[1] NORTON M. Tackling the challenge of packaging plastic in the environment[J]. Chemistry, 2020, 26(35): 7 737-7 739.
[2] KALE S K, DESHMUKH A G, DUDHARE M S, PATIL V B. Microbial degradation of plastic: a review[J]. Journal of Biochemical Technology, 2015, 6(2): 952 - 961 .
[3] JEM K J, TAN B. The development and challenges of poly (lactic acid) and poly (glycolic acid)[J]. Advanced Industrial and Engineering Polymer Research, 2020, 3(2): 60 - 70 . doi: 10.1016/j.aiepr.2020.01.002
[4] HIRAOKA Y, KIMURA Y, UEDA H, TABATA Y. Fabrication and biocompatibility of collagen sponge reinforced with poly (glycolic acid) fiber[J]. Tissue Engineering, 2003, 9(6): 1 101-1 112.
[5] ROBERTS A D, HART D M. Polyglycolic acid and catgut sutures, with and without oral proteolytic enzymes, in the healing of episiotomies[J]. Preventive Medicine Reports, 1983, 90(7): 650 - 653 .
[6] BOLAND E D, TELEMECO T A, SIMPSON D G, WNEK G E, BOWLIN G L. Utilizing acid pretreatment and electrospinning to improve biocompatibility of poly (glycolic acid) for tissue engineering[J]. Journal of Biomedical Materials Research Part B: Applied Biomaterials, 2004, 71B(1): 144 - 152 . doi: 10.1002/jbm.b.30105
[7] TANG S, LI G, ZHANG R, HUANG L, TANG H. In vitro degradation of polyglycolic acid synthesized by a one-step reaction[J]. Journal of Polymer Engineering, 2014, 34(7): 591 - 596 . doi: 10.1515/polyeng-2014-0005
[8] ZHANG Z, ORTIZ O, GOYAL R, KOHN J. Biodegradable polymers[M]//Handbook of Polymer Applications in Medicine and Medical Devices. Amsterdam: Elsevier, 2014: 303-335.
[9] YOU Y, YOUK J H, LEE S W, MIN B M, LEE S J, PARK W H. Preparation of porous ultrafine PGA fibers via selective dissolution of electrospun PGA/PLA blend fibers[J]. Materials Letters, 2006, 60(6): 757 - 760 . doi: 10.1016/j.matlet.2005.10.007
[10] SPEARMAN S S, RIVERO I V, ABIDI N. Influence of polycaprolactone/polyglycolide blended electrospun fibers on the morphology and mechanical properties of polycaprolactone[J]. Journal of Applied Polymer Science, 2014, 131(9): e40224. doi: 10.1002/app.40224
[11] CASALINI T, ROSSI F, SANTORO M, PERALE G. Structural characterization of poly-l-lactic acid (P(L)LA) and poly (glycolic acid) (PGA) oligomers[J]. International Journal of Molecular Sciences, 2011, 12(6): 3 857-3 870.
[12] BENTAYEB K, BATLLE R, ROMERO J, NERÍN C. UPLC-MS as a powerful technique for screening the nonvolatile contaminants in recycled PET[J]. Analytical and Bioanalytical Chemistry, 2007, 388(5): 1 031-1 038.
[13] AZNAR M, RODRIGUEZ-LAFUENTE A, ALFARO P, NERIN C. UPLC-Q-TOF-MS analysis of non-volatile migrants from new active packaging materials[J]. Analytical and Bioanalytical Chemistry, 2012, 404(6): 1 945-1 957.
[14] BRENZ F, LINKE S, SIMAT T J. Linear and cyclic oligomers in PET, glycol-modified PET and Tritan™ used for food contact materials[J]. Food Additives & Contaminants Part A, Chemistry, Analysis, Control, Exposure & Risk Assessment, 2021, 38(1): 160-179.
[15] UBEDA S, AZNAR M, NERÍN C. Determination of oligomers in virgin and recycled polyethylene terephthalate (PET) samples by UPLC-MS-QTOF[J]. Analytical and Bioanalytical Chemistry, 2018, 410(9): 2 377-2 384.
[16] GB 31604.1−2023 食品安全国家标准 食品接触材料及制品迁移试验通则[S]. 北京: 中国标准出版社, 2023.
[17] GB 5009.156−2016 食品安全国家标准 食品接触材料及制品迁移试验预处理方法通则[S]. 北京: 中国标准出版社, 2016.
[18] SILANO V, BOLOGNESI C, CASTLE L, CRAVEDI J P, ENGEL K H, FOWLER P, FRANZ R, GROB K, GÜRTLER R, HUSØY T, KÄRENLAMPI S, MENNES W, MILANA M R, PENNINKS A, de FÁTIMA TAVARES POÇAS M, SMITH A, TLUSTOS C, WÖLFLE D, ZORN H, ZUGRAVU C A. Note for guidance for the preparation of an application for the safety assessment of a substance to be used in plastic food contact materials[J]. EFSA Journal, 2008, 6(7): 2 903.
[19] 李波, 白艳红, 栗俊广, 许泽宇, 朱沛源. 发泡餐盒中苯乙烯单体和低聚物的测定及迁移风险评估[J]. 食品安全质量检测学报, 2021, 12(20): 8 279-8 286. LI Bo, BAI Yanhong, LI Junguang, XU Zeyu, ZHU Peiyuan. Determination and migration risk assessment of styrene monomer and oligomers in expanded polystyrene food containers[J]. Journal of Food Safety and Quality, 2021, 12(20): 8 279-8 286(in Chinese).
[20] YOU Y, MIN B M, LEE S J, LEE T S, PARK W H. In vitro degradation behavior of electrospun polyglycolide, polylactide, and poly (lactide-co-glycolide)[J]. Journal of Applied Polymer Science, 2005, 95(2): 193-200.
[21] 马超, 马兰荣, 魏辽, 尹慧博, 林祥. 聚乙醇酸材料的加工改性及其水下降解特性的研究进展[J]. 中国塑料, 2022, 36(9): 74 - 84 . MA Chao, MA Lanrong, WEI Liao, YIN Huibo, LIN Xiang. A review of modification processing and water-soluble degradation ability of polyglycolic acid material[J]. China Plastics, 2022, 36(9): 74 - 84 (in Chinese).
[22] HURRELL S, CAMERON R E. Polyglycolide: degradation and drug release. Part I: changes in morphology during degradation[J]. Journal of Materials Science: Materials in Medicine, 2001, 12(9): 811 - 816 . doi: 10.1023/A:1017925019985
[23] CHU C C. Hydrolytic degradation of polyglycolic acid: tensile strength and crystallinity study[J]. Journal of Applied Polymer Science, 1981, 26(5): 1 727-1 734.
[24] HURRELL S, MILROY G E, CAMERON R E. The distribution of water in degrading polyglycolide. Part I: sample size and drug release[J]. Journal of Materials Science: Materials in Medicine, 2003, 14(5): 457 - 464 . doi: 10.1023/A:1023271003571
[25] AYYOOB M, LEE D H, KIM J H, NAM S W, KIM Y J. Synthesis of poly (glycolic acids) via solution polycondensation and investigation of their thermal degradation behaviors[J]. Fibers and Polymers, 2017, 18(3): 407 - 415 . doi: 10.1007/s12221-017-6889-1
[26] LI S. Hydrolytic degradation characteristics of aliphatic polyesters derived from lactic and glycolic acids[J]. J Biomed Mater Res, 1999, 48(3): 342 - 353 . doi: 10.1002/(SICI)1097-4636(1999)48:3<342::AID-JBM20>3.0.CO;2-7