Journal of Textile Research ›› 2025, Vol. 46 ›› Issue (12): 29-38.doi: 10.13475/j.fzxb.20250304502

• Academic Salon Column for New Insight of Textile Science and Technology: Fiber-based Functional Filtration Materials • Previous Articles     Next Articles

Research progress in bio-based and biodegradable facemask filter materials

SUN Yufa, SUN Gang()   

  1. Department of Biological and Agricultural Engineering, University of California, Davis, California 95616, United States
  • Received:2025-03-21 Revised:2025-09-11 Online:2025-12-15 Published:2026-02-06
  • Contact: SUN Gang E-mail:gysun@ucdavis.edu

Abstract:

Significance Facemasks serve as essential personal protective equipment, playing a crucial role in preventing the spread of infectious diseases and safeguarding environmental health. The COVID-19 pandemic has significantly increased global demand and consumption of facemasks, leading to concerns on the environmental impact due to excessive plastic waste. Conventional facemasks are predominantly made of petroleum-based polypropylene (PP), a non-degradable polymer that contributes to persistent environmental pollution and exacerbates the global plastic waste crisis. As a result, there is an urgent need to develop sustainable alternatives that maintain high-performance filtration efficiency while minimizing environmental harm. Polylactic acid (PLA) has emerged as a promising candidate for next-generation facemask filter materials due to its bio-based origin, biodegradability, and excellent processability. Derived from renewable resources such as corn starch and sugarcane, PLA offers a viable solution to reducing reliance on fossil fuels while minimizing environmental impact. Despite these advantages, PLA-based materials face inherent limitations, including brittleness, low elongation at break, and slow degradation rates under ambient conditions. Addressing these challenges is critical to advancing the practical application of PLA-based facemasks. This review provides a comprehensive analysis of PLA-based facemask filter materials, emphasizing their advantages, limitations, and modification strategies to address existing challenges.

Progress Significant research efforts have been devoted to improving the mechanical properties and biodegradability of PLA-based facemask materials to meet the requirements of protective applications. Among the various strategies, modification of PLA through polymer blending has been an effective method for enhancing toughness and accelerating degradation. The blends of PLA with other biodegradable polymers, such as polycaprolactone (PCL), polybutylene succinate (PBS), and poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV), have demonstrated marked improvements in flexibility and biodegradability. These blends not only retain the biocompatibility and renewability of PLA but also help overcome its inherent brittleness. However, critical challenges remain, particularly in achieving homogeneous dispersion of the secondary polymer phase, minimizing phase separation, and reducing the overall production cost—factors that significantly hinder the scalability and industrial adoption of such materials. In addition to the polymer blends, plasticization has gained considerable attention as a means of enhancing the ductility, flexibility, and processability of PLA. Bio-based small-molecule plasticizers, such as citrate esters, triglycerides, and oligomeric lactic acid, have shown great potential in improving PLA's mechanical properties and promoting faster degradation. These plasticizers, derived from renewable sources, provide an environmentally friendly and cost-effective solution to enhancing PLA's flexibility, which align well with the principles of green chemistry and sustainable materials development. Nevertheless, issues related to high plasticizer content and migration tendencies pose concerns regarding long-term stability and material integrity. Current research is increasingly focused on the development of high-performance plasticizers with reduced migration tendencies, as well as the use of reactive compatibilization and advanced processing techniques (e.g., electrospinning, melt blending) to ensure stable and effective modification of PLA-based facemask materials.

Conclusion and Prospect PLA-based fibrous materials show considerable promise as sustainable alternatives for facemask production due to their biodegradability and potential for functional modification. Current research has yielded encouraging results, particularly in enhancing mechanical properties and degradability through polymer blending and plasticization. However, several challenges remain. These include maintaining long-term structural integrity, ensuring uniform dispersion of additives, controlling plasticizer migration, reducing the production cost, and achieving performance comparable to PP-based masks. From a forward-looking perspective, the development of next-generation PLA-based facemasks should focus on multifunctionality and reusability. Integrating bio-based antibacterial and antiviral agents, self-cleaning coatings, and even real-time sensing functionalities can significantly expand the applicability of PLA in protective equipment. Furthermore, optimization of spinning and membrane-forming technologies, such as electrospinning or melt-blown processes, is crucial for producing highly efficient filtration media with enhanced comfort and breathability. The shift from single-use to reusable PLA-based facemasks not only aligns with global sustainability goals but also offers a viable solution to plastic pollution caused by disposable PP masks. To achieve this, interdisciplinary efforts combining materials science, environmental engineering, and health technology are essential. Ultimately, the evolution of PLA-based facemasks from disposable consumables to high-performance, sustainable protective equipment will contribute significantly to the advancement of green protective materials.

Key words: polylactic acid, bio-based plasticizer, biodegradable polymer, air filtration, facemask, biodegradable facemask, filtration material

CLC Number: 

  • TS151

Fig.1

Monomer and polymerization process of polylactic acid"

Fig.2

Schematic illustration of plasticization mechanism"

Fig.3

Chemical structures of common biodegradable polymers"

Fig.4

Common bio-based small-molecule plasticizers"

Tab.1

Effects of different biodegradable polymers and plasticizers on properties of PLA materials"

改性剂 添加量/% Tg/℃ 结晶度/% 拉伸强度/MPa 断裂伸长率/% 降解性能 参考文献
PBS 5 63.2 2.28 30.36 [37]
PBS 10 54.0 46.5 2.19 12.97 [38]
PCL 10 18.4 9.00 189.0 [42]
ATBC 15 26.0 15.9 4.50 105.0 10 d堆肥环境中易碎 [46]
TC 7 53.0 34.7 1.02 12.21 50 oC,4 d酶降解30.51% [47]
GT 7 52.0 31.1 1.08 12.53 50 oC,4 d酶降解34.18% [47]
OTOA 5 61.3 7.4 1.20 22.50 [50]
PHBV 5 2.50 45.00 4个月土壤中完全降解 [59]
PHBV 25 49.4 13.8 3.10 24.20 3周模拟土壤中完全降解 [60]
OLA 15 44.7 21.7 3.75 41.50 16 d堆肥环境中易碎 [61]
[1] DENG W, SUN Y J, YAO X X, et al. Masks for COVID-19[J]. Advanced Science, 2022, 9(3): 2102189.
doi: 10.1002/advs.v9.3
[2] PRATA J C, SILVA A L P, WALKER T R, et al. COVID-19 pandemic repercussions on the use and management of plastics[J]. Environmental Science & Technology, 2020, 54(13): 7760-7765.
doi: 10.1021/acs.est.0c02178
[3] DENG Y K, LU T, CUI J X, et al. Bio-based electrospun nanofiber as building blocks for a novel eco-friendly air filtration membrane: a review[J]. Separation and Purification Technology, 2021, 277: 119623.
doi: 10.1016/j.seppur.2021.119623
[4] BHATTACHARJEE S, BAHL P, AHMAD CHUGHTAI A, et al. Face masks and respirators: towards sustainable materials and technologies to overcome the shortcomings and challenges[J]. Nano Select, 2022, 3(10): 1355-1381.
doi: 10.1002/nano.v3.10
[5] OLIVEIRA A M, PATRÍCIO SILVA A L, SOARES A M V M, et al. Current knowledge on the presence, biodegradation, and toxicity of discarded face masks in the environment[J]. Journal of Environmental Chemical Engineering, 2023, 11(2): 109308.
doi: 10.1016/j.jece.2023.109308
[6] ZHAO X, GAO P P, ZHAO Z Q, et al. Microplastics release from face masks: characteristics, influential factors, and potential risks[J]. Science of The Total Environment, 2024, 921: 171090.
doi: 10.1016/j.scitotenv.2024.171090
[7] ATHUKORALALAGE S S A, BELL C A, GEMMELL A C, et al. Recent advances and future perspectives in engineering biodegradable face masks[J]. Journal of Materials Chemistry A, 2023, 11(4): 1575-1592.
doi: 10.1039/D2TA08019B
[8] 王珅, 刘宣伯, 张艳芳, 等. 生物可降解无纺布材料研究进展[J]. 中国塑料, 2024, 38(7): 86.
doi: 10.19491/j.issn.1001-9278.2024.07.015
WANG Shen, LIU Xuanbo, ZHANG Yanfang, et al. Research progress in biodegradable nonwoven mate-rials[J]. China Plastics, 2024, 38(7): 86.
doi: 10.19491/j.issn.1001-9278.2024.07.015
[9] GOUGH C R, CALLAWAY K, SPENCER E, et al. Biopolymer-based filtration materials[J]. ACS Omega, 2021, 6(18): 11804-11812.
doi: 10.1021/acsomega.1c00791 pmid: 34056334
[10] LAMBERT S, WAGNER M. Environmental performance of bio-based and biodegradable plastics: the road ahead[J]. Chemical Society Reviews, 2017, 46(22): 6855-6871.
doi: 10.1039/c7cs00149e pmid: 28932844
[11] SHARMA V, SEHGAL R, GUPTA R. Polyhydroxyalkanoate (PHA): properties and modifications[J]. Polymer, 2021, 212: 123161.
doi: 10.1016/j.polymer.2020.123161
[12] JAFARI M, SHIM E, JOIJODE A. Fabrication of poly(lactic acid) filter media via the meltblowing process and their filtration performances: a comparative study with polypropylene meltblown[J]. Separation and Purification Technology, 2021, 260: 118185.
doi: 10.1016/j.seppur.2020.118185
[13] YANG Y D, ZHANG M, JU Z X, et al. Poly(lactic acid) fibers, yarns and fabrics: manufacturing, properties and applications[J]. Textile Research Journal, 2021, 91(13/14): 1641-1669.
doi: 10.1177/0040517520984101
[14] LIU S, QIN S H, HE M, et al. Current applications of poly(lactic acid) composites in tissue engineering and drug delivery[J]. Composites Part B: Engineering, 2020, 199: 108238.
doi: 10.1016/j.compositesb.2020.108238
[15] 朱斐超, 张宇静, 张强, 等. 聚乳酸基生物可降解熔喷非织造材料的研究进展与展望[J]. 纺织学报, 2022, 43(1): 49-57.
ZHU Feichao, ZHANG Feichao, ZHANG Qiang, et al. Research progress and prospect on biodegradable polylactic acid-based melt-blown nonwovens[J]. Journal of Textile Research, 2022, 43(1): 49-57.
[16] RODCHANASURIPRON W, SEADAN M, SUTTIRUENGWONG S. Properties of non-woven polylactic acid fibers prepared by the rotational jet spinning method[J]. Materials Today Sustainability, 2020, 10: 100046.
doi: 10.1016/j.mtsust.2020.100046
[17] 邹晓月, 徐佳慧, 陈振树, 等. 口罩过滤材料及其驻极技术的研究进展[J]. 中国塑料, 2024, 38(9): 47.
doi: 10.19491/j.issn.1001-9278.2024.09.009
ZOU Xiaoyue, XU Jiahui, CHEN Zhenshu, et al. Research progress in mask filter materials and their electret technology[J]. China Plastics, 2024, 38(9): 47.
doi: 10.19491/j.issn.1001-9278.2024.09.009
[18] SHEKHAR N, MONDAL A. Synthesis, properties, environmental degradation, processing, and applications of polylactic acid (PLA): an overview[J]. Polymer Bulletin, 2024, 81(13): 11421-11457.
doi: 10.1007/s00289-024-05252-7
[19] 王镕琛, 张恒, 孙焕惟, 等. 医疗卫生用聚乳酸非织造材料的制备及其亲水改性研究进展[J]. 中国塑料, 2022, 36(5): 158.
doi: 10.19491/j.issn.1001-9278.2022.05.025
WANG Rongchen, ZHANG Heng, SUN Huanwei, et al. Research progress in preparation and hydrophilic modification of polylactic acid nonwovens for medical and health applications[J]. China Plastics, 2022, 36(5): 158.
doi: 10.19491/j.issn.1001-9278.2022.05.025
[20] CHEN M X, HU Q, WANG X Y, et al. A review on recent trends of the antibacterial nonwovens air filter materials: classification, fabrication, and applica-tion[J]. Separation and Purification Technology, 2024, 330: 125404.
doi: 10.1016/j.seppur.2023.125404
[21] YU J M, XU S C, LIU B, et al. PLA bioplastic production: from monomer to the polymer[J]. European Polymer Journal, 2023, 193: 112076.
doi: 10.1016/j.eurpolymj.2023.112076
[22] MICHELL R M, LADELTA V, DA SILVA E, et al. Poly(lactic acid) stereo complexes based molecular architectures: synthesis and crystallization[J]. Progress in Polymer Science, 2023, 146: 101742.
doi: 10.1016/j.progpolymsci.2023.101742
[23] MA B M, WANG X L, HE Y, et al. Effect of poly(lactic acid) crystallization on its mechanical and heat resistance performances[J]. Polymer, 2021, 212: 123280.
doi: 10.1016/j.polymer.2020.123280
[24] NASER A Z, DEIAB I, DARRAS B M. Poly(lactic acid) (PLA) and polyhydroxyalkanoates (PHAs), green alternatives to petroleum-based plastics: a review[J]. RSC Advances, 2021, 11(28): 17151-17196.
doi: 10.1039/d1ra02390j pmid: 35479695
[25] TAIB N A B, RAHMAN M R, HUDA D, et al. A review on poly lactic acid (PLA) as a biodegradable polymer[J]. Polymer Bulletin, 2023, 80(2): 1179-1213.
doi: 10.1007/s00289-022-04160-y
[26] KRAJOVIC D M, KUMLER M S, HILLMYER M A. PLA block polymers: versatile materials for a sustainable future[J]. Biomacromolecules, 2025, 26(5): 2761-2783.
doi: 10.1021/acs.biomac.5c00161 pmid: 40193281
[27] 杨鑫, 李茹, 邢倩云, 等. 低温等离子体对聚乳酸的表面改性及其应用[J]. 高分子通报, 2022, 35(10): 16-26.
YANG Xin, LI Ru, XING Qianyun, et al. Surface modification of poly(lactic acid) by low temperature plasma and its application[J]. Polymer Bulletin, 2022, 35(10): 16-26.
[28] STEFANIAK K, MASEK A. Green copolymers based on poly(lactic acid):short review[J]. Materials, 2021, 14(18): 5254.
doi: 10.3390/ma14185254
[29] TRIPATHI N, MISRA M, MOHANTY A K. Durable polylactic acid (PLA)-based sustainable engineered blends and biocomposites: recent developments, challenges, and opportunities[J]. ACS Engineering Au, 2021, 1(1): 7-38.
doi: 10.1021/acsengineeringau.1c00011
[30] ZHANG Z M, JIANG P P, LIU D K, et al. Research progress of novel bio-based plasticizers and their applications in poly(vinyl chloride)[J]. Journal of Materials Science, 2021, 56(17): 10155-10182.
doi: 10.1007/s10853-021-05934-x
[31] 唐志强, 赵麟, 刘艳霞, 等. 新型环境友好绿色增塑剂的分子设计[J]. 科学通报, 2022, 67(24): 2835-2847.
TANG Zhiqiang, ZHAO Lin, LIU Yanxia, et al. Molecular design of environmental friendly green plasticizers[J]. Chinese Science Bulletin, 2022, 67(24): 2835-2847.
[32] SHAHDAN D, ROSLI N A, CHEN R S, et al. Strategies for strengthening toughened poly(lactic acid) blend via natural reinforcement with enhanced biodegradability: a review[J]. International Journal of Biological Macromolecules, 2023, 251: 126214.
doi: 10.1016/j.ijbiomac.2023.126214
[33] ZHAO X P, HU H, WANG X, et al. Super tough poly(lactic acid) blends: a comprehensive review[J]. RSC Advances, 2020, 10(22): 13316-13368.
doi: 10.1039/d0ra01801e pmid: 35492128
[34] 彭少贤, 蔡小琳, 胡欢, 等. 环境友好型增塑剂增韧聚乳酸的最新研究进展[J]. 材料导报, 2019, 33(8): 2617-2623.
PENG Shaoxian, CAI Xiaolin, HU Huan, et al. Latest research progress in polylactic acid toughened by environmental friendly plasticizer[J]. Materials Reports, 2019, 33(8): 2617-2623.
[35] MAZIDI M M, AREZOUMAND S, ZARE L. Research progress in fully biorenewable tough blends of polylactide and green plasticizers[J]. International Journal of Biological Macromolecules, 2024, 279: 135345.
doi: 10.1016/j.ijbiomac.2024.135345
[36] BARLETTA M, AVERSA C, AYYOOB M, et al. Poly(butylene succinate) (PBS): materials, processing, and industrial applications[J]. Progress in Polymer Science, 2022, 132: 101579.
doi: 10.1016/j.progpolymsci.2022.101579
[37] HASSAN E A, ELARABI S E, WEI Y, et al. Biodegradable poly (lactic acid)/poly (butylene succinate) fibers with high elongation for health care products[J]. Textile Research Journal, 2018, 88(15): 1735-1744.
doi: 10.1177/0040517517708538
[38] MENG L, CHEN M J, SUN X X, et al. Tailoring the microstructure of biodegradable PLA/PBS melt-blown nonwovens with enhanced mechanical performance by in situ PBS fibrils formation[J]. Industrial & Engineering Chemistry Research, 2024, 63(29): 13016-13024.
doi: 10.1021/acs.iecr.4c00591
[39] FERNÁNDEZ-TENA A, PÉREZ-CAMARGO R A, COULEMBIER O, et al. Effect of molecular weight on the crystallization and melt memory of poly(ε-caprolactone) (PCL)[J]. Macromolecules, 2023, 56(12): 4602-4620.
doi: 10.1021/acs.macromol.3c00234
[40] SHARMA D, SATAPATHY B K. Optimization and physical performance evaluation of electrospun nanofibrous mats of PLA, PCL and their blends[J]. Journal of Industrial Textiles, 2022, 51(4_suppl): 6640-6665.
[41] VAN DE VOORDE K M, POKORSKI J K, KORLEY L T J. Exploring morphological effects on the mechanics of blended poly(lactic acid)/poly(ε-caprolactone) extruded fibers fabricated using multilayer coextru-sion[J]. Macromolecules, 2020, 53(13): 5047-5055.
doi: 10.1021/acs.macromol.0c00289
[42] HUANG Y, BRÜNIG H, BOLDT R, et al. Fabrication of melt-spun fibers from irradiation modified biocompatible PLA/PCL blends[J]. European Polymer Journal, 2022, 162: 110895.
doi: 10.1016/j.eurpolymj.2021.110895
[43] DE SOUZA F M, GUPTA R K. Exploring the potential of bio-plasticizers: functions, advantages, and challenges in polymer science[J]. Journal of Polymers and the Environment, 2024, 32(11): 5499-5515.
doi: 10.1007/s10924-024-03353-y
[44] BOCQUE M, VOIRIN C, LAPINTE V, et al. Petro-based and bio-based plasticizers: chemical structures to plasticizing properties[J]. Journal of Polymer Science Part A: Polymer Chemistry, 2016, 54(1): 11-33.
doi: 10.1002/pola.v54.1
[45] MONNIER X, DELPOUVE N, BASSON N, et al. Molecular dynamics in electrospun amorphous plasticized polylactide fibers[J]. Polymer, 2015, 73: 68-78.
doi: 10.1016/j.polymer.2015.07.047
[46] ARRIETA M P, LÓPEZ J, LÓPEZ D, et al. Biodegradable electrospun bionanocomposite fibers based on plasticized PLA-PHB blends reinforced with cellulose nanocrystals[J]. Industrial Crops and Products, 2016, 93: 290-301.
doi: 10.1016/j.indcrop.2015.12.058
[47] SUN Y F, ECKSTEIN S, NIU X Y, et al. Biobased triesters as plasticizers for improved mechanical and biodegradable performance of polylactic acid fibrous membranes as facemask materials[J]. ACS Sustainable Chemistry & Engineering, 2024, 12(20): 7964-7975.
[48] BEN Z Y, SAMSUDIN H, YHAYA M F. Glycerol: its properties, polymer synthesis, and applications in starch based films[J]. European Polymer Journal, 2022, 175: 111377.
doi: 10.1016/j.eurpolymj.2022.111377
[49] SUN Y F, SUN G. A natural butter glyceride as a plasticizer for improving thermal, mechanical, and biodegradable properties of poly(lactide acid)[J]. International Journal of Biological Macromolecules, 2024, 263: 130366.
doi: 10.1016/j.ijbiomac.2024.130366
[50] OLKHOV A, ALEXEEVA O, KONSTANTINOVA M, et al. Effect of glycero-(9, 10-trioxolane)-trialeate on the physicochemical properties of non-woven polylactic acid fiber materials[J]. Polymers, 2021, 13(15): 2517.
doi: 10.3390/polym13152517
[51] ZAABA N F, JAAFAR M. A review on degradation mechanisms of polylactic acid: hydrolytic, photodegradative, microbial, and enzymatic degrada-tion[J]. Polymer Engineering & Science, 2020, 60(9): 2061-2075.
doi: 10.1002/pen.v60.9
[52] KIM M S, CHANG H, ZHENG L, et al. A review of biodegradable plastics: chemistry, applications, properties, and future research needs[J]. Chemical Reviews, 2023, 123(16): 9915-9939.
doi: 10.1021/acs.chemrev.2c00876 pmid: 37470246
[53] CHAMAS A, MOON H, ZHENG J J, et al. Degradation rates of plastics in the environment[J]. ACS Sustainable Chemistry & Engineering, 2020, 8(9): 3494-3511.
[54] ROSLI N A, KARAMANLIOGLU M, KARGARZADEH H, et al. Comprehensive exploration of natural degradation of poly(lactic acid) blends in various degradation media: a review[J]. International Journal of Biological Macromolecules, 2021, 187: 732-741.
doi: 10.1016/j.ijbiomac.2021.07.196 pmid: 34358596
[55] MOMENI S, CRAPLEWE K, SAFDER M, et al. Accelerating the biodegradation of poly(lactic acid) through the inclusion of plant fibers: a review of recent advances[J]. ACS Sustainable Chemistry & Engineering, 2023, 11(42): 15146-15170.
[56] WU J H, HU T G, WANG H, et al. Electrospinning of PLA nanofibers: recent advances and its potential application for food packaging[J]. Journal of Agricultural and Food Chemistry, 2022, 70(27): 8207-8221.
doi: 10.1021/acs.jafc.2c02611
[57] KANIUK Ł, STACHEWICZ U. Development and advantages of biodegradable PHA polymers based on electrospun PHBV fibers for tissue engineering and other biomedical applications[J]. ACS Biomaterials Science & Engineering, 2021, 7(12): 5339-5362.
[58] ACHARJEE S A, GOGOI B, BHARALI P, et al. Recent trends in the development of Polyhydroxyalkanoates (PHAs) based biocomposites by blending with different bio-based polymers[J]. Journal of polymer Research, 2024, 31(4): 98.
doi: 10.1007/s10965-024-03947-z
[59] LIU G H, GUAN J, WANG X F, et al. Large-scale preparation of mechanically high-performance and biodegradable PLA/PHBV melt-blown nonwovens with nanofibers[J]. Engineering, 2024, 39: 244-252.
doi: 10.1016/j.eng.2023.02.021
[60] LO J S C, CHEN X, CHEN S R, et al. Fabrication of biodegradable PLA-PHBV medical textiles via electrospinning for healthcare apparel and personal protective equipment[J]. Sustainable Chemistry and Pharmacy, 2024, 39: 101536.
doi: 10.1016/j.scp.2024.101536
[61] ARRIETA M P, PERDIGUERO M, FIORI S, et al. Biodegradable electrospun PLA-PHB fibers plasticized with oligomeric lactic acid[J]. Polymer Degradation and Stability, 2020, 179: 109226.
doi: 10.1016/j.polymdegradstab.2020.109226
[62] HAMAD K, KASEEM M, AYYOOB M, et al. Polylactic acid blends: the future of green, light and tough[J]. Progress in Polymer Science, 2018, 85: 83-127.
doi: 10.1016/j.progpolymsci.2018.07.001
[63] SUN S Y, WENG Y X, ZHANG C L. Recent advancements in bio-based plasticizers for polylactic acid(PLA): a review[J]. Polymer Testing, 2024, 140: 108603.
doi: 10.1016/j.polymertesting.2024.108603
[1] LI Zongjie, LI Tengfei, LU Yihan, KANG Weimin. Research progress in coupled electrospinning of multifunctional and multilevel structured nanofiber filtration materials [J]. Journal of Textile Research, 2025, 46(12): 19-28.
[2] LIU Lin, XIA Feifei, XU Xiaoyu, ZHAO Liutao, YE Xiangyu, YU Senlong, SHAO Yu, WU Yue, ZHANG Xinghong, ZHU Feichao. Research progress in biodegradable polymer nonwoven materials and standard system [J]. Journal of Textile Research, 2025, 46(10): 237-246.
[3] ZHANG Xinyu, JIN Xiaopei, ZHU Jintang, CUI Huashuai, WU Pengfei, CUI Ning, SHI Xianning. Improvement of thermal dimensional stability properties of polylactic acid meltblown nonwovens [J]. Journal of Textile Research, 2025, 46(08): 127-135.
[4] CHEN Zhanyu, YU Senlong, ZHOU Jialiang, ZHU Liping, ZHOU Zhe, XIANG Hengxue, ZHU Meifang. Preparation of polylactic acid fabrics modified with phosphonic acid and their properties [J]. Journal of Textile Research, 2025, 46(08): 154-163.
[5] TAN Wenping, ZHANG Shuo, ZHANG Qian, ZHANG Yin, LIU Runzheng, HUANG Xiaowei, MING Jinfa. Preparation and radiation refrigeration properties of polylactic acid fiber aerogel [J]. Journal of Textile Research, 2025, 46(06): 63-72.
[6] SHI Xiaocong, CHEN Li, DU Xun. Preparation of alizarin-polylactic acid/collagen nanofiber membrane and its ammonia detection performance [J]. Journal of Textile Research, 2025, 46(05): 143-150.
[7] ZHANG Huiqin, WU Gaihong, LIU Xia, LIU Shuqiang, ZHAO Heng, LIU Tao. Development and performance evaluation of biodegradable polylactic acid protective masks [J]. Journal of Textile Research, 2025, 46(03): 116-122.
[8] QIAO Sijie, XING Tonghe, TONG Aixin, SHI Zhicheng, PAN Heng, LIU Keshuai, YU Hao, CHEN Fengxiang. Comparison of properties of different polylactic acid materials [J]. Journal of Textile Research, 2025, 46(03): 27-33.
[9] ZHAO Ke, ZHANG Heng, CHENG Wensheng, ZHEN Qi, BU Qingyun, CUI Jingqiang. Melt-blown process and structural characterization of bio-typha polylactic acid medical protective materials [J]. Journal of Textile Research, 2025, 46(02): 51-60.
[10] ZUO Hongmei, GAO Min, RUAN Fangtao, ZOU Lihua, XU Zhenzhen. Preparation and mechanical properties of MXene-graphene oxide modified carbon fiber/polylactic acid composites [J]. Journal of Textile Research, 2025, 46(01): 9-15.
[11] LIU Xia, WU Gaihong, YAN Zihao, WANG Cailiu. Preparation and properties of intelligent phase change thermoregulated polylactic acid fiber membrane [J]. Journal of Textile Research, 2024, 45(12): 18-24.
[12] OU Zongquan, YU Jinchao, PAN Zhijuan. Spinning of photochromic polylactic acid/polyhydroxybutyrate blend fiber and its structure and properties [J]. Journal of Textile Research, 2024, 45(12): 9-17.
[13] LIU Jiawei, JI Dongxiao, QIN Xiaohong. Research progress in electrospun nanofiber materials for air filtration [J]. Journal of Textile Research, 2024, 45(08): 35-43.
[14] CHEN Jinmiao, LI Jiwei, CHEN Meng, NING Xin, CUI Aihua, WANG Na. Preparation and properties of chitosan micro-nanofiber composite antibacterial air filter material [J]. Journal of Textile Research, 2024, 45(05): 19-26.
[15] ZHAI Qian, ZHANG Heng, ZHAO Ke, ZHU Wenhui, ZHEN Qi, CUI Jingqiang. Laminated design and water quick-drying performance of biomimetic bamboo-tube fibrous humidifying materials [J]. Journal of Textile Research, 2024, 45(02): 1-10.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!