期刊文献+

基于绿色溶剂的聚酰胺纳米纤维膜制备及其空气过滤性能 被引量:4

Preparation of green-solvent-based polyamide nanofiber membrane and its air filtration performance
下载PDF
导出
摘要 为避免在聚酰胺纳米纤维过滤材料制备和使用过程中甲酸等溶剂对人体和环境的潜在危害,采用乙醇(溶剂)和水(非溶剂)通过静电纺丝技术制备了绿色溶剂型聚酰胺纳米纤维膜,分析了纺丝液中乙醇与水的质量比对溶液性质和纤维成形的影响,研究了纳米纤维膜本体结构与空气过滤性能之间的关系。结果表明:在聚酰胺/乙醇溶液体系中加入适量的水能减小纤维直径,但过量的水又会使纤维直径增大,当溶剂中乙醇与水质量比为9:1时,聚酰胺纤维最细,平均直径为332 nm;该聚酰胺纳米纤维膜具有小孔径(0.7μm左右)、高孔隙率(84%)的孔结构,对最易穿透粒径颗粒物PM_(0.3)具有较好的过滤性能,过滤效率为99.02%,阻力压降为158 Pa,品质因子为0.0293 Pa^(-1)。 Objective The epidemic of COVID-19 and its variants is endangering human health.Wearing protective masks can effectively reduce the infection risk by resisting the inhalation of the polluted air containing the coronavirus.Electrospun polyamide nanofibers can be used as the core layer of protective masks and have lately received growing attention because of their high filtration performance and robust mechanical properties.However,existing electrospun polyamide nanofiber filters are usually prepared from toxic solvents which could cause severe environmental pollution and endanger workers′health,hence,their practical application should be restricted.Therefore,it is imperative to seek and develop green-solvent-based polyamide nanofiber filters.Method Innovative polyamide nanofiber filters were developed by direct electrospinning technique based on green solvents(Fig.1).Ethanol as the solvent and water as the nonsolvent were adopted to prepare the green-solvent-based polyamide(GSPA)nanofibers by designing spinning solutions with different ethanol/water mass ratios(i.e.,10:0,9:1,8:2,7:3,and 6:4).During electrospinning process,the working voltage,tip-to-collector distance,and solution extrusion speed were set as 30 kV,15 cm and 1 mL/h,respectively.The nanofibers prepared with the different ethanol/water ratios were denoted as GSPA-0,GSPA-1,GSPA-2,GSPA-3,and GSPA-4,respectively.Results It was found that water content had a great influence on the morphological structures of polyamide nanofibers(Fig.2).After introducing a small amount of water,the obtained GSPA-1 nanofibers featuring thinner diameter of 332 nm were compared to the GSPA-0 nanofibers(499 nm).The enhanced conductivity(10.5μS/cm)of waterborne spinning solutions(Fig.3)stimulated more charges on spinning jets and led to larger electrostatic force,thus greatly elongating the jets and thinning the fiber diameter.However,with the further increment of water concentrations from 20%to 40%,the obtained fibers exhibited an increased average diameter ranging from 443 to 1553 nm,which was mainly attributed to the larger viscosity of spinning solutions.Although water cannot dissolve polyamide,homogenous waterborne polyamide/ethanol solutions can still be obtained with different ethanol/water mass ratios within a broad area in the stable region(Fig.3).The average pore size of GSPA-1 membranes decreased by 55%compared with that of GSPA-0 membranes,contributing to high filtration efficiency.Moreover,with different concentrations(10%,20%,30%)of water,the fluffy structure of GSPA nanofibers were achieved with a high porosity(>80%),which would offer more passageways to transmit air rapidly.As the water concentration increased,the breaking strength of membranes increased at first and then decreased(Fig.5),and the GSPA-1 membranes exhibited the highest breaking strength of 5.6 MPa,which was believed to be related to the enhanced entanglements and contacts among the adjacent fibers because of the small fiber diameter.The GSPA-1 membranes displayed the highest filtration efficiency(99.02%)for the most penetration particles(PM_(0.3))by virtue of the small fiber diameter but suffered from poor permeability with a pressure drop of 158 Pa.Moreover,the GSPA-1 membranes possessed the highest quality factor of 0.0293 Pa^(-1),suggesting the optimal filtration performance among different GSPA membranes.A high PM0.3removal efficiency(>95%)was achieved for GSPA-1 filters under various airflow velocities ranging from 10 to 90 L/min(Fig.7).Compared with conventional melt-blown fibers,the GSPA nanofibers featured a smaller diameter and higher Knudsen number(Fig.8),and PM0.3were captured mainly on the surfaces of green polyamide nanofibers(Fig.9),demonstrating the higher adsorption ability benefiting from the larger specific surface area.Conclusion A cleaner production of polyamide nanofibers for air filtration was proposed by direct electrospinning based on green and sustainable binary solvents of water and ethanol.For the first time,the structure including fiber diameter,porosity,and pore size of electrospun polyamide nanofibers were precisely tailored by manipulating water concentration in spinning solutions.The prepared environmentally friendly polyamide nanofiber filters feature the interconnected porous structure with the nanoscale 1D building blocks(332 nm),mean pore size(0.7μm),and porosity(84%),thus achieving efficient PM0.3capture performance with the filtration efficiency of 99.02%and pressure drop of 158 Pa,which could be comparable to previous toxic-solvent-processed nanofibers.Moreover,the GSPA nanofibers exhibit robust mechanical properties with an impressive breaking strength(5.6 MPa)and elongation(163.9%),contributing to withstanding the external forces and deformation in the practical assembly and usage of resultant filters.It is envisaged that the green-solvent-based polyamide nanofibers could be used as promising candidates for next-generation air filters,and the proposed waterborne spinning strategy can provide valuable insights for cleaner production of advanced polyamide textiles.
作者 周文 俞建勇 张世超 丁彬 ZHOU Wen;YU Jianyong;ZHANG Shichao;DING Bin(College of Textiles,Donghua University,Shanghai 201620,China;Innovation Center for Textile Science and Technology,Donghua University,Shanghai 201620,China)
出处 《纺织学报》 EI CAS CSCD 北大核心 2023年第1期56-63,共8页 Journal of Textile Research
基金 国家重点研发计划项目(2021YFE0105100) 国家自然科学基金项目(52103050) 上海市自然科学基金项目(21ZR1402600)。
关键词 绿色溶剂 静电纺丝 聚酰胺 纳米纤维膜 空气过滤 过滤材料 green solvent electrospinning polyamide nanofiber membrane air filtration filter material
  • 相关文献

参考文献5

二级参考文献28

  • 1AHN Y C, PARK S K, KIM G T, et al. Development of high efficiency nanofilters made of nanofibers [ J ].Curr Appl Phys, 2006, 6 (6) :1030 - 1035.
  • 2YOON K, KIM K, CHU B, et al. High flux ultrafiltration membranes based on electrospun nanofibrous PAN scaffolds and chitosan coating [ J ]. Polymer, 2006, 47:2434 - 2441.
  • 3SHIN C, CHASE G G, RENEKER D H. Recycled expanded polystyrene nanofibers applied in filter media[ J]. Colloids Surf A : Physicochem Eng Aspects,2005, 62 (1-3):211 -215.
  • 4SHIN C, CHASE G G. Water-in-oil coalescence in micro-nanofiber composite filters[ J ]. AICHE J, 2004, 50 (2): 343-350.
  • 5GIBSON P, GIBSON H S, RIVIN R. Transport properties of porous membranes based on electrospun nanofibers [ J ]. Colloids Surf A: Physicochem Eng Aspects, 2001(187 - 188) :469 -481.
  • 6AN H, SHIN C, CHASE G G. Ion exchanger using electrospun polystyrene nanofibers [ J ]. J Membr Sci, 2006, 283(1 -2) :84 -87.
  • 7AMIT Gupta, CARL D Saquing, MEHDI Afshari, et al. Porous nylon-6 fibers via a novel salt-induced electrospinning method [ J ]. Macromolecules, 2009, 42:709 -715.
  • 8WANG Xianfeng, DING Bin, YU Jianyong, et al. A highly sensitive humidity sensor based on a nanofibrous membrance coated quartz crystal microbalance [ J ]. Nanotechnology, 2010, 21 (5): 055502.
  • 9DING Bing, LI Chunrong, MIYAUCHI Yasuhiro, et al. Formation of noval 2-D polymer nanowebs via electrospinning[Jl. Nanotechnology,2006, 17:3685 -3691.
  • 10WANG Xianfeng, DING Bin, WANG Moran, et al. Electrospun nanomaterials for uhrasensitive sensors [ J 1. Mater Today, 2010, 13 : 16 -27.

共引文献43

同被引文献40

引证文献4

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部