., Yan L. T., Small, 2017, 13, 1603155 [18] Woolfson M. M., Pert G. J., An Introduction to Computer Simulation, Oxford University Press, Oxford, 1999 [19] Allen M. P., Tildesley D. J., Computer Simulation of Liquid, Oxford University Press, New York, 1989 [20] Nekovee M., Coveney P. V., Chen H. D., Boghosian B. M., Phys. Rev. E, 2000, 62, 8282 [21] Shan X. W., Chen H. D., Phys. Rev. E, 1994, 49, 2941 [22] Usta O. B., Butler J. E., Ladd A. J. C., Phys. Fluids, 2006, 18, 031703 [23] Xu A. G., Europhys. Lett., 2005, 69, 214 [24] Frenkel D., Smit B., Understanding Molecular Simulation:From Algorithms to Applications, Academic Press, New York, 2001 [25] Rapaport D. C., The Art of Molecular Dynamics Simulation, Cambridge University Press, New York, 2004 [26] Hu T., Wang C. H., Wang M. T., Li C. M., Guo, C. X., ACS Catal., 2021, 11, 14417 [27] Metropolis N., Rosenbluth A. W., Rosenbluth M. N., Teller A. H., Teller E., J. Chem. Phys., 1953, 21, 1087 [28] Wu Z. H., Kalogirou A., de Nicola A., Milano G., Mueller-Plathe F., J. Comput. Chem., 2021, 42, 6 [29] Kubo A., Albin, J. M., Umeno Y., Polymer, 2019, 177, 84 [30] Xing J. Y., Li S., Ma L. J., Gao H. M., Liu H., Lu Z. Y., J. Chem. Phys., 2021, 154, 184903 [31] Ge Z. H., Guan Z., He Y. N., Comput. Math. Appl., 2018, 76, 393 [32] Bian P. L., Schmauder S., Qing H., Compos. Struct., 2020, 245, 112337 [33] Cao Y. D., Romero J., Olson J. P., Degroote M., Johnson P. D., Kieferová M., Kivlichan I. D., Menke T., Peropadre B., Sawaya N. P. D., Sim S., Veis L., Aspuru-Guzik A., Chem. Rev., 2019, 119, 10856 [34] Prezhdo O. V., Acc. Chem. Res., 2021, 54, 4239 [35] Ilie I. M., Caflisch A., Chem. Rev., 2019, 119, 6956 [36] Hsu H. P., Kremer K., J. Chem. Phys., 2019, 150, 091101 [37] Bailey M. H. J., Wilson M., Comput. Struct. Biotechnol. J., 2021, 19, 1253 [38] Hagita K., Akutagawa K., Tominaga T., Jinnai H., Soft Matter, 2019, 15, 926 [39] Nébouy M., Morthomas J., Fusco C., Baeza G. P., Chazeau L., Macromolecules, 2020, 53, 3847 [40] Tasche J., Sabattié E. F. D., Thompson R. L., Campana M., Wilson M. R., Macromolecules, 2020, 53, 2299 [41] Wen C. Y., Odle R., Cheng S. F., Macromolecules, 2021, 54, 143 [42] Joshi S. Y., Deshmukh S. A., Mol. Simulat., 2021, 47, 786 [43] Wang Y. L., Li Z. W., Liu H., Lu Z. Y., Prog. Phys., 2011, 31, 1 [44] Wang J. H., Han Y. F., Xu Z. Y., Yang X. Z., Ramakrishna S., Liu Y., Macromol. Mater. Eng., 2021, 306, 2000724 [45] Bianco V., Locatelli E., Malgaretti P., Phys. Rev. Lett., 2018, 121, 217802 [46] Schulz M., Dittmann J., Böl M., J. Mech. Phys. Solids, 2019, 130, 101 [47] Müller M., Daoulas K. C., Phys. Rev. Lett., 2011, 107, 227801 [48] Zhao Y., De Nicola A., Kawakatsu T., Milano G., J. Comput. Chem., 2012, 33, 868 [49] Ercolessi F., Adams J. B., Europhysics Lett., 1994, 26, 583 [50] Izvekov S., Parrinello M., Burnham C. J., Voth G. A., J. Chem. Phys., 2004, 120, 10896 [51] Shell M. S., J. Chem. Phys., 2008, 129, 144108 [52] Izvekov S., Voth G. A., J. Phys. Chem. B, 2005, 109, 2469 [53] Lyubartsev A. P., Naômé A., Vercauteren D. P., Laaksonen A., J. Chem. Phys., 2015, 143, 243120 [54] Reith D., Pütz M., Müller-Plathe F., J. Comput. Chem., 2003, 24, 1624 [55] Marrink S. J., de Vries A. H., Mark A. E., J. Phys. Chem. B, 2004, 108, 750 [56] Marrink S. J., Tieleman D. P., Chem. Soc. Rev., 2013, 42, 6801 [57] Deichmann G., van der Vegt N. F. A., J. Chem. Phys., 2018, 149, 244114 [58] Hoogerbrugge P. J., Koelman J. M. V. A., Europhys. Lett., 1992, 19, 155 [59] Español P., Warren P., Europhys. Lett., 1995, 30, 191 [60] Groot R. D., Warren P. B., J. Chem. Phys., 1997, 107, 4423 [61] Young C. D., Sing C. E., J. Chem. Phys., 2019, 151, 124907 [62] Lang P., Frey E., Nat. Commun., 2018, 9, 494 [63] Lamura A., Winkler R. G., Gompper G., J. Chem. Phys., 2021, 154, 224901 [64] Milano G., Kawakatsu T., J. Chem. Phys., 2009, 130, 214106 [65] Zhu Y. L., Lu Z. Y., Milano G., Shi A. C., Sun Z. Y., Phys. Chem. Chem. Phys., 2016, 18, 9799 [66] Kolli H. B., de Nicola A., Bore S. L., Schafer K., Diezemann G., Gauss J., Kawakatsu T., Lu Z. Y., Zhu Y. L., Milano G., Cascella M., J. Chem. Theory Comput., 2018, 14, 4928 [67] De Nicola A., Soares T. A., Santos D. E. S., Bore S. L., Sevink G. J. A., BBA-General Subjects, 2021, 1865, 129570 [68] Wu Z. H., Milano G., Müller-Plathe F., J. Chem. Theory Comput., 2021, 17, 474 [69] Zhu Y. L., Liu H., Li Z. W., Qian H. J., Milano G., Lu Z. Y., J. Comput. Chem., 2013, 34, 2197 [70] Zhu Y. L., Pan D., Li Z. W., Liu H., Qian H. J., Zhao Y., Lu Z. Y., Sun Z. Y., Mol. Phys., 2018, 116, 1065 [71] Chen T., Qian H. J., Zhu Y. L., Lu Z. Y., Macromolecules, 2015, 48, 2751 [72] Niu W. W., Zhu Y. L., Wang R., Lu Z. Y., Liu X. K., Sun J. Q., ACS Appl. Mater. Interfaces, 2020, 12, 30805 [73] Gao H. M., Zhao L., Liu K., Lu Z. Y., J. Phys. Chem. Lett., 2021, 12, 2340 [74] Liu H., Zhu Y. L., Lu Z. Y., Müller-Plathe F., J. Comput. Chem., 2016, 37, 2634 [75] Li Z. W., Zhu Y. L., Lu Z. Y., Sun Z. Y., Soft Matter, 2016, 12, 741 [76] Li Z. W., Zhu Y. L., Lu Z. Y., Sun Z. Y., Soft Matter, 2018, 14, 7625 [77] Chen L. J., Qian H. J., Lu Z. Y., Li Z. S., Sun C. C., J. Phys. Chem. B, 2006, 110, 24093 [78] Xu D., Ni C. Y., Zhu Y. L., Lu Z. Y., Xue Y. H., Liu H., J. Chem. Phys., 2018, 148, 024901 [79] Stuart M. A. C., Huck W. T. S., Genzer J., Müller M., Ober C., Stamm M., Sukhorukov G. B., Szleifer I., Tsukruk V. V., Urban M., Winnik F., Zauscher S., Luzinov I., Minko S., Nat. Mater., 2010, 9, 101 [80] Mai Y. Y., Eisenberg A., Chem. Soc. Rev., 2012, 41, 5969 [81] Huang C. H., Zhu Y. Y., Man X. K., Phys. Rep.,2021, 932, 1 [82] Li L., Liu X., Pal S., Wang S. L., Ober C. K., Giannelis E. P., Chem. Soc. Rev.,2017, 46, 4855 [83] Lépinay S., Ianoul A., Albert J., Talanta,2014, 128, 401 [84] Paloni J. M., Olsen B. D., ACS Appl. Polym. Mater.,2020, 2, 1114 [85] Yao C., Tang J. P., Zhu C. X., Yang S., Tang H., Dong L. X., Zhang C. Z., Tang Q. Y., Liu P. F., Yang D. Y., Nano Today,2022, 42, 101352 [86] Ahmed M. T., Morshed M. N., Farjana S., An S. K., New J. Chem.,2020, 44, 12122 [87] Li L., Li W. H., Giant,2021, 7, 100065 [88] Xu P. F., Gao L., Cai C. H., Lin J. P., Wang, L. Q., Tian X. H., Angew. Chem. Int. Ed., 2020, 59, 14281 [89] Hamley I. W., Prog. Polym. Sci., 2009, 34, 1161 [90] Li W. H., Gu X. Y., Mol. Syst. Des. Eng.,2021, 6, 355 [91] Dai X. B., Zhang X. Y., Gao L. J., Yan L. T., Acta Polymerica Sinica, 2021, 52, 1076 [92] Hou W. M., Feng Y., Li B. H., Zhao H. Y., Macromolecules,2018, 51, 1894 [93] Deng Z. X., You X., Yuan B., Yang K., Giant,2021, 8, 100071 [94] Du F. F., Qiao B. F., Nguyen T. D., Vincent M. P., Bobbala S., Yi S. J., Lescott C., Dravid V. P., Olvera de la Cruz M., Scott E. A., Nat. Commun.,2020, 11, 4896 [95] Xu B. L., Qi S. H., Jin M. M., Cai X. Y., Lai L. F., Sun Z. T., Han X. G., Lin Z. F., Shao H., Peng P., Xiang Z. H., ten Elshof J. E., Tan R., Liu C., Zhang Z. X., Duan X. C., Ma J. M.,Chinese Chem. Lett., 2019, 30, 2053 [96] Springer M. A., Liu T. J., Kuc A., Heine T., Chem. Soc. Rev., 2020, 49, 2007 [97] Sakamoto J., van Heijst J., Lukin O., Schlüter A. D., Angew. Chem. Int. Ed.,2009, 48, 1030 [98] Servalli M., Schlüter A. D., Annu. Rev. Mater. Res., 2017, 47, 361 [99] Côté A. P., Benin A. I., Ockwig N. W., O'Keeffe M., Matzger A. J., Yaghi O. M., Science, 2005, 310, 1166 [100] Wang Z. F., Zhang S. N., Chen Y., Zhang Z. J., Ma S. Q., Chem. Soc. Rev.,2020, 49, 708 [101] Bhola R., Payamyar P., Murray D. J., Kumar B., Teator A. J., Schmidt M. U., Hammer S. M., Saha A., Sakamoto J., Schlüter A. D., King B. T., J. Am. Chem. Soc.,2013, 135, 14134 [102] Bisbey R. P., Dichtel W. R., ACS Cent. Sci., 2017, 3, 533 [103] Zhu Y. L., Zhao H. Y., Fu C. L., Li Z. W., Sun Z. Y., Lu Z. Y., J. Phys. Chem. Lett., 2020, 11, 9952 [104] Zhu Y. L., Fu C. L., Li Z. W., Sun Z. Y., J. Phys. Chem. Lett.,2020, 11, 179 [105] Zhu Y. L., Zhao H. Y., Fu C. L., Li Z. W., Sun Z. Y., Nanoscale,2020, 12, 22107 [106] Li Y., Gao H. M., Yu H., Jiang K., Yu H., Yang Y., Song Y., Zhang W. K., Shi H. C., Lu Z. Y., Liu K., Sci. Adv.,2019, 5, eaaw9120 [107] Chen T., Amin I., Jordan R., Chem. Soc. Rev., 2012, 41, 3280 [108] Carbonell C., Valles D., Wong A. M., Carlini A. S., Touve M. A., Korpanty J., Gianneschi N. C., Braunschweig A. B., Nat. Commun., 2020, 11, 1244 [109] Zhang K., Gao H. M., Xu D., Lu Z. Y., Soft Matter, 2019, 15, 890 [110] Yang T. H., Shi Y. F., Janssen A., Xia Y. N., Angew. Chem. Int. Ed., 2020, 59, 15378 [111] Jackson A. M., Hu Y., Silva P. J., Stellacci F., J. Am. Chem. Soc., 2006, 128, 11135 [112] Stirling J. L., Lekkas I., Sweetman A., Djuranovic P., Guo Q. M., Pauw B., Granwehr J., Levy R., Moriarty P., PLoS ONE, 2014, 9, e108482 [113] Ong Q. K., Stellacci F., PLoS ONE, 2015, 10, e0135594 [114] Gao H. M., Liu H., Zhang R., Lu Z. Y., J. Phys. Chem. B, 2019, 123, 10311 [115] Wong C. K., Chen F., Walther A., Stenzel M. H., Angew. Chem., Int. Ed., 2019, 58, 7335 [116] Ortel E., Sokolov S., Zielke C., Lauermann I., Selve S., Weh K., Paul B., Polte J., Kraehnert R., Chem. Mater., 2012, 24, 3828 [117] Anker J. N., Hall W. P., Lyandres O., Shah N. C., Zhao J., Van Duyne R. P., Nat. Mater., 2008, 7, 442 [118] Choueiri R. M., Galati E., Thérien-Aubin H., Klinkova A., Larin E. M., Querejeta-Fernández A., Han L. L., Xin H. L., Gang O., Zhulina E. B., Rubinstein M., Kumacheva E., Nature, 2016, 538, 79 [119] Yu L., Shi R., Qian H. J., Lu Z. Y., Phys. Chem. Chem. Phys., 2019, 21, 1417 [120] Yu L., Zhang N., Zhang N. N., Gu Q. Q., Xue Y., Wang Y. X., Han C. L., Liu K., Sun Z. Y., Qian H. J., Lu Z. Y., J. Phys. Chem. Lett., 2021, 12, 7100 [121] Blaaderen A. V., Science, 2003, 301, 470 [122] Yi C. L., Liu H., Zhang S. Y., Yang Y. Q., Zhang Y., Lu Z. Y., Kumacheva E., Nie Z. H., Science, 2020, 369, 1369 [123] Wu J. D., Zheng Z., Chong Y. Y., Li X. C., Pu L. Y., Tang Q. Y., Yang L., Wang X. H., Wang F. Q., Liang G. L., Adv. Mater.,2018, 30, 1805018 [124] Nguyen M., Qiu Y. Q., Vaikuntanathan S., Annu. Rev. Condens. Matter Phys., 2021, 12, 273 [125] Fu Q. R., Li Z., Fu F. F., Chen X. Y., Song J. B., Yang H. H., Nano Today, 2021, 36, 101014 [126] Zheng Z., Chen P. Y., Xie M. L., Wu C. F., Luo Y. F., Wang W. T., Jiang J., Liang G. L., J. Am. Chem. Soc., 2016, 138, 11128 [127] Shen B. W., Zhu Y. L., Kim Y. J., Zhou X. B., Sun H. N., Lu Z. Y., Lee M., Nat. Commun., 2019, 10, 1080 [128] Long D. R., Conca L., Sotta P., Phys. Rev. Mater., 2018, 2, 105601 [129] Glova A. D., Falkovich S. G., Dmitrienko D. I., Lyulin A. V., Larin S. V., Nazarychev V. M., Karttunen M., Lyulin S. V., Macromolecules, 2018, 51, 552 [130] Hao Z. W., Ghanekarade A., Zhu N. T., Randazzo K., Kawaguchi D., Tanaka K., Wang X. P., Simmons D. S., Priestley R. D., Zuo B., Nature, 2021, 596, 372 [131] Müller-Plathe F., ChemPhysChem, 2002, 3, 754 [132] Peter C., Kremer K., Soft Matter, 2009, 5, 4357 [133] Paul W., Smith G. D., Rep. Prog. Phys., 2004, 67, 1117 [134] Lyulin A. V., Balabaev N. K., Michels M. A. J., Macromolecules, 2003, 36, 8574 [135] Lyulin A. V., Michels M. A. J., Macromolecules, 2002, 35, 1463 [136] Krushev S., Paul W., Smith G. D., Macromolecules, 2002, 35, 4198 [137] Krushev S., Paul W., Phys. Rev. E, 2003, 67, 021806 [138] Paul W., Bedrov D., Smith G. D., Phys. Rev. E, 2006, 74, 021501 [139] Xie S. J., Qian H. J., Lu Z. Y., J. Chem. Phys., 2012, 137, 244903 [140] Xie S. J., Qian H. J., Lu Z. Y., J. Chem. Phys., 2014, 140, 044901 [141] Xie S. J., Qian H. J., Lu Z. Y.,Polymer, 2015, 56, 545 [142] Xie S. J., Qian H. J., Lu Z. Y., J. Chem. Phys., 2015, 142, 074902 [143] Hung J. H., Patra T. K., Meenakshisundaram V., Mangalara J. H., Simmons D. S., Soft Matter, 2019, 15, 1223 [144] Baschnagel J., Varnik F., J. Phys.:Condens. Matter, 2005, 17, R851 [145] Everaers R., Karimi-Varzaneh H. A., Fleck F., Hojdis N., Svaneborg C., Macromolecules, 2020, 53, 1901 [146] Bulacu M., van der Giessen E., Phys. Rev. E, 2007, 76, 011807 [147] Bernabei M., Moreno A. J., Colmenero J., Phys. Rev. Lett., 2008, 101, 255701 [148] Li S. J., Xie S. J., Li Y. C., Qian H. J., Lu Z. Y., Phys. Rev. E, 2016, 93, 012613 [149] Schoenholz S. S., Cubuk E. D., Sussman D. M., Kaxiras E., Liu A. J., Nat. Phys., 2016, 12, 469 [150] Wang Y. C., Gu K. C., Monnier X., Jeong H., Chowdhury M., Cangialosi D., Loo Y. L., Priestley R. D., ACS Macro Lett., 2019, 8, 1115 [151] Popov I., Carroll B., Bocharova V., Genix A. C., Cheng S. W., Khamzin A., Kisliuk A., Sokolov A. P., Macromolecules, 2020, 53, 4126 [152] Winkler R., Unni A. B., Tu W. K., Chat K., Adrjanowicz K., J. Phys. Chem. B, 2021, 125, 5991 [153] Li S. J., Qian H. J., Lu Z. Y., Soft Matter, 2019, 15, 4476 [154] Li S. J., Qian H. J., Lu Z. Y., Phys. Chem. Chem. Phys., 2019, 21, 15888 [155] Mishra A., Ferhan A. R., Ho C. M. B., Lee J., Kim D. H., Kim Y. J., Yoon Y. J., Int. J. of Precis. Eng. and Manuf.-Green Tech., 2021, 8, 945 [156] Zhang B., Chen X., Lu W. C., Zhang Q. M., Bernholc J., Nanoscale, 2021, 13, 10933 [157] Jambhulkar S., Xu W. H., Ravichandran D., Prakash J., Kannan A. N. M., Song K., Nano Lett., 2020, 20, 3199 [158] Shi R., Qian H. J., Lu Z. Y., Phys. Chem. Chem. Phys., 2019, 21, 7115 [159] Shi R., Qian H. J., Lu Z. Y., Phys. Chem. Chem. Phys., 2017, 19, 16524 [160] Shi R., Qian H. J., Lu Z. Y., Macromolecules, 2019, 52, 7353 [161] Frisch H., Menzel J. P., Bloesser F. R., Marschner D. E., Mundsinger K., Barner-Kowollik C., J. Am. Chem. Soc., 2018, 140, 9551 [162] Verde-Sesto E., Blazquez-Martin A., Pomposo J. A., Polymers, 2019, 11, 1903 [163] Hoffmann J. F., Roos A. H., Schmitt F. J., Hinderberger D., Binder W. H., Angew. Chem. Int. Ed., 2021, 60, 7820 [164] Carroll B., Bocharova V., Carrillo J. M. Y., Kisliuk A., Cheng S. W., Yamamoto U., Schweizer K. S., Sumpter B. G., Sokolov A. P., Macromolecules, 2018, 51, 2268 [165] Cheng S., Xie S. J., Carrillo J. M. Y., Carroll B., Martin H., Cao P. F., Dadmun M. D., Sumpter B. G., Novikov V. N., Schweizer K. S., Sokolov A. P., ACS Nano, 2017, 11, 752 [166] Carroll B., Cheng S., Sokolov A. P., Macromolecules, 2017, 50, 6149 [167] Ge S. R., Samanta S., Tress M., Li B., Xing K., Dieudonné-George P., Genix A. C., Cao P. F., Dadmun M., Sokolov A. P., Macromolecules, 2021, 54, 4246 [168] Mackay M. E., Tuteja A., Duxbury P. M., Hawker C. J., Van Horn B., Guan Z. B., Chen G. H., Krishnan R. S., Science, 2006, 311, 1740 [169] Mackay M. E., Dao T. T., Tuteja A., Ho D. L., Van Horn B., Kim H. C., Hawker C. J., Nat. Mater., 2003, 2, 762 [170] Tuteja A., Mackay M. E., Narayanan S., Asokan S., Wong M. S., Nano Lett., 2007, 7, 1276 [171] Tuteja A., Mackay M. E., Hawker C. J., van Horn B., Macromolecules, 2005, 38, 8000 [172] Tuteja A., Duxbury P. M., Mackay M. E., Macromolecules, 2007, 40, 9427 [173] Chen T., Zhao H. Y., Shi R., Lin W. F., Jia X. M., Qian H. J., Lu Z. Y., Zhang X. X., Li Y. K., Sun Z. Y., Nat. Commun., 2019, 10, 5552 [174] Zhu J. L., Chu M., Chen Z. W., Wang L. Q., Lin J. P., Du L., Chem. Mater., 2020, 32, 4527 [175] Zhao S. C., Cai T. Y., Zhang L. S., Li W. H., Lin J. P., ACS Macro. Lett., 2021, 10, 598 [176] Zhu M. X., Song H. G., Yu Q. C., Chen J. M., Zhang H. Y., Int. J. Heat Mass Transf., 2020, 162, 120381 [177] Yang H., Zhang Z. T., Zhang J. C., Zeng X. C., Nanoscale, 2018, 10, 19092 [178] Wei H., Zhao S. S., Rong Q. Y., Bao H., Int. J. Heat Mass Transf., 2018, 127, 908 [179] Chen G., Tao L., Li Y., Polymers, 2021, 13, 1898 [180] Chandrasekaran A., Kim C., Venkatram S., Ramprasad R., Macromolecules, 2020, 53, 4764 |
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