[1] Naebe M, Abolhasani MM, Khayyam H, et al. Crack damage in polymers and composites: a review [J]. Polym Rev, 2016, 56(1):31-69. [2] Xiang HP, Rong MZ, Zhang MQ. A facile method for imparting sunlight driven catalyst-free self-healability and recyclability to commercial silicone elastomer [J]. Polymer, 2017, 108(13): 339-347. [3] Jo YY, Lee AS, Baek KY, et al. Multi-crosslinkable self-healing polysilsesquioxanes for the smart recovery of anti-scratch properties [J]. Polymer, 2017, 124(8):78-87. [4] White SR, Sottos NR, Geubelle PH,et al. Autonomic healing of polymer composites [J]. Nature, 2001,409(6822):794-797. [5] Lee MW, An S, Yoon SS, et al. Advances in self-healing materials based on vascular networks with mechanical self-repair characteristics [J]. Adv Colloid Interface Sci, 2018, 252(12):21-37. [6] 颜惠宜,杨宏业,黄翠.口腔自修复复合树脂的研究进展[J].中华口腔医学杂志,2017,52(9):582-584. [7] Bekas D, Tsirka K, Baltzis D, et al. Self-healing materials: a review of advances in materials, evaluation, characterization and monitoring techniques [J]. Composites Part B, 2016, 87(3):92-119. [8] Veeramani N, Raja S, Deshpande AP. A two-step approach for synthesis, characterization and analysis of dicyclopentadiene-urea formaldehyde-siloxane-based double-walled microcapsules used in self-healing composites [J]. Inter J Plastics Technology, 2019, 23(2):157-169. [9] Sun T, Shen XJ, Penguin C, et al. A novel strategy for the synthesis of self-healing capsule and its application [J]. Compos Sci Technol, 2019,171:13-20. [10] Vijayan P, Almaadeed MA. 'Containers' for self-healing epoxy composites and coating: trends and advances [J]. Express Polym Lett, 2016,10(6):506-524. [11] He ZL, Jiang SA, An N, et al. Self-healing isocyanate microcapsules for efficient restoration of fracture damage of polyurethane and epoxy resins [J]. J Materials Science, 2019, 54(11):8262-8275. [12] Li X, Wang YB, Wang BJ, et al. Antibacterial phase change microcapsules obtained with lignin as the Pickering stabilizer and the reducing agent for silver [J]. Int J Biol Macromol, 2020, 144:624-631. [13] Huyang G, Debertin AE, Sun J. Design and development of self-healing dental composites [J]. Mater Des, 2016, 94(4):295-302. [14] Wu J, Weir MD, Zhang Q, et al. Novel self-healing dental resin with microcapsules of polymerizable triethylene glycol dimethacrylate and N,N-dihydroxyethyl-p-toluidine [J]. Dent Mater, 2016, 32(2):294-304. [15] Wu J, Weir MD, Melo MA, et al. Development of novel self-healing and antibacterial dental composite containing calcium phosphate nanoparticles [J]. J Dent, 2015, 43(3):317-326. [16] Weir MD, Ruan JP, Zhang N, et al. Effect of calcium phosphate nanocomposite on in vitro remineralization of human dentin lesions [J]. Dent Mater, 2017, 33(9):1033-1044. [17] Liang KN, Xiao SM, Wu J, et al. Long-term dentin remineralization by poly(amido amine) and rechargeable calcium phosphate nanocomposite after fluid challenges [J]. Dent Mater, 2018, 34(4):607-618. [18] Ouyang X, Huang X, Pan Q, et al. Synjournal and characterization of triethylene glycol dimethacrylate nanocapsules used in a self-healing bonding resin [J]. J Dent, 2011, 39(12):825-833. [19] Yue S, Wu J, Zhang Q, et al. Novel dental adhesive resin with crack self-healing, antimicrobial and remineralization properties [J]. J Dent, 2018,75(8):48-57. [20] Wu J, Zhang Q, Weir MD, et al. Novel self-healing dental luting cements with microcapsules for indirect restorations [J]. J Dent, 2017, 66(11):76-82. [21] Li Q, Siddaramaiah Kim NH, Hui D, et al. Effects of dual component microcapsules of resin and curing agent on the self-healing efficiency of epoxy [J]. Compos B Eng, 2013, 55:79-85. [22] Yuan L, Huang S, Gu A, et al. A cyanate ester/microcapsule system with low cure temperature and self-healing capacity [J]. Compos Sci Technol, 2013, 87(18):111-117. [23] Chen C, Wu J, Weir M, et al. Dental composite formulation design with bioactivity on protein adsorption combined with crack-healing capability [J]. J Funct Biomater, 2017, 8(3):40. [24] Zhang N, Zhang K, Xie X, et al.Nanostructured polymeric materials with protein-repellent and anti-caries properties for dental applications [J]. Nanomaterials, 2018, 8(6):393. [25] Althaqafi KA, Satterthwaite J, Silikas N. A review and current state of autonomic self-healingmicrocapsules-based dental resin composites [J]. Dent Mater, 2020, 36(3):329-342. [26] Yahyazadehfar M, Huyang G, Wang X, et al. Durability of self-healing dental composites: a comparison of performance under monotonic and cyclic loading [J]. Mater Sci Eng C, 2018, 93(1):1020-1026. [27] Sharma A, Alam S, Sharma C, et al. Static and dynamic mechanical behavior of microcapsule-reinforced dental composite [J]. Proc Inst Mech Eng L J Mater:Des Appl, 2017, 233(6):1184-1190. [28] Zhang N, Zhang K, Melo MA, et al. Effects of long-term water-aging on novel anti-biofilm and protein repellent resin composite [J]. Int J Mol Sci, 2017,18(1):186-200. [29] Wu J, Weir MD, Melo MA, et al. Effects of water-aging on self-healing dental composite containing microcapsules [J]. J Dent, 2016, 47(4):86-93. [30] Wu J, Zhou CJ, Ryan JP, et al. Self-healing adhesive with antibacterial activity in water-aging for 12 months [J]. Dent Mater, 2019, 35(8):1104-1116. [31] Kafagy DH, Khajotia SS, Keller MW. Fatigue characterization of in-situ self-healing dental composites[C]//Thakre P, Singh R, Slipher G. Mechanics of composite and multi-functional materials. Cham: Springer, 2018,6:151-155. |