NANOFIBER FOR AIR FILTER COMPRISING RANDOM COPOLYMER HAVING ZWITTERIONIC FUNCTIONAL GROUP AND METHOD FOR MANUFACTURING SAME
20230059080 · 2023-02-23
Inventors
- Jae Suk LEE (Gwangju, KR)
- Santosh KUMAR (Gwangju, KR)
- Byung Ju JUNG (Gwangju, KR)
- Hye Min OH (Gwangju, KR)
- Yo Seph JANG (Gwangju, KR)
Cpc classification
D01F6/36
TEXTILES; PAPER
D01D5/003
TEXTILES; PAPER
C08F8/34
CHEMISTRY; METALLURGY
C08F220/34
CHEMISTRY; METALLURGY
B01D2239/10
PERFORMING OPERATIONS; TRANSPORTING
D01D5/0038
TEXTILES; PAPER
C08F8/34
CHEMISTRY; METALLURGY
D01F6/38
TEXTILES; PAPER
B01D2239/0442
PERFORMING OPERATIONS; TRANSPORTING
C08F220/34
CHEMISTRY; METALLURGY
C08F220/46
CHEMISTRY; METALLURGY
D01F6/42
TEXTILES; PAPER
International classification
B01D39/16
PERFORMING OPERATIONS; TRANSPORTING
C08F220/46
CHEMISTRY; METALLURGY
Abstract
A nanofiber for an air filter and a method for manufacturing the same are proposed. The nanofiber may include a styrene-(meth)acrylate-acrylonitrile random copolymer having a zwitterionic functional group in a side chain. The nanofiber can greatly enhance the bonding of particulate matter (PM) particles with the surface of a polymer by having a high dipole moment derived from the zwitterionic functional group, thereby providing high efficiency of filtration (>99.9%) of the PM particles. Furthermore, the nanofiber can be very usefully used as a core material for air purifier filters and vehicle air purification filters by having low airflow resistance and excellent antibacterial properties.
Claims
1. An air filter nanofiber comprising a styrene-(meth)acrylate-acrylonitrile random copolymer having a zwitterionic functional group in a side chain thereof.
2. The air filter nanofiber of claim 1, wherein the zwitterionic functional group comprises a sulfobetaine group.
3. The air filter nanofiber of claim 1, wherein the styrene-(meth)acrylate-acrylonitrile random copolymer comprises polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly(acrylonitrile).
4. The air filter nanofiber of claim 1, wherein the styrene-(meth)acrylate-acrylonitrile random copolymer having a zwitterionic functional group in a side chain is represented by Formula 1: ##STR00003## (l is in a range of 1 to 1500, m is in a range of 1 to 1500, n is in a range of 1 to 2000, and p is in a range of 0 to 1500).
5. The air filter nanofiber of claim 1, wherein the styrene-(meth)acrylate-acrylonitrile random copolymer having a zwitterionic functional group in a side chain is represented by Formula 2: ##STR00004## (in Formula 2, R.sub.1, R.sub.2, and R.sub.3 are each independently hydrogen or alkyl having 1 to 9 carbon atoms, l is in a range of 1 to 1500, m is in a range of 1 to 1500, n is in a range of 1 to 2000, and p is in a range of 0 to 1500).
6. The air filter nanofiber of claim 1, wherein the nanofiber has a fiber diameter of 150 nm to 200 nm.
7. A method of manufacturing nanofibers for an air filter, the method comprising: preparing a styrene-(meth)acrylate-acrylonitrile random copolymer by polymerizing a styrene monomer, a (meth)acrylate monomer, and an acrylonitrile monomer; introducing a zwitterionic functional group into a side chain of the styrene-(meth)acrylate-acrylonitrile random copolymer; and preparing nanofibers by electrospinning the styrene-(meth)acrylate-acrylonitrile random copolymer having the zwitterionic functional group in the side chain.
8. The method of claim 7, further comprising: preparing a polystyrene-co-poly 2-(dimethylamino)ethylmethacrylate-co-poly(acrylonitrile) (ABC) random copolymer by polymerizing a styrene monomer, a 2-(dimethylamino)ethyl methacrylate monomer, and an acrylonitrile monomer; introducing a sulfobetaine group in the side chain by reacting the polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly(acrylonitrile) random copolymer with 1,3-propanesultone; and preparing nanofibers by electrospinning the polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly(acrylonitrile) (ABC) random copolymer having the sulfobetaine group in the side chain.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] Particulate matter (PM), which is one of the representative air pollutants, is fine particles that are not visible with the naked eye. The particulate matter is a substance that floats or flows in the air for a long time. The particulate matter is usually classified into PM10 (2.5 μm<particle size≤10 μm) called fine dust and PM2.5 (particle size≤2.5 μm) called ultrafine dust.
[0029] Various air filter membranes have been developed to effectively filter out such fine dust. Among them, fiber-based high-efficiency particulate air (HEPA) filters and ultra-low particulate air (ULPA) filters are known to collect fine dust with filtration efficiencies of 99.97% and 99.999%, respectively.
[0030] However, although these air filters have high filtration efficiency, clogging frequently occurs in a short time after starting of filtration due to a limited specific surface area, so that a very high pressure drop occurs in the air flow across the filter.
[0031] In describing the present disclosure, well-known functions or constructions will not be described in detail when it is determined that they may obscure the gist of the present disclosure.
[0032] Since embodiments in accordance with the concept of the present disclosure can undergo various changes and have various forms, only some specific embodiments are illustrated in the drawings and described in detail in the present specification. While specific embodiments of the present disclosure are described herein below, they are only for illustrative purposes and should not be construed as limiting to the present disclosure. Thus, the present disclosure should be construed to cover not only the specific embodiments but also cover all modifications, equivalents, and substitutions that fall within the concept and technical spirit of the present disclosure.
[0033] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of the present disclosure. As used herein, the singular forms “a”, “an”, and “the” are intended to include the plural forms as well unless the context clearly indicates otherwise. It will be further understood that the terms “comprise” or “has” when used in the present specification specify the presence of stated features, regions, integers, steps, operations, elements and/or components, but do not preclude the presence or addition of one or more other features, regions, integers, steps, operations, elements, components and/or combinations thereof.
[0034] Hereinafter, the present disclosure will be described in detail. Examples disclosed in the present description can be modified into various other forms, and the scope of the present description is not construed as being limited to the examples described below. Examples are provided to more fully describe the present description to the ordinarily skilled in the art.
[0035] Hereinafter, the present disclosure will be described in detail with reference to examples.
EXAMPLE
1. Synthesis of Zwitterionic/Quaternary Ammonium Random Copolymers (Z-ABC, Q-ABC)
[0036] (1) Synthesis of polystyrene-Co-poly 2-(dimethylamino)ethyl methacrylate-co-poly (acrylonitrile) (ABC) Random Copolymer
[0037] A typical free radical bulk polymerization was performed to synthesize an elastomeric polystyrene-co-poly 2-(dimethylamino)ethylmethacrylate-co-poly(acrylonitrile) (ABC) random copolymer according to a reaction formula shown in
[0038] Styrene (0.955 mol, 99 g), acrylonitrile (0.955 mol, 57.7 g), and 2-(dimethylamino)ethylmethacrylate (1.91 mol, 300 g) were charged into a round bottom flask equipped (1 L) with an overhead mechanical stirrer such that the mole of 2-(dimethylamino)ethyl methacrylate monomer is twice that of each of styrene and acrylonitrile (i.e., the molar ratio of styrene: 2-(dimethylamino) ethyl methacrylate: acrylonitrile is 25:50:25) in the polymer. The added substances were mixed in the flask, and the mixture was degassed with argon for 1 hour. After heating the contents of the flask to 65° C., AIBN (0.002 mol, 0.32 g) was added to initiate polymerization under inert conditions at the same temperature.
[0039] After 4.5 hours from the start of polymerization, the polymerization was terminated by exposing the contents to air. 200 ml of THF was added to the polymerization flask so that the contents of the flask was precipitated in a large amount of hexane. Thus, a sticky and rubbery polymer was obtained. The polymer was dried under vacuum at 60° C. for 24 hours. Thus, the polymer was obtained in a yield of 81%. On the basis of the .sup.1H NMR result, it was confirmed from the ABC copolymer was successfully synthesized (see
[0040] (2) Synthesis of Zwitterionic Elastomer (polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly (acrylonitrile) (Z-ABC) Random Copolymer
[0041] To synthesize a zwitterionic polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly(acrylonitrile) (Z-ABC) random copolymer according to the reaction formula of
[0042] 337.5 g of the ABC copolymer was dissolved in 1500 ml of acetonitrile, 38 ml of 1,3-propanesultone (PS) was added dropwise to the solution under stirring for 1 hour, and the reaction was allowed to proceed for 2 hours. The dimethylamino)ethylmethacrylate groups were converted into zwitterionic N,N-dimethyl-N-methacryloxyethyl-N-(3-sulfopropyl) groups, and thus the product was obtained in 100% yield. The product was washed with acetone two or three times and finally dried under vacuum at 60° C. for one day. Through the .sup.1H NMR spectrum, it was confirmed that the Z-ABC random copolymer was successfully synthesized (see
[0043] (3) Synthesis of Quaternary Ammonium Elastomer (polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly (acrylonitrile) (Q-ABC) Random Copolymer
[0044] To synthesize a quaternary ammonium polystyrene-co-poly 2-(dimethylamino)ethyl methacrylate-co-poly(acrylonitrile) (Q-ABC) random copolymer according to the reaction formula of
[0045] 337.5 g of the ABC copolymer was dissolved in 1500 ml of acetonitrile, 81 ml of methyl iodide (CH.sub.3I) was added dropwise to the solution under stirring for 1.5 hours, and the reaction proceeded for 5 hours at room temperature under continuous stirring. The product was obtained in 94% yield while converting the 2-(dimethylamino)ethylmethacrylate groups to quaternary ammonium groups. The product was washed with isopropyl alcohol three times or four times and finally dried under vacuum at 65° C. for one day. Through the .sup.1H NMR spectrum, it was confirmed that the Q-ABC random copolymer was successfully synthesized (see
2. Preparation of Nanofibers Made of Zwitterionic Random Copolymers and Nanofiber Webs
[0046] A polymer solution containing 25% by weight of the Z-ABC prepared in section 1 was electrospun in dimethylformamide under conditions of a needle gauge of 23 (inner diameter of 0.34 mm), a solution pumping speed of 6 mL/h, a voltage of 27 kV, and a spinning distance of 15 cm, and the electrospun nanofibers were collected in a drum collector rotating at 100 rpm. In this case, the chamber temperature and relative humidity (RH) were 25±2° C. and 55±5% RH, respectively.
[0047] Table 1 below shows the filtration comparison results of nanomembranes made of zwitterionic [polystyrene-co-poly 2-(dimethylamino) ethyl methacrylate-co-poly (acrylonitrile)] (Z-ABC) random copolymer nanofibers for NaCl PM with variable flow rates. As the flow rate of the 25% by weight of the polymer concentration increases from 0.5 ml/h to 2.5 ml/h, the higher the efficiency of the filter, the higher the filtration efficiency, and the thicker the filter, the higher the filtration efficiency and the pressure drop. From the fact described above, it is seen that the filtration efficiency and the pressure drop linearly increase.
TABLE-US-00001 TABLE 1 Filtration performance of air filters made of zwitterionic random copolymer (Z-ABC) nanofibers Polymer Flow Filter Efficiency Pressure Drop Rate (ml/h) (%) (mm H.sub.2O) 0.5 56.14261 2.1 1 80.86443 4.3 1.5 92.33213 7.2 2 96.14354 9.7 2.5 99.92188 18.1
[0048] The prepared electrospun web had a basis weight of about 70 g/m.sup.2, a total thickness of 435 μm, and a fiber diameter of less than 200 nm, as shown in the SEM image of
[0049] The thermal stability of the Z-ABC random copolymer was determined using thermogravimetric analysis (TGA). According to
[0050] In addition, the antibacterial properties of the nanowebs made of the zwitterionic random copolymer (Z-ABC) nanofibers prepared in the examples of the present application were evaluated by the FITI test laboratory as a bacteriostatic reduction rate according to the KS K 0693 standard.
[0051] That is, after culturing each of Staphylococcus aureus and pneumococcus in each of the culture medium itself (‘BLANK’) and the nanoweb (‘#1’) prepared in the example of the present application and containing the culture medium, for 18 hours, the number of viable cells for each strain was measured, and the antibacterial activity was evaluated with the bacteriostatic reduction rate. The results are shown in Table 2 below.
[0052] Referring to Table 2 below, it was confirmed that the nanoweb made of the zwitterionic random copolymer (Z-ABC) nanofibers according to the present disclosure has significantly excellent antibacterial properties to the extent that each of the Staphylococcus aureus and pneumoniae was removed by 99.9%.
TABLE-US-00002 TABLE 2 Result of Antibacterial Test (KS K 0693: 2016) BLANK #1 Strain 1 Initial number of bacteria 1.8 × 10.sup.4 1.8 × 10.sup.4 After 18 hours 1.2 × 10.sup.7 2.2 × 10.sup.3 Bacteriostatic reduction rate — 99.9 Strain 2 Initial number of bacteria 1.8 × 10.sup.4 1.8 × 10.sup.4 After 18 hours 4.2 × 10.sup.7 <10 Bacteriostatic reduction rate — 99.9 Note) Standard cloth: cotton Nonionic surfactant: TWEEN 80, 0.05% is added to an inoculation liquid Test strain used: strain 1 - Staphylococcus aureus ATCC 6538 Strain 2 - Klebsiella pneumoniae ATCC 4352. < = less than
[0053] As described above, the electrospun nanofibers prepared according to the present disclosure exhibit high filtration efficiency (>99.9%) and exhibit low resistance to airflow by having a fiber diameter in the range of 150 to 200 nm. The nanomembrane made of the nanofibers according to the present disclosure exhibiting a synergistic effect of a small fiber diameter and a zwitterionic polar chemical functional group having a high dipole moment value on the outer surface of the fiber is an ideal material for efficiently trapping PM particles.
[0054] Furthermore, the nanofibers obtained through electrospinning according to the present disclosure have a high surface-area-to-volume ratio, low resistance to airflow, improved filtration performance, and excellent antibacterial properties, and thus the nanofibers can be used in various application fields such as air filtration, healthcare, and energy.
[0055] As described above, the present disclosure has been described based on examples and comparative examples, but the technical spirit of the present disclosure is not limited thereto. In addition, it will be apparent to those skilled in the art that modifications or changes can be made within the scope described in the claims in the technical field to which the present disclosure pertains, and such modifications and variations will fall within the scope of the appended claims.
[0056] The nanofiber made of a styrene-(meth)acrylate-acrylonitrile random copolymer having a zwitterionic functional group in the side chain thereof, according to the present disclosure has high filtration efficiency (>99.9%) for particulate matter (PM), low airflow resistance, and excellent antibacterial properties, thereby being very usefully used as a core material of air purifier filters, vehicle air cleaner filters, and the like.