为缓解塑料造成的白色污染、降低紫外线对紫外光敏产品的影响,选择可生物降解的聚乙烯醇(PVA)作为成膜基材,以去离子水为溶剂,木质素磺酸钠(LS)为抗紫外线剂,采用静电纺丝技术制备了具有紫外线防护功能的可生物降解PVA/LS复合纳米纤维膜。研究了LS对PVA/LS复合纳米纤维膜微观形貌、抗紫外线性能及透光率的影响。结果表明:PVA/LS复合纳米纤维膜的纤维形貌良好无串珠产生;LS添加量为4.5%(质量分数)时,复合纳米纤维膜对中波紫外线(UVB)、长波紫外线(UVA)的屏蔽率分别达到82.3%、65.4%,抗紫外线性能远优于纯PVA纳米纤维膜;PVA/LS复合纳米纤维膜在波长555nm处的透光率均大于70%,在阻挡部分可见光能量的同时保持了良好的透明度。
To alleviate the white pollution caused by plastics and reduce the adverse effects of UV light on UV-sensitive products,biodegradable polyvinyl alcohol (PVA) was chosen as the film-forming substrate,deionized water as the solvent,and sodium lignosulfonate (LS) as the anti-UV agent to prepare biodegradable composite nanofiber membranes with UV protection through electrostatic spinning technology.The effects of LS on the microscopic morphology,UV resistance and light transmission of PVA/LS composite nanofiber membranes were investigated.The results showed that:the fiber morphology of PVA/LS composite membrane was good without beads.When the LS content was 4.5% (mass fraction),the shielding rate of the composite nanofiber membrane against UVB and UVA reached 82.3% and 65.4%,respectively,and the anti-UV performance was much better than that of pure PVA membrane.The light transmission rate of PVA/LS composite membrane at wavelength 555 nm was greater than 70%,maintaining good transparency while blocking part of the visible light energy.
[1] 闵甜甜.多功能抗菌活性包装材料的设计及其在果蔬保鲜中的应用[D].北京:北京科技大学,2022.
[2] 胡晓敏.乳酸钙浸渍和短波紫外光照射对鲜切猕猴桃品质及抗氧化活性的影响[D].雅安:四川农业大学,2022.
[3] 陈荣圻.紫外线照射下的相关有害化学物质[J].染整技术,2019,41(8):7-13.
[4] 柴莉,王劲阳,王广林,等.具有抗紫外性能的PVA/HPMC复合改性薄膜[J].化工新型材料,2022,50(9):104-109.
[5] 李淑琪.抗菌木质素基聚氨酯泡沫制备及性能研究[D].赣州:江西理工大学,2022.
[6] Starkova Olesja,Sabalina Alisa,Voikiva Vanda,et al.Environmental effects on strength and failure strain distributions of sheep wool fibers[J].Polymers,2022,14(13):2651.
[7] Song Jianing,Zhang Wenluan,Sun Zhengnan,et al.Durable radiative cooling against environmental aging[J].Nature Communications,2022,13(1):4805.
[8] 魏嘉嘉,王隆,沈佳怡,等.环境中的微塑料老化对其理化性质和生态毒性的影响[J].绿色科技,2022,24(10):195-199.
[9] 宋明建,李宜航,熊玉竹.聚乙烯醇气凝胶多孔骨架结构对相变材料的封装及导热性能影响研究[J].化工新型材料,2023,51(7):132-139.
[10] 凌云,雍炜,边煜,等.基于确定性迁移模型研究聚乙烯食品接触材料中紫外吸收剂的迁移规律[J].中国食品卫生杂志,2021,33(6):733-738.
[11] 贾琳,王西贤,陶文娟,等.聚丙烯腈/UV327复合纳米纤维膜的防紫外线性能[J].高分子材料科学与工程,2021,37(3):72-78.
[12] 朱建新,杨建军,吴庆云,等.纳米SiO2/含氟丙烯酸酯的制备及抗紫外老化性能研究[J].化工新型材料,2022,50(8):188-193.
[13] 李慧,毕菲,李运成,等.静电纺丝法制备ZnO纳米纤维及性能分析[J].吉林建筑大学学报,2022,39(5):40-44.
[14] Zhang X,Liu W,Liu W,et al.High performance PVA/lignin nanocomposite films with excellent water vapor barrier and UV-shielding properties[J].International Journal of Biological Macromolecules,2020(142):551-558.
[15] Shankar S,Reddy J P,Rhim J W.Effect of lignin on water vapor barrier,mechanical,and structural properties of agar/lignin composite films[J].International Journal of Biological Macromolecules,2015(81):267-273.
[16] 姜波,郭新宇,焦欢,等.木质素基复合材料的直写式3D打印及其功能应用[J].复合材料学报,2023,40(4):1913-1923.
[17] 严振宇,陈远航,吴珽,等.木质素功能材料的应用研究进展[J].应用化工,2022,51(2):491-495;500.
[18] Sadeghifar H,Ragauskas A.Perspective on technical lignin fractionation[J].ACS Sustainable Chemistry & Engineering,2020,8(22):8086-8101.
[19] 万玉玲.木质素磺酸盐纳米棒增强复合材料制备及性能研究[D].北京:北京林业大学,2021.
[20] Li Xinxiang,Chen Xin,Zhang Suwen,et al.UV-resistant transparent lignin-based polyurethane elastomer with repeatable processing performance[J].European Polymer Journal,2021,159:110763.
[21] 唐梦琪,张晓璇,吴炜鑫,等.木质素基抗紫外线防护材料的应用研究进展[J].中国造纸学报,2023,38(1):99-107.
[22] 张梦丽,陈港,魏渊,等.木质素-纳米纤维素复合薄膜的制备及其紫外光屏蔽性能[J].复合材料学报,2022,39(3):1239-1248.
[23] 房东君.木素碳点、SnO2和纳米纤维素在钙钛矿太阳电池和太阳隔热膜中的应用[D].广州:华南理工大学,2021.
基金资助
国家自然科学基金(52161017);新疆维吾尔自治区自然科学基金(2022D01C386)