SEMIPERMEABLE MEMBRANE FOR WAITER TREATMENT, PREPARING METHOD FOR THE SAME, AND POLLUTED WATER TREATMENT SYSTEM INCLUDING THE SAME
20210101120 · 2021-04-08
Assignee
Inventors
- HYUNGKOUN CHO (Suwon-si, KR)
- Youngbeen Kim (Ansan-si, KR)
- Dongsu Kim (Suwon-si, KR)
- SUNG HYEON JUNG (Hwaseong-si, KR)
Cpc classification
B01D67/0088
PERFORMING OPERATIONS; TRANSPORTING
B01D69/02
PERFORMING OPERATIONS; TRANSPORTING
Y02W10/37
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
B01D2325/10
PERFORMING OPERATIONS; TRANSPORTING
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
B01D61/14
PERFORMING OPERATIONS; TRANSPORTING
B01D69/145
PERFORMING OPERATIONS; TRANSPORTING
B01D67/0072
PERFORMING OPERATIONS; TRANSPORTING
B01D67/0051
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
B01D67/00
PERFORMING OPERATIONS; TRANSPORTING
B01D69/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure relates to a semipermeable membrane for water treatment, including a photoactive layer. The photoactive layer includes a plurality of one-dimensional nano structure bundles and the one-dimensional nano structure is nano-structured so that a surface of the semipermeable membrane for water treatment has a hydrophobicity.
Claims
1. A semipermeable membrane for water treatment, comprising: a photoactive layer, wherein the photoactive layer includes a plurality of one-dimensional nano structure bundles and the one-dimensional nano structure is nano-structured so that a surface of the semipermeable membrane for water treatment has a hydrophobicity.
2. The semipermeable membrane for water treatment according to claim 1, wherein light is irradiated onto the photoactive layer to allow the photoactive layer to have photodegradation property.
3. The semipermeable membrane for water treatment according to claim 1, wherein both ends of the one-dimensional nano structure include a dangling bond and a side surface has a hydrophobicity.
4. The semipermeable membrane for water treatment according to claim 1, wherein the one-dimensional nano structures are bonded to each other by the Van der Waals force.
5. The semipermeable membrane for water treatment according to claim 1, wherein the one-dimensional nano structure includes a Sb.sub.2X.sub.3(X is S, Se, or Te) one-dimensional nano structure.
6. The semipermeable membrane for water treatment according to claim 5, wherein the one-dimensional nano structure includes an n-type Sb.sub.2X.sub.3 or a p-type Sb.sub.2X.sub.3.
7. The semipermeable membrane for water treatment according to claim 1, wherein a contact angle of the photoactive layer surface is 130° or larger.
8. A preparing method of a semipermeable membrane for water treatment, comprising: growing a plurality of one-dimensional nano structures on a first substrate so as to expose side surfaces of the one-dimensional nano structures, wherein the side surfaces of the one-dimensional nano structure have hydrophobicity.
9. The preparing method of a semipermeable membrane for water treatment according to claim 8, further comprising: depositing the one-dimensional nano structure on a second substrate by performing a heat treatment on the one-dimensional nano structure, wherein the one-dimensional nano structure is deposited so as to be horizontally rearranged on the second substrate.
10. The preparing method of a semipermeable membrane for water treatment according to claim 8, wherein the one-dimensional nano structure includes a Sb.sub.2X.sub.3(X is S, Se, or Te) one-dimensional nano structure.
11. The preparing method of a semipermeable membrane for water treatment according to claim 9, wherein the depositing of the one-dimensional nano structure is performed by a process including a method selected from a group consisting of CVD, PVD, electric deposition, ALD, and a combination thereof.
12. The preparing method of a semipermeable membrane for water treatment according to claim 8, wherein the first substrate includes a material selected from a group consisting of glass, Mo, SiO.sub.2, silicon, silicon carbide, germanium, silicon germanium, InAs, AlAs, GaAs, InP, GaN, InGaAs, InAlAs, GaSb, AlSb, AlP, GaP, ITO, FTO, and a combination thereof.
13. The preparing method of a semipermeable membrane for water treatment according to claim 9, wherein the second substrate includes a material selected from a group consisting of polyimide, polyether-sulfone, polyethylene naphthalate, polyethylene terephthalate, polycarbonate, polyoxymethylene (POM), epoxy, polyphthalamide, polycyclic olefins/polynorbornenes (PCO), polyetheretherketone (PEEK), polyarlyates (PAR), and a combination thereof.
14. A polluted water treatment system using a semipermeable membrane for water treatment according to claim 1, wherein the polluted water includes oil and a polluted material, the oil penetrates the semipermeable membrane for water treatment to be removed, and the polluted material is decomposed by the photoactive layer to be removed.
15. The polluted water treatment system according to claim 14, wherein light is irradiated onto the photoactive layer so that the polluted material is decomposed by the photoactive layer.
16. The polluted water treatment system according to claim 14, further comprising: a power source which applies a voltage to the photoactive layer.
17. The polluted water treatment system according to claim 16, wherein the power source includes an energy source selected from a group consisting of a solar cell, a piezoelectric device, a thermoelectric device, a magnetic fluid, a triboelectricity, a photoelectric device, and a combination thereof.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0038] The above and other aspects, features and other advantages of the present disclosure will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
[0039]
[0040]
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[0044]
[0045]
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[0050]
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DETAILED DESCRIPTION OF THE EMBODIMENT
[0054] Hereinafter, the present disclosure will be described more fully hereinafter with reference to the accompanying drawings, in which exemplary embodiments of the present disclosure are shown.
[0055] However, the present disclosure can be realized in various different forms, and is not limited to the embodiments described herein. Accordingly, in order to clearly explain the present disclosure in the drawings, portions not related to the description are omitted. Like reference numerals designate like elements throughout the specification.
[0056] Throughout this specification of the present disclosure, when it is described that an element is “coupled” to another element, the element may be “directly coupled” to the other element or “electrically coupled” to the other element through a third element.
[0057] Through the specification of the present disclosure, when one member is located “on”, “above”, “on an upper portion”, “below”, “under”, and “on a lower portion” of the other member, the member may be adjacent to the other member or a third member may be disposed between the above two members.
[0058] In the specification of the present disclosure, unless explicitly described to the contrary, the word “comprise” and variations such as “comprises” or “comprising”, will be understood to imply the inclusion of stated elements but not the exclusion of any other elements.
[0059] The terms “about or approximately” or “substantially” indicating a degree used throughout the specification are used as a numerical value or a meaning close to the numerical value when a unique manufacturing and material tolerance is proposed to the mentioned meaning and also used to prevent unscrupulous infringers from wrongfully using the disclosure in which precise or absolute numerical values are mentioned for better understanding of the present disclosure. Terms used throughout the specification, “˜step of ˜ing” or “step of˜” do not mean “step for˜”.
[0060] Throughout the specification of the present disclosure, the term “combination thereof” included in the expression of Markushi format refers to a mixture or a combination of one or more selected from a group consisting of components described in the expression of the Markushi format and it means that one or more selected from the group consisting of the components is included.
[0061] Throughout the specification of the present disclosure, the description of “A and/or B” refers to “A or B” or “A and B”.
[0062] Throughout the specification of the present disclosure, the description of “vertically growing” includes not only an angle between a growing direction of a material on a substrate and the substrate which is exactly 90°, but also the angle which is approximately 70° to 110°.
[0063] Throughout the specification of the present disclosure, the description of “horizontally disposing” includes not only an angle between a growing direction of a material on a substrate and the substrate which is exactly 0°, but also the angle which is approximately 30° or lower.
[0064] Throughout the specification of the present disclosure, the description of “polluted material” may include not only a material which generally pollutes water such as excreta, sludge, and dyes, but also a material in which the above-mentioned material is dissolved, for example, water.
[0065] Hereinafter, a semipermeable membrane for water treatment, a preparing method thereof, and a polluted water treatment system including the same will be described in detail with reference to implementation examples, exemplary embodiments, and drawings. However, the present disclosure is not limited to the implementation examples, the exemplary embodiments, and the drawings.
[0066]
[0067] As a technical means to achieve the above-described technical object, a first aspect of the present disclosure provides a semipermeable membrane 10 for water treatment including a photoactive layer 100 in which the photoactive layer 100 includes a plurality of one-dimensional nano structure 110 bundles and the one-dimensional nano structure 110 is nano-structured so that a surface of the semipermeable membrane 10 for water treatment has hydrophobicity.
[0068] As it will be described below, the semipermeable membrane 10 for water treatment does not include a nano structure in which the one-dimensional nano structure 110 is vertically grown and a surface of the photoactive layer 100 is flat.
[0069] Water has good reactivity, dissolves various materials, is used for various purposes such as manufacturing industries and chemical reactions, and is an essential material for life activities. However, the water used for the manufacturing industries and the chemical reaction may include various organic polluted materials and/or inorganic polluted materials so that a purifying process is additionally requested and studies for optimizing the purifying process is actively conducted in the field of industries.
[0070] In order to purify various wasted waters, the present disclosure provides a semipermeable membrane 10 for water treatment which separates a polar solvent (water) and non-polar solvent (oil) included in wasted water and photodegrades a polluted material included in the polar solvent, a preparing method thereof, and a polluted water treatment system including the same.
[0071] Referring to
[0072] According to an implementation example of the present disclosure, the semipermeable membrane 10 for water treatment or the photoactive layer 100 may be formed on the first substrate 200, but are not limited thereto.
[0073] On the photoactive layer 100 according to the present disclosure, the one-dimensional nano structures 110 are three-dimensionally randomly disposed and the photoactive layer 100 may simultaneously include the hydrophilic surface 111 and the hydrophobic surface 112 of the one-dimensional nano structure 110. The hydrophobic surface 112 allows the photoactive layer 100 to have hydrophobicity and as it will be described below, the photoactive layer 100 may photodegrade the polluted material 420 by the photodegradation performance of the one-dimensional nano structure 110.
[0074] The first substrate 200 according to the present disclosure may refer to any one of a substrate with a round surface, a porous support (not illustrated) including pores of 1 μm to 200 μm, or a substrate with a round surface formed on the porous support and in
[0075] Even though not illustrated in
[0076] Further, water droplets formed by the hydrophobic surface 112 of the one-dimensional nano structure 110 or water droplets provided on the surface of the photoactive layer 100 and the semipermeable membrane 10 for water treatment may include moisture selected from a group consisting of the polluted water 400, the polluted material 420, a purified water 500, and a combination thereof.
[0077] With regard to this, the semipermeable membrane 10 for water treatment may separate the oil 410 and the polluted material 420 using the hydrophobicity of the photoactive layer 100 without using the first substrate 200 and also photodegrade the polluted material 420, but is not limited thereto.
[0078] The one-dimensional nano structure according to the present disclosure refers to a nano material having a one-dimensional structure. As it will be described below, the photoactive layer 100 may have hydrophobicity and/or hydrophilicity depending on the surface of the one-dimensional nano structure 110.
[0079] As it will be described below, the semipermeable membrane 10 for water treatment or the photoactive layer 100 does not allow the polluted material 420 to penetrate, but allows the oil 410 to penetrate, so that the polluted material 420 and the oil 410 are separated. With regard to this, the polluted material 420 may exist on the surface of the semipermeable membrane 10 for water treatment or the photoactive layer 100 according to the nano structure and the hydrophobicity of the one-dimensional nano structure 110 and porous pores may be required to allow the oil 410 to penetrate.
[0080] The photoactive layer 100 of the semipermeable membrane for water treatment has semipermeability to separate the polluted material 420 including a pollutant and an organic solvent and the oil 410 and receives light to photodegrade the polluted material 420.
[0081] According to an implementation example of the present disclosure, the light is irradiated to allow the photoactive layer 100 to have photodegradation property, but it is not limited thereto.
[0082]
[0083] Referring to
[0084] However, referring to
[0085] According to an implementation example of the present disclosure, the one-dimensional nano structure 110 on the photoactive layer 100 may be nano-structured, but is not limited thereto.
[0086]
[0087] A Cassie-Baxter effect may be derived by the nano-structurization. The Cassie-Baxter effect refers to an effect that the water droplet has a large contact angle in a complex state with a large fraction of gas in which the water droplets float on the surface of the nano structure without being smeared.
[0088] Generally, as the material is nano-structured, the material may have hydrophobicity by the Cassie-Baxter effect. However, as illustrated in
[0089] Referring to
[0090] However, when the structure of the photoactive layer 100 includes a nano structure in which the one-dimensional nano structure 110 does not vertically grow, the photoactive layer 100 may have hydrophobicity due to the one-dimensional nano structure 110. With regard to this, when the air cavities are sufficiently generated on the surface of the photoactive layer 100 due to the one-dimensional nano structure 110, the hydrophobicity of the photoactive layer 100 is improved by the Cassie-Baxter effect so that the water does not penetrate the semipermeable membrane 10 for water treatment or the photoactive layer 100.
[0091] According to an implementation example of the present disclosure, a contact angle of the surface of the photoactive layer 100 may be 130° or larger, but it is not limited thereto.
[0092] The contact angle according to the present disclosure is an angle formed by the liquid droplet and a surface of a solid material at an interface of phases where the solid, a liquid (liquid droplet), and gas intersect when there are water droplets on the surface of the solid material and is expressed by θ.sub.c. The contact angle may be determined by an interfacial tension γ.sub.SL, between the solid and the liquid, an interfacial tension γ.sub.SG between the solid and the gas, and an interfacial tension γ.sub.LG between the liquid and the gas and three interfacial tensions and the contact angle may form the relationship represented by the following Equation 1.
γ.sub.SG=γ.sub.SG+γ.sub.SG×cos(θ.sub.c) [Equation 1]
[0093] Generally, a material having a contact angle with respect to water which is smaller than 90° is referred to as a hydrophilic material and a material having a contact angle which exceeds 90° is referred to as a hydrophobic material. With regard to this, a material having a contact angle with respect to the water which is 150° is referred to as a superhydrophonic material and the superhydrophobicity is also analyzed as a property which pushes water so that the superhydrophobicity is also referred to as water repellency.
[0094] As described above, the photoactive layer 100 according to the present disclosure includes a hydrophilic surface 111 and a hydrophobic surface 112 of the one-dimensional nano structure 110 which is three-dimensionally randomly disposed so that the photoactive layer 100 may have both the hydrophilicity and the hydrophobicity.
[0095] According to an implementation example, both ends of the one-dimensional nano structure 110 have a dangling bond and a side surface has hydrophobicity, but are not limited thereto.
[0096] According to an implementation example, the one-dimensional nano structures 110 may be bonded to each other by the Van der Waals force, but are not limited thereto.
[0097] The dangling bond according to the present disclosure which is a kind of surface defects refers to a part where the bonding of atoms is disconnected. Specifically, atoms on a crystal surface or a bonding site in the crystal may exist in a state where some bonds are disconnected due to coordinative unsaturation, unlike atoms within the perfect crystal, and the dangling bond refers to the broken bond. When an atom or molecule approaches the dangling bond, it may easily form a chemical bond.
[0098] Since the both ends of the one-dimensional nano structure 110 include the dangling bond, the both ends may have a property which is easily bonded with the water, that is, hydrophilicity. However, a surface other than the both ends of the one-dimensional nano structure 110, that is, the side surface does not include the dangling bond, so that the side surface is not bonded with the water. Therefore, the side surface may have a hydrophobicity.
[0099] With regard to this, the side surface of the one-dimensional nano structure 110 may be bonded with a side surface of another one-dimensional nano structure 110 by the Van der Waals force, rather than by the dangling bond. The Van der Waals force is a very weak bond as compared with an ionic bond, a metal bond, or a covalent bond, so that the separation may be easily caused. Accordingly, the photoactive layer 100 may include one-dimensional nano structure 110 bundles with a very small thickness.
[0100]
[0101] Referring to
[0102] With regard to this, when water droplets are dropped on the photoactive layer 100, the water droplets are scattered into smaller water droplets due to impact, but the water droplets are aggregated due to the above-mentioned superhydrophobicity. As a result, the water droplets may bounce on the photoactive layer 100 or exist on the surface of the photoactive layer 100.
[0103] According to an implementation example of the present disclosure, the one-dimensional nano structure 110 may include a one-dimensional nano structure of Sb.sub.2X.sub.3 (X is S, Se, or Te), but is not limited thereto.
[0104] According to an implementation example of the present disclosure, the one-dimensional nano structure 110 may include n-type Sb.sub.2X.sub.3 or p-type Sb.sub.2X.sub.3, but is not limited thereto.
[0105] Desirably, the one-dimensional nano structure 110 may include n-type Sb.sub.2Se.sub.3 or p-type Sb.sub.2Se.sub.3, but is not limited thereto.
[0106] As it will be described below, the one-dimensional nano structures 110 may be formed with the same composition and different semiconductor types according to the preparing method.
[0107]
[0108] Referring to
[0109] Referring to
[0110] A second aspect of the present disclosure provides a preparing method of a semipermeable membrane 10 for water treatment which includes a step of growing a plurality of one-dimensional nano structures 110 on a first substrate 200 so as to expose side surfaces of the one-dimensional nano structures 110 and the side surfaces of the one-dimensional nano structures 110 have hydrophobicity.
[0111] A detailed description of repeated parts of the preparing method of a semipermeable membrane 10 for water treatment according to the second aspect of the present disclosure with the first aspect of the present disclosure will be omitted. However, even though the detailed description thereof is omitted, the description of the first aspect of the present disclosure may be applied to the second aspect of the present disclosure in the same manner.
[0112]
[0113] Referring to
[0114] According to an implementation example, the step of growing the one-dimensional nano structure 110 on the first substrate 200 may include a step of depositing a first precursor (not illustrated) on the first substrate, a step of depositing a second precursor on the deposited first precursor, and a step of performing a heat treatment on the first precursor and the second precursor, but is not limited thereto.
[0115] For example, when the one-dimensional nano structure 110 is Sb.sub.2Se.sub.3, Sb is deposited on the first substrate 200 and Se is deposited on the Sb, and then the heat treatment is performed on the Sb—Se material to form Sb.sub.2Se.sub.3.
[0116] According to an implementation example, the depositing step may be performed by a process including a method selected from a group consisting of electric deposition, PVD, CVD, ALD, and a combination thereof, but is not limited thereto.
[0117] A time required in the heat-treatment step and a composition of the second precursor are adjusted so that n-type and p-type one-dimensional nano structures 110 may coexist and one-dimensional nano structures 110 may also be formed to have a single crystal structure or a polycrystalline structure.
[0118] For example, during the process of synthesizing the Sb.sub.2Se.sub.3 one-dimensional nano structure 110, an amount of Se gas is adjusted so that p-type and n-type Sb.sub.2Se.sub.3 may coexist. Specifically, in order to synthesize Sb.sub.2Se.sub.3, when Se is deposited on Sb and a temperature is raised, Se may be excessively lost due to a low melting point of Se. Even though the Sb reacts with Se to form Sb.sub.2Se.sub.3, there may be a p-type Sb—Se defect on the Sb.sub.2Se.sub.3 due to the excessive loss of Se. When the heat treatment is performed on Sb.sub.2Se.sub.3 with the p-type Sb—Se defect without moving a chamber, the inside of the chamber becomes an atmosphere with abundant Se during the process in which the Se is excessively lost so that the one-dimensional nano structure 110 may include an n-type Sb.sub.2Se.sub.3 one-dimensional nano structure 110 including a p-type Sb—Se defect.
[0119] As the heat treatment time of the Sb.sub.2Se.sub.3 is shorter, a sufficient time to recrystallize the Sb.sub.2Se.sub.3 is not ensured so that the Sb.sub.2Se.sub.3 may have a polycrystalline structure.
[0120] According to an implementation example of the present disclosure, a step of depositing the one-dimensional nano structure 110 on a second substrate 300 by performing the heat treatment on the one-dimensional nano structure 110 which is grown on the first substrate 200 is further included and the one-dimensional nano structure 110 is deposited to be horizontally rearranged on the second substrate 300, but is not limited thereto. Desirably, the photoactive layer 100 including the one-dimensional nano structure 110 which is horizontally rearranged may include a hydrophobic surface 112, or a hydrophilic surface 111 and a hydrophobic surface 112 of the one-dimensional nano structure 110.
[0121] With regard to this, during a step of evaporating the one-dimensional nano structure 110 to be transferred onto the second substrate 300, the one-dimensional nano structure 110 material itself may be maintained. However, the bonding structure of the one-dimensional nano structure 110 is modified due to the deposition so that the bonding structure of the one-dimensional nano structure 110 on the second substrate 300 may be different from the bonding structure of the one-dimensional nano structure 110 on the first substrate 200.
[0122] According to an implementation example of the present disclosure, the semipermeable membrane 10 for water treatment may include the photoactive layer 100 which is peeled off from the first substrate 200 or the second substrate 300 and includes the one-dimensional nano structure 110, but is not limited thereto.
[0123] As described in detail above, when the one-dimensional nano structure 110 is vertically grown on the first substrate 200, the photoactive layer 100 including the one-dimensional nano structure 110 may not have hydrophobicity. In order to solve the problems caused by the vertical growth, a step of depositing the one-dimensional nano structure 110 on the second substrate 300 may be further included.
[0124] Generally, a process of forming the photoactive layer 100 including the one-dimensional nano structure 110 may be performed on the first substrate 200 which is a soft material. When there is a necessity to bend the semipermeable membrane for water treatment, the photoactive layer 100 formed on the first substrate 200 may be deposited or transferred onto the second substrate 300.
[0125] According to an implementation example of the present disclosure, the one-dimensional nano structure 110 may include a one-dimensional nano structure of Sb.sub.2X.sub.3 (X is S, Se, or Te), but is not limited thereto.
[0126] According to an implementation example of the present disclosure, the first substrate 200 may include a material selected from a group consisting of glass, Mo, SiO.sub.2, silicon, silicon carbide, germanium, silicon germanium, InAs, AlAs, GaAs, InP, GaN, InGaAs, InAlAs, GaSb, AlSb, AlP, GaP, ITO, FTO, and a combination thereof, but is not limited thereto.
[0127] According to an implementation example of the present disclosure, the second substrate 300 may include a material selected from a group consisting of polyimide, polyether-sulfone, polyethylene naphthalate, polyethylene terephthalate, polycarbonate, polyoxymethylene (POM), epoxy, polyphthalamide, polycyclic olefins/polynorbornenes (PCO), polyetheretherketone (PEEK), polyarlyates (PAR), and a combination thereof, but is not limited thereto.
[0128] According to an implementation example of the present disclosure, the first substrate 200 and the second substrate 300 may have a shape selected from a group consisting of a circle, a cylinder, a polygon, a polygonal column, a column including an atypical surface, and a combination thereof, but is not limited thereto.
[0129] According to an implementation example of the present disclosure, the first substrate 200 and the second substrate 300 may further include a mesh type third substrate (not illustrated) including a hydrophobic material, but is not limited thereto. For example, the third substrate may include a Pt mesh.
[0130] According to an implementation example of the present disclosure, the first substrate 200 and the second substrate 300 may include a porous support (not illustrated) including pores of 1 μm to 200 μm, but is not limited thereto.
[0131] For example, the semipermeable membrane 10 for water treatment is formed by forming the one-dimensional nano structure 110 on the mesh type first substrate 200 with a round surface and then transferring the one-dimensional nano structure 110 onto the second substrate 300 or formed by disposing the one-dimensional nano structure 110 and the first substrate 200 on the second substrate 300.
[0132] The semipermeable membrane 10 for water treatment limits the penetration of the polluted material 420 to selectively separate the oil 410 and the polluted material 420. The polluted material 420 may exist on the semipermeable membrane 10 for water treatment, the photoactive layer 100, the first substrate 200, or the second substrate 300 by the hydrophobicity or superhydrophobicity of the photoactive layer 100, but the oil 410 needs to penetrate the semipermeable membrane 10 for water treatment.
[0133] As described in detail above, the polluted material 420 is separated from the oil 410 due to the hydrophobicity of the photoactive layer 100 and also may be photodegraded by the photodegradation performance of the photoactive layer 100. Further, the first substrate 200 and/or the second substrate 300 on which the semipermeable membrane 10 for water treatment is formed may include a porous support to ensure a permeation path of the oil 410.
[0134] A third aspect of the present disclosure provides a polluted water treatment system (not illustrated) using the semipermeable membrane 10 for water treatment according to the first aspect in which the polluted water 400 includes oil 410 and a polluted material 420, the oil 410 permeates the semipermeable membrane 10 for water treatment to be removed and the polluted material 420 is decomposed by the photoactive layer 100 to be removed.
[0135] A detailed description of repeated parts of the polluted water treatment system according to the third aspect of the present disclosure with the first aspect and the second aspect of the present disclosure will be omitted. However, even though the detailed description thereof is omitted, the description of the first aspect and the second aspect of the present disclosure may be applied to the third aspect of the present disclosure in the same manner.
[0136]
[0137] Referring to
[0138] According to an implementation example of the present disclosure, light is irradiated onto the photoactive layer 100 so that the polluted material 420 may be decomposed by the photoactive layer 100, but is not limited thereto.
[0139] According to an implementation example of the present disclosure, a wavelength of the light irradiated onto the photoactive layer 100 may be 200 nm to 800 nm, but is not limited thereto. The range of the wavelength of the light may vary depending on a kind of the polluted material 420.
[0140] The polluted water 400 according to the present disclosure includes the oil 410 and the polluted material 420. The oil 410 and the polluted material 420 of the polluted water 400 may be separated by the semipermeable membrane 10 for water treatment and a water component of the polluted water 400 may exist in the same area as the polluted material 420.
[0141] The oil 410 according to the present disclosure refers to a non-polar solvent which is not mixed with the polluted material 420. For example, the oil 410 may include a non-polar solvent selected from a group consisting of hexane, diiodomethane, benzene, chloroform, diethyl ether, diisopropyl ether, 1,4-dioxane, and a combination thereof, but is not limited thereto.
[0142] The polluted material 420 according to the present disclosure may include factory wastewater, agricultural wastewater, household wastewater, or livestock wastewater in which organic dyes such as methyl orange, methylene blue, Rhodamine B, or brilliant green or a pollutant such as OCN.sup.−, dichromate, Hg.sup.2+, Co.sup.2+, Cu.sup.2+, dichloromethane, tetrachloroethylene, 1,2-dibromo-3-chloropropane, trichloroethylene, CCl.sub.3CH(OH).sub.2, CH.sub.3Cl, CHBr.sub.3, CCl.sub.4, CCl.sub.3COO.sup.−, chlorobenzoic acid, detergents, excrement, pesticides, or fertilizers are included on a polar solvent represented by water, but is not limited thereto.
[0143] With regard to this, when the oil 410 is hexane and the polluted material 420 includes water, since hexane and water are colorless materials, it may be difficult to distinguish a material which penetrates the semipermeable membrane 10 for water treatment. In order to solve the problems, the oil 410 may further include a dye such as oil-blue A, and the polluted material 420 may further include a dye such as methyl orange.
[0144] According to an implementation example of the present disclosure, the polluted material 420 may be decomposed by the light irradiated and a voltage applied, to the photoactive layer 100, but is not limited thereto.
[0145] Specifically, when the polluted water 400 is injected into the purifying device, the oil 410 may be separated from the polluted material 420 due to the semipermeability of the photoactive layer 100. The oil 410 penetrates to a lower end of the purifying device and the polluted material 420 may exist on the surface or bounce from the surface due to the hydrophobicity of the photoactive layer 100.
[0146] At this time, when a voltage is applied to the photoactive layer 100, electrons are supplied to a p-type semiconductor part of the one-dimensional nano structure 110 on the photoactive layer 100 and holes are supplied to an n-type semiconductor part thereof and the electrons and holes may be excited by the irradiated light. The excited electrons and holes decompose the pollutant of the polluted material 420 to purify the polluted material 420.
[0147] According to an implementation example of the present disclosure, a power source (not illustrated) which applies a voltage to the photoactive layer 100 may be further included, but it is not limited thereto.
[0148] According to an implementation example of the present disclosure, the power source may include an energy source selected from a group consisting of a solar cell, a piezoelectric device, a thermoelectric device, a magnetic fluid, a triboelectricity, a photoelectric device, and a combination thereof, but is not limited thereto.
[0149] Hereinafter, the present disclosure will be described in more detail with respect to examples, but the following examples are set forth to illustrate, but are not to be construed to limit the scope of the present disclosure.
Example 1
[0150] Sb was deposited on a Mo/glass substrate and Se was vacuum-deposited on the Sb at a room temperature. After depositing Se to have a predetermined thickness or larger, heat treatment was performed for one hour at 300° C. to form a photoactive layer including Sb.sub.2Se.sub.3, and heat treatment was additionally performed for one hour to four hours at 300° C. to allow the photoactive layer to have n-type or p-type electrical conductivity.
[0151] Next, in order to separate and move the photoactive layer from the Mo/glass substrate, a mesh type Pt support was disposed on the photoactive layer and was subjected to vacuum heat treatment at 350° C. to form a nano-structured photoactive layer on the mesh support, thereby obtaining a semipermeable membrane for water treatment.
[0152] With regard to this, Sb.sub.2Se.sub.3 was three-dimensionally and randomly grown.
Example 2
[0153] The same process as Example 1 was performed. After depositing the photoactive layer existing on the Mo/glass substrate or the Pt support on a polyimide substrate, additional heat treatment was performed to allow the photoactive layer to have an n-type or p-type electrical conductivity.
[0154] With regard to this, Sb.sub.2Se.sub.3 was horizontally disposed on the mesh support or the substrate.
Comparative Example 1
[0155] The same process as Example 1 was performed, but Sb.sub.2Se.sub.3 was vertically grown on the glass substrate.
[0156]
[0157] Referring to
[0158]
[0159] Referring to
Experimental Example 1
[0160]
[0161] Referring to
[0162]
[0163] Referring to
[0164] Referring to
[0165] With regard to this, the frequency of the degradation may be confirmed by a current density and when light is irradiated in an environment where the degradation is performed, it is confirmed that the decomposition is more actively performed.
Experimental Example 2
[0166] (a) to (d) of
[0167] Referring to
[0168] Referring to
[0169] The above-description of the present disclosure is illustrative only and it is understood by those skilled in the art that the present disclosure may be easily modified to another specific type without changing the technical spirit of an essential feature of the present disclosure. Thus, it is to be appreciated that embodiments described above are intended to be illustrative in every sense, and not restrictive. For example, each component which is described as a singular form may be divided to be implemented and similarly, components which are described as a divided form may be combined to be implemented.
[0170] The scope of the present disclosure is represented by the claims to be described below rather than the detailed description, and it is to be interpreted that the meaning and scope of the claims and all the changes or modified forms derived from the equivalents thereof come within the scope of the present disclosure.