CN116371446A - Iron-nitrogen compound-carbon nano tube composite material, preparation method and application - Google Patents

Iron-nitrogen compound-carbon nano tube composite material, preparation method and application Download PDF

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CN116371446A
CN116371446A CN202310417490.4A CN202310417490A CN116371446A CN 116371446 A CN116371446 A CN 116371446A CN 202310417490 A CN202310417490 A CN 202310417490A CN 116371446 A CN116371446 A CN 116371446A
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iron
nitrogen compound
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蔡亚岐
罗娜
牛红云
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Research Center for Eco Environmental Sciences of CAS
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Abstract

The present disclosure provides an iron-nitrogen compound-carbon nanotube composite material, a preparation method and applications thereof. The preparation method of the iron-nitrogen compound-carbon nano tube composite material comprises the following steps: grinding a mixture of an iron-nitrogen compound and a carbon nano tube, adding the mixture into a dispersion solution, and loading the mixture onto a filter membrane through ultrasonic suction filtration to obtain a composite filter membrane; and dripping perfluorinated sulfonic acid polymer-ethanol solution on the composite filter membrane, and drying to form a protective layer to obtain the iron-nitrogen compound-carbon nano tube composite material.

Description

Iron-nitrogen compound-carbon nano tube composite material, preparation method and application
Technical Field
The present disclosure relates to the technical field of environmental protection, and in particular, to an iron-nitrogen compound-carbon nanotube composite material, a preparation method and applications thereof.
Background
With the rapid development of industry, the discharge of a large amount of organic wastewater difficult to degrade causes serious environmental health and ecological safety problems. Currently, electro-Fenton technologyAs an environment-friendly electrochemical technology, the method is an emerging technology in the field of environmental remediation, and has a wide application prospect in the aspect of degrading organic wastewater. Cathode electro-Fenton technology utilizes oxygen dissolved in wastewater to produce H on cathode surface in situ 2 O 2 And at Fe 2+ Under the catalysis of H 2 O 2 Further decomposing to generate hydroxyl free radicals and other active oxygen substances, thereby realizing the removal of refractory organic pollutants in the wastewater. The technique eliminates the conventional Fenton technique H 2 O 2 Potential safety hazards in the storage and transportation processes greatly reduce the treatment cost and improve the pollutant treatment efficiency. However, the cathode electro-Fenton technology still has the defects of poor two-electron reduction activity and H on the cathode surface 2 O 2 The method has the defects of low selective generation efficiency, poor pH adaptability, low electrode reusability, easy inactivation and the like, thereby limiting the popularization of the method in the field of industrial wastewater treatment.
Therefore, it is necessary to develop a novel efficient composite material for use as an electrode to improve stability, durability and reactivity of the electrode, so as to overcome limitations and disadvantages of the prior art, thereby improving efficiency and applicability of the electro-Fenton technology.
Disclosure of Invention
In view of the above, the present disclosure provides an iron-nitrogen compound-carbon nanotube composite material, a preparation method and applications thereof, so as to at least partially solve the above technical problems.
In order to solve the above technical problems, as one aspect of the present disclosure, there is provided a method for preparing an iron nitrogen compound-carbon nanotube composite material, including:
grinding a mixture of an iron-nitrogen compound and a carbon nano tube, adding the mixture into a dispersion solution, and loading the mixture onto a filter membrane through ultrasonic suction filtration to obtain a composite filter membrane;
and dripping perfluorinated sulfonic acid polymer-ethanol solution on the composite filter membrane, and drying to form a protective layer to obtain the iron-nitrogen compound-carbon nano tube composite material.
In one embodiment, the mixing ratio of the iron nitrogen compound to the carbon nanotubes is 10:1 to 1:10;
the concentration of the mixture added into the dispersion solution is 0.5-2 g/L.
In one embodiment, the carbon nanotubes are single-walled carbon nanotubes and/or multi-walled carbon nanotubes.
In one embodiment, the dispersion solution is a dispersion solution comprising any one of a sodium dodecyl sulfate solution, a sodium dodecyl sulfonate solution and a sodium fatty alcohol polyoxyethylene ether sulfate solution;
the mass fraction of the dispersion solution is 1-10%;
the filter membrane comprises any one of hydrophilic polytetrafluoroethylene membrane, nylon fiber membrane, acetate fiber membrane and glass fiber membrane.
In one embodiment, the volume ratio of the perfluorosulfonic acid polymer solution to the ethanol solution in the perfluorosulfonic acid polymer-ethanol solution is 1:14 to 1:2;
wherein the concentration of the perfluorosulfonic acid-based polymer solution is 5wt%.
As another aspect of the present disclosure, there is provided an iron-nitrogen compound-carbon nanotube composite material prepared by the above-described method of preparing an iron-nitrogen compound-carbon nanotube composite material.
In one embodiment, the iron-nitrogen compound-carbon nanotube composite material is a sphere with a diameter of 1-4 mu m, and the surface of the sphere is rugged.
As a final aspect of the present disclosure, there is provided a method for removing organic matter from wastewater in an electro-Fenton system using an iron-nitrogen compound-carbon nanotube composite as an electrode, comprising:
taking the iron-nitrogen compound-carbon nano tube composite material as a cathode, and taking a graphite plate as an anode to be connected into an electrolytic cell containing organic wastewater to form an electro-Fenton system;
regulating the pH value of the organic wastewater, introducing oxygen, applying constant current to an electro-Fenton system, and degrading the organic wastewater;
the iron-nitrogen compound-carbon nano tube composite material after organic wastewater degradation can be repeatedly used after being cleaned.
In one embodiment, the organic wastewater includes any one or more of sulfonamide wastewater, synthetic resin wastewater, halogenated compound wastewater, high-salt organic wastewater, and alkaline organic wastewater.
In one embodiment, oxygen is introduced 30 minutes ahead of time;
the flow rate of oxygen is 150-250 mL/min;
the density of the constant current is 1-7 mA/cm 2
Based on the technical scheme, the iron-nitrogen compound-carbon nano tube composite material, the preparation method and the application provided by the disclosure have one of the following beneficial effects:
(1) The method prepares the composite material by mixing the iron nitrogen compound and the carbon nano tube for the first time, and the surface layer of the iron nitrogen compound is oxidized in the grinding process, so that the iron nitrogen compound is prevented from being further oxidized in the aqueous solution, the iron nitrogen compound-carbon nano tube composite material is favorable for keeping higher activity, and the service life of the iron nitrogen compound-carbon nano tube composite material is prolonged. In addition, the carbon nano tube has excellent conductivity and rich pore structure, and is favorable for improving the conductivity and the electrocatalytic performance of the iron-nitrogen compound-carbon nano tube composite material.
(2) The iron-nitrogen compound-carbon nanotube composite material has higher stability, can realize continuous and efficient degradation of organic pollutants through a two-electron approach and electro-Fenton catalysis, overcomes the defects of easy inactivation and shorter catalytic life of other materials in the prior art in the use process, and has wide application prospect.
(3) The iron-nitrogen compound-carbon nanotube composite material is used as a cathode material in an electrolytic cell, an electro-Fenton system is formed in the electrolytic cell, oxygen is reduced by a two-electron approach to generate hydrogen peroxide, and the iron-nitrogen compound (Fe x N) surface-generated ferrous ions (Fe) 2+ ) The hydrogen peroxide is decomposed into hydroxyl free radicals (OH) and has higher activity. Meanwhile, the cathode of the electrolytic cell provides an electron-rich environment for the Fe-N compound-carbon nano tube composite material, so that the Fe element in the catalysis process can be in Fe 0 、Fe And Fe (Fe) The three valence states are mutually converted, so that the stability of the rechecking material is ensured.
(4) According to embodiments of the present disclosure, the use of iron nitrogen compound-carbon nanotube composites as electrodes in electro-Fenton systems can be used for efficient degradation of organic pollutants in wastewater. The special structure of the iron-nitrogen compound can ensure that iron components are not easy to lose, is favorable for maintaining Fenton catalytic activity, improves the pH tolerance range of the electro-Fenton technology, and avoids the generation of red mud in the wastewater treatment process.
Drawings
FIG. 1 is a Scanning Electron Microscope (SEM) image of an iron-nitrogen compound-carbon nanotube composite material prepared in example 1 of the present disclosure;
FIG. 2 is a comparative graph of different types of composite filters in an embodiment of the disclosure;
FIG. 3 is a graph showing the electrode test of the ring-disk for the iron-nitrogen compound-carbon nanotube composite material in example 3 of the present disclosure;
FIG. 4 is a graph showing the effect of iron-nitrogen compound-carbon nanotube composites of different filters on electrode degradation simulated wastewater in an embodiment of the disclosure;
FIG. 5 is a graph showing the effect of the iron nitrogen compound-carbon nanotube composite material of example 5 of the present disclosure as an electrode to degrade simulated wastewater under different pH conditions;
FIG. 6 is a graph showing the effect of recycling the iron-nitrogen compound-carbon nanotube composite material to degrade organic wastewater in example 6 of the present disclosure;
fig. 7 is a graph showing the effect of Total Organic Carbon (TOC) removal for degrading different types of organic wastewater in example 7 of the present disclosure.
Detailed Description
For the purposes of promoting an understanding of the principles and advantages of the disclosure, reference will now be made in detail to the embodiments.
At present, nano zero-valent iron (nZVI) has been widely used in removing pollutants in groundwater, soil and sewage due to the advantages of higher activity, low toxicity, even no toxicity, easily available raw materials, easy preparation and the like. However, the high activity of nano zero-valent iron results in its being readily surrounded by environmental media (e.g., water molecules, dissolved oxygen, and Cl - 、NO 3- 、PO 4 3- 、CO 3 2- Plasma) decayAnd (3) etching to generate a precipitate on the surface of the nZVI to block mass transfer of the zero-valent iron and other active substances, so that the activity of the zero-valent iron is reduced or even deactivated. In the prior art, the zero-valent iron stability is improved through zero-valent iron vulcanization, and the hydrophobicity of the zero-valent iron is improved by utilizing an iron sulfide coating layer on the surface of the zero-valent iron, so that the adsorption capacity to organic pollutants is enhanced. However, iron sulfide is easily oxidized under aerobic conditions, gradually converted into iron oxide or iron hydroxide, etc., and finally, zero-valent iron is deactivated.
In carrying out the present disclosure, it was found that nitriding of steel can improve wear resistance, fatigue resistance, and corrosion resistance of steel, and nitriding of nano zero-valent iron can form iron nitrogen compounds (Fe X N). When the iron-nitrogen compound nano-particles are dispersed in an aqueous solution and/or exposed to oxygen, ultra-thin (about 3 nm) but stable Fe is produced 3+ The oxide (hydroxide) surface layer causes an increase in corrosion potential, thereby improving the corrosion resistance of the material. Compared with the hydroxyl oxidation coating layer on the surface of the nano zero-valent iron, fe X The hydroxide layer on the surface of the N has higher hydrophobicity, so that the adsorption capacity to pollutants is enhanced; a thinner oxide (hydroxide) surface layer may promote faster transfer of electrons from the zero-valent iron core to the surface. Fe (Fe) X N (including gamma' -Fe) 4 N、ε-Fe 2-3 N, etc.) and Fe-containing X N-doped Fe of N component 0 Can reduce chlorinated hydrocarbon pollutant more efficiently, and the efficiency of reducing and dechlorinating trichloroethylene is 20 times of that of zero-valent iron after the chlorinated hydrocarbon pollutant is aged for three months in water. The iron nitride technology overcomes the disadvantages of the nZVI technology as a novel and potential method.
In the process of realizing the present disclosure, it is found that iron nitrogen compounds are also a class of electrocatalysts with application prospects, which can catalyze ammonia and hydrazine decomposition, amine synthesis, persulfate oxidation, oxygen reduction, and CO 2 And (5) reduction. At present, no report of using ferric nitride as a cathode material to activate dissolved oxygen to generate active substances so as to degrade organic pollutants exists. The multi-valence iron ions in the iron nitride coexist, have excellent stability, and establish longer effective catalytic activity and higher stability through regulating and controlling reaction conditions or compounding with carbon materials and the likeThe iron-based material is used for degrading organic pollutants in an electro-Fenton system.
In the process of realizing the present disclosure, it is found that the development of a heterogeneous electro-Fenton cathode currently has some challenges, such as stability of a catalyst, cost and the like. In the reaction process, the catalyst is easy to be deactivated, corroded, peeled off and other problems due to the interaction between the catalyst and other substances in water. The cathode electro Fenton technology has the defects of poor electron reduction activity and poor H on the cathode surface 2 O 2 Low selective generation efficiency, poor pH adaptability, low electrode recycling property, easy inactivation and the like. Therefore, there is a need to develop new and efficient composite materials to improve the stability, durability, and activity of cathode materials to overcome these limitations and deficiencies to improve the efficiency and applicability of the electro-Fenton technology.
To achieve the above technical object, as one aspect of the present disclosure, there is provided a method for preparing an iron nitrogen compound-carbon nanotube composite material, comprising:
iron nitrogen compound (Fe X Grinding the mixture of N) and Carbon Nanotubes (CNTs), adding the mixture into a dispersion solution, and loading the mixture onto a filter membrane through ultrasonic suction filtration to obtain a composite filter membrane;
and dripping perfluorinated sulfonic acid polymer-ethanol solution on the composite filter membrane, and drying to form a protective layer to obtain the iron-nitrogen compound-carbon nano tube composite material.
In the embodiment of the disclosure, the prepared iron-nitrogen compound-carbon nanotube composite material is shown in fig. 1, and it can be seen from the figure that the carbon nanotubes in the iron-nitrogen compound-carbon nanotube composite material have a large number of pore structures, and the iron-nitrogen compound nanoparticles form an ultrathin oxide surface layer. The carbon nano tube has better conductivity, is favorable for improving the conductivity and electrocatalytic performance of the iron-nitrogen compound-carbon nano tube composite material, has better adsorption capacity on organic pollutants by a carbon skeleton of the carbon nano tube, and improves the utilization rate of active substances; the iron-nitrogen compound nano particles are dispersed in the aqueous solution or exposed to oxygen to generate an ultrathin stable ferric ion oxide surface layer, so that the iron-nitrogen compound nano particles have higher hydrophobicity, can enhance the adsorption capacity to pollutants, promote electron transfer, and overcome the defects of easy inactivation and short catalytic life of zero-valent iron in the prior art.
According to the embodiments of the present disclosure, the mixing ratio of the iron nitrogen compound to the carbon nanotube is 10:1 to 1:10, for example, may be 10:1, 10:5, 5:10, 1:10, etc.
In the embodiment of the disclosure, the iron nitrogen compound and the carbon nano tube are ground for more than 5 minutes in an agate grinding pot, so that the iron nitrogen compound and the carbon nano tube are fully and uniformly mixed. The iron-nitrogen compound and the carbon nano tube undergo reduction of nitrogen (N) and oxidation of iron (Fe) in the grinding and mixing process, so that the surface of the material contains three valence states of iron (Fe) 0 、Fe And Fe (Fe) )。
According to embodiments of the present disclosure, the mixture is added to the dispersion solution at a concentration of 0.5 to 2g/L, which may be, for example, 0.5g/L, 1g/L, 1.5g/L, 2g/L, etc.
According to embodiments of the present disclosure, the carbon nanotubes are single-walled carbon nanotubes and/or multi-walled carbon nanotubes.
According to an embodiment of the present disclosure, the dispersion solution is a dispersion solution including any one of a sodium dodecyl sulfate solution, a sodium dodecyl sulfonate solution, and a sodium fatty alcohol-polyoxyethylene ether sulfate solution.
According to the embodiment of the disclosure, the filter membrane comprises any one of a hydrophilic polytetrafluoroethylene membrane, a nylon fiber membrane, an acetate fiber membrane and a glass fiber membrane, the mixture of the iron-nitrogen compound and the carbon nano tube is ground and then added into a dispersion solution to prevent the filler particles from mutually gathering, and the mixture is uniformly loaded on the filter membrane by suction filtration after ultrasonic treatment for 30 minutes, so that the composite filter membrane prepared by adopting the nanofiber membrane made of the materials has good permeability to oxygen.
According to embodiments of the present disclosure, the volume ratio of the perfluorosulfonic acid-based polymer solution to the ethanol solution in the perfluorosulfonic acid-based polymer-ethanol solution is 1:14 to 1:2, for example, may be 1: 14. 1: 7. 1: 5. 1:2, etc.
Wherein the concentration of the perfluorosulfonic acid-based polymer solution is 5wt%.
In the embodiment of the disclosure, 5wt% of fluorosulfonic acid-based polymer-ethanol solution (5% of Nafion-ethanol solution) is dropwise added on the composite filter membrane layer by layer, 1-10 layers are dropwise added, and the composite filter membrane is dried at room temperature to form a high polymer membrane which is used as a protective layer, so that the conductivity of the composite material is enhanced, the electrode is protected from oxidation, and meanwhile, the bonding effect is achieved, so that the iron-nitrogen compound and the carbon nanotube material are more firmly bonded on the filter membrane.
As another aspect of the present disclosure, there is provided an iron-nitrogen compound-carbon nanotube composite material prepared by the above-described method of preparing an iron-nitrogen compound-carbon nanotube composite material.
According to the embodiment of the disclosure, the iron-nitrogen compound in the iron-nitrogen compound-carbon nano tube composite material is a sphere with the diameter of 1-4 mu m, and the surface of the sphere is rugged.
As yet another aspect of the present disclosure, there is provided a method for removing organic matter from wastewater in an electro-Fenton system using an iron-nitrogen compound-carbon nanotube composite as an electrode, comprising:
taking the iron-nitrogen compound-carbon nano tube composite material as a cathode, and taking a graphite plate as an anode to be connected into an electrolytic cell containing organic wastewater to form an electro-Fenton system;
regulating the pH value of the organic wastewater, introducing oxygen, applying constant current to an electro-Fenton system, and degrading the organic wastewater;
the iron-nitrogen compound-carbon nano tube composite material after organic wastewater degradation can be repeatedly used after being cleaned.
In embodiments of the present disclosure, an iron-nitrogen compound-carbon nanotube composite is used as a cathode to construct an electro-Fenton system, wherein carbon nanotubes increase the adsorption capacity of an electrode surface to organic matter and oxygen, hydrogen peroxide is generated by reducing oxygen via a two-electron pathway, and the hydrogen peroxide is catalytically decomposed into hydroxyl radicals (OH) by ferrous iron generated on the surface of the iron-nitrogen compound, which is beneficial to degrading and mineralizing organic pollutants.
The electron-rich environment provided by the cathode enables the iron in the catalytic process to be converted between three valence states, meanwhile, the extremely strong stability of the iron-nitrogen compound is ensured, and the selectivity and the removal efficiency of organic matters in the wastewater degradation process are improved.
According to embodiments of the present disclosure, the organic wastewater includes any one or more of sulfonamide wastewater, synthetic resin wastewater, halogenated compound wastewater, high-salt organic wastewater, alkaline organic wastewater.
In the embodiment of the disclosure, the iron-nitrogen compound-carbon nano tube composite material used as an electrode has high di-electron oxygen reduction selectivity and hydrogen peroxide generating efficiency, and in addition, has high Fenton catalytic activity, can generate a large amount of hydroxyl radicals without adding H 2 O 2 And Fe (Fe) 2+ And the pH tolerance range of the electro-Fenton technology is improved by waiting for chemical reagents, the generation of red mud in the wastewater treatment process is avoided, and the electro-Fenton technology is suitable for removing organic pollutants in a wider pH range.
According to embodiments of the present disclosure, oxygen may be introduced 30 minutes in advance;
according to embodiments of the present disclosure, the flow rate of the oxygen gas is 150 to 250mL/min, for example, 150mL/min, 200mL/min, 250mL/min, etc.
According to an embodiment of the present disclosure, the constant current has a density of 1 to 7mA/cm 2 For example, it may be 1mA/cm 2 、3mA/cm 2 、5mA/cm 2 、7mA/cm 2 Etc.
In order to make the objects, technical solutions and advantages of the present disclosure clearer, the technical solutions and principles of the present disclosure are further described below by specific embodiments with reference to the accompanying drawings. It should be noted that the following specific examples are given by way of illustration only and the scope of the present disclosure is not limited thereto.
The test materials, reagents and the like used in the examples described below are commercially available unless otherwise specified. The examples are not intended to identify specific techniques or conditions, but are conventional and may be carried out according to techniques or conditions described in the literature in this field or according to product specifications.
Example 1
A method of preparing an iron nitrogen compound-carbon nanotube composite comprising:
weigh 0.04g of iron nitride and 0.02g of single-walled carbonGrinding the nanotubes in an agate pot for 5 minutes to fully and uniformly mix the nanotubes, dispersing the nanotubes in 50mL of 5wt% sodium dodecyl sulfate solution, performing ultrasonic vibration treatment for 30 minutes, and performing suction filtration to uniformly plug the mixture on a hydrophilic polytetrafluoroethylene membrane to obtain a composite filter membrane; preparing 5wt% of perfluorosulfonic acid polymer and ethanol with a volume ratio of 13:127, dropwise adding 1.5ml of 5% Nafion-ethanol solution layer by layer on the composite filter membrane, and drying at room temperature to form a protective layer to obtain iron-nitrogen compound-carbon nanotube (Fe) x N/CNTs) composite material.
The structure of the iron-nitrogen compound-carbon nanotube composite material prepared in example 1 was subjected to Scanning Electron Microscope (SEM) characterization by using a field emission scanning electron microscope (FES) with the model of Hitachi S-8020, and the particle size and morphology structure of the material were analyzed.
Fig. 1 is a Scanning Electron Microscope (SEM) image of the iron-nitrogen compound-carbon nanotube composite material prepared in example 1 of the present disclosure, and it can be seen that the iron-nitrogen compound is a sphere with a diameter of 1-4 μm, and the surface of the sphere is rugged, which is beneficial for the tight adhesion and winding of carbon nanotubes. The iron-nitrogen compound microsphere is tightly connected with the carbon nano tube, the iron-nitrogen compound microsphere is attached to the carbon nano tube through hydrogen bonds and van der Waals force kinks, and abundant pore spaces are reserved, so that the adsorption of oxygen is facilitated.
Example 2
The iron-nitrogen compound-carbon nanotube composite material was prepared by the same preparation method as in example 1, except that the hydrophilic polytetrafluoroethylene membrane was replaced with a nylon fiber membrane, a glass fiber membrane and a plain filter paper, respectively, to obtain a corresponding composite filter membrane.
Fig. 2 is a comparative diagram of different types of composite filters according to an embodiment of the present disclosure, and as shown in fig. 2, a mixture of an iron-nitrogen compound and carbon nanotubes may be well loaded onto different filters.
Example 3
The activity of the two-electron oxygen reduction process of the iron-nitrogen compound-carbon nanotube composite material obtained in example 1 and hydrogen peroxide (H) were tested using a rotating ring-disk electrode (RRDE) 2 O 2 ) The test was conducted selectively, using a rotary ring-disk electrode apparatus of the type RRDE-3A Ver2.0 from BAS, connected to a CHI760E electrochemical analyzer, using a Linear Sweep Voltammetry (LSV), setting a sweep rate of 10mV/s, a sweep rate of-0.6 to 0.1V vs. SCE (relative to calomel electrode), applying a constant potential of 0.2V to a platinum ring, and a constant potential of 50mM Na saturated with oxygen 2 SO 4 The solutions were subjected to RRDE testing.
Preparing 5% wt of perfluorosulfonic acid polymer to ethanol in a volume ratio of 1:9 (Nafion-ethanol solution), weighing 10mg of iron nitrogen compound-carbon nano tube composite material into 2.5mL of 5% Nafion-ethanol solution, carrying out ultrasonic treatment for 1 hour to obtain a uniformly dispersed suspension, dripping 12 mu L of the suspension onto a glassy carbon plate of an RRDE electrode, standing and drying under a mercury lamp to obtain a uniformly distributed film electrode, wherein the diameter of the glassy carbon plate of the RRDE electrode is 4mm, and the loading capacity of the iron nitrogen compound-carbon nano tube composite material is 381.9 mu g/cm 2
FIG. 3 is a graph showing the electrode test of the ring-plate of the iron-nitrogen compound-carbon nanotube composite material in example 3 of the present disclosure, wherein the electron transfer number of the thin film electrode of the iron-nitrogen compound-carbon nanotube composite material is 2.21, H, at a potential of-0.2V vs. SCE (vs. calomel electrode), as shown in FIG. 3 2 O 2 The selectivity reaches 89.2%; in the range of-0.4V to-0.2V vs. SCE, the average value of the electron transfer number is 2.9, H 2 O 2 The average selectivity was 55.3%. It can be seen that the Fe-N compound-carbon nano tube composite material film electrode mainly performs oxygen reduction (ORR) reaction through a two-electron approach and has stronger H 2 O 2 Selectivity.
Example 4
The iron-nitrogen compound-carbon nano tube composite materials prepared in the example 1 and the example 2 are used as electrodes, and sulfathiazole in organic wastewater is degraded under different pH conditions in an electro-Fenton system;
as a simulated contaminant, an initial concentration of 10mg/L Sulfathiazole (STZ) was used, with an electrolyte of 50mM NaSO 4 Solution, degradation experiments were carried out in a 100ml single-chamber electrolytic cell with a working area of 13.8cm at the cathode 2 The iron-nitrogen compound-carbon nano tube composite material adopts commercial graphite plates with the same working area as the anode, and the electrode spacing is adjusted to be 1cm. The pH value of the simulated polluted wastewater solution is regulated by adopting dilute sulfuric acid and dilute sodium hydroxide solution, the initial pH value is regulated to 3, high-purity oxygen with the flow rate of 150-250 mL/min is continuously introduced in the process of electric degradation, a direct current power supply with the model DH1766A is adopted to provide constant current, 68mA of constant current is applied, and the reaction time is 60 minutes.
FIG. 4 is a graph showing the effect of the iron-nitrogen compound-carbon nanotube composite material of different filters on the simulated wastewater for electrode degradation in the embodiment of the disclosure, C/C 0 The method is used for simulating the degradation effect of the sulfathiazole in the wastewater. As shown in figure 4, the iron-nitrogen compound-carbon nano tube composite material prepared by loading four different filter membranes can completely degrade the sulfathiazole simulated wastewater within 60 minutes.
Example 5
The same procedure as in example 4 was employed, except that the iron nitrogen compound-carbon nanotube composite material prepared in example 1 was used as an electrode, the initial pH of the simulated contaminated wastewater was adjusted to 1, 3, 5, 7, 9, and sulfathiazole in organic wastewater was degraded under different pH conditions in an electro-Fenton system.
FIG. 5 is a graph showing the effect of the iron-nitrogen compound-carbon nanotube composite material of example 5 of the present disclosure on degrading simulated wastewater under different pH conditions, C/C 0 The method is used for simulating the degradation effect of the sulfathiazole in the wastewater. As shown in fig. 5, when ph=3, the degradation rate of the iron nitrogen compound-carbon nanotube composite material electrode to sulfathiazole is highest, which can reach 99.8%. When ph=1, the iron nitrogen compound is excessively corroded, lowering O 2 And pH>And 5, hydroxide precipitation can be generated on the surface of the electrode, so that the active sites of the electrode are reduced, and mass transfer of electrons and active substances is hindered. At ph=1, 5, 7, 9, the sulfathiazole degradation rates were 84.6%, 88.4%, 82.7% and 87.6%, respectively. Therefore, the iron-nitrogen compound-carbon nano tube composite material used as an electrode has higher electrocatalytic activity in a wider pH range, and can adapt to the complex pH environment in the actual wastewater treatment process。
Example 6
The pH of the simulated contaminated wastewater was adjusted to 3 by the same method as in example 5, and the iron-nitrogen compound-carbon nanotube composite material prepared in example 1 was used as an electrode to degrade organic wastewater in an electro-Fenton system; and (3) flushing the iron-nitrogen compound-carbon nano tube composite material subjected to organic wastewater degradation with deionized water, using the method to be used as electrode degradation organic wastewater again, and repeating the steps to recycle the iron-nitrogen compound-carbon nano tube composite material.
Fig. 6 is a graph showing the effect of recycling the iron nitrogen compound-carbon nanotube composite material to degrade organic wastewater in example 6 of the present disclosure, and as shown in fig. 6, the removal rate of the contaminant Sulfathiazole (STZ) can still reach 94.5% after the iron nitrogen compound-carbon nanotube composite material is used as an electrode for 5 times of repeated use, which indicates that the iron nitrogen compound-carbon nanotube composite material can be recycled under the electro-Fenton system, still has reactivity, and has excellent stability.
Example 7
The same method as in example 4 was used, except that only the iron nitrogen compound-carbon nanotube composite material prepared in example 1 was used as an electrode, degrading three different types of organic wastewater, respectively. Wherein, organic waste water is respectively: the chemical oxygen demand (COD content) of the resin-containing and halogenated compound waste water of Yue Yangmou factory, the high-salt organic waste water of the god factory and the caustic soda organic waste water of the Tianjin factory is 99.1-217.8 mg/L, and the initial pH value is 6-8 without adjustment.
Fig. 7 is a graph showing the effect of Total Organic Carbon (TOC) removal rate of degrading different types of organic wastewater in example 7 of the present disclosure, and as can be seen from fig. 7, organic wastewater produced by three different industries does not need to be pH-adjusted or other chemical reagents added, and after the method provided by the present disclosure is used for reacting for two hours, the total organic carbon removal rate in the organic wastewater can reach 46.8-75.7%, and efficient degradation of organic pollutants can be achieved.
Based on the experimental analysis, the iron-nitrogen compound-carbon nano tube composite material, the preparation method and the application provided by the disclosure are characterized in that the iron-nitrogen compound and the carbon nano tube are ground and mixed and then are loaded on a filter membrane, and then Nafion-ethanol solution is dripped to form a protective film, so that the iron-nitrogen compound-carbon nano tube composite material with high stability, oxygen permeability and catalytic activity is obtained. The excellent conductivity and rich pore structure of the carbon nano tube are beneficial to improving the electrocatalytic performance of the iron-nitrogen compound and the carbon nano tube, and the oxide layer on the surface of the iron-nitrogen compound can effectively prevent corrosion in the electrocatalytic process. The iron-nitrogen compound-carbon nanotube composite material is used as a cathode in an electro-Fenton system, has strong stability and high pH adaptability, can realize continuous and high-efficiency rapid degradation of organic pollutants through a two-electron approach and Fenton catalysis, still keeps the removal rate of the organic pollutants above 94% after being recycled for a plurality of times, overcomes the defects of easy inactivation and short catalytic life of zero-valent iron technology, and has wide application prospect.
While the foregoing is directed to embodiments of the present disclosure, other and further details of the invention may be had by the present application, it is to be understood that the foregoing description is merely exemplary of the present disclosure and that no limitations are intended to the scope of the disclosure, except insofar as modifications, equivalents, improvements or modifications may be made without departing from the spirit and principles of the present disclosure.

Claims (10)

1. A preparation method of an iron-nitrogen compound-carbon nano tube composite material comprises the following steps:
grinding a mixture of an iron-nitrogen compound and a carbon nano tube, adding the mixture into a dispersion solution, and loading the mixture onto a filter membrane through ultrasonic suction filtration to obtain a composite filter membrane;
and dripping perfluorinated sulfonic acid polymer-ethanol solution on the composite filter membrane, and drying to form a protective layer to obtain the iron-nitrogen compound-carbon nano tube composite material.
2. The method of claim 1, wherein,
the mixing ratio of the iron-nitrogen compound to the carbon nano tube is 10:1 to 1:10;
the concentration of the mixture added into the dispersion solution is 0.5-2 g/L.
3. The method of claim 1, wherein,
the carbon nanotubes are single-walled carbon nanotubes and/or multi-walled carbon nanotubes.
4. The method of claim 1, wherein,
the dispersion solution comprises any one of a sodium dodecyl sulfate solution, a sodium dodecyl sulfonate solution and a sodium fatty alcohol polyoxyethylene ether sulfate solution;
the mass fraction of the dispersion solution is 1-10%;
the filter membrane comprises any one of a hydrophilic polytetrafluoroethylene membrane, a nylon fiber membrane, an acetate fiber membrane and a glass fiber membrane.
5. The method of claim 1, wherein,
the volume ratio of the perfluorosulfonic acid polymer solution to the ethanol solution in the perfluorosulfonic acid polymer-ethanol solution is 1:14 to 1:2;
wherein the concentration of the perfluorosulfonic acid-based polymer solution is 5wt%.
6. An iron nitrogen compound-carbon nanotube composite material produced by the method of any one of claims 1 to 5.
7. The iron nitrogen compound-carbon nanotube composite according to claim 6, wherein,
the iron-nitrogen compound in the iron-nitrogen compound-carbon nanotube composite material is a sphere with the diameter of 1-4 mu m, and the surface of the sphere is rugged.
8. A method for removing organic matters in wastewater in an electro-Fenton system by using an iron-nitrogen compound-carbon nano tube composite material as an electrode, comprising the following steps:
taking the iron-nitrogen compound-carbon nano tube composite material as a cathode, and taking a graphite plate as an anode to be connected into an electrolytic cell containing organic wastewater to form an electro-Fenton system;
regulating the pH of the organic wastewater, introducing oxygen, applying constant current to the electro-Fenton system, and degrading the organic wastewater;
the iron-nitrogen compound-carbon nano tube composite material after organic wastewater degradation can be repeatedly used after being cleaned.
9. The method of claim 8, wherein,
the organic wastewater comprises any one or more of sulfonamide wastewater, synthetic resin wastewater, halogenated compound wastewater, high-salt organic wastewater and alkaline organic wastewater.
10. The method of claim 8, wherein,
introducing the oxygen in advance for 30 minutes;
the flow rate of the oxygen is 150-250 mL/min;
the density of the constant current is 1-7 mA/cm 2
CN202310417490.4A 2023-04-19 2023-04-19 Iron-nitrogen compound-carbon nano tube composite material, preparation method and application Pending CN116371446A (en)

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