Method for producing transition metal-supported nitrogen-containing carbon material
Microwave irradiation and transition metal support on nitrogen-containing carbon materials enhance oxygen reduction performance, addressing the need for improved catalytic materials.
Patent Information
- Application Number
- JP2021187165
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-17
- Publication Date
- 2025-08-14
- Estimated Expiration
- 2041-11-17
AI Technical Summary
There is a demand for materials with improved oxygen reduction performance, particularly in transition metal-supported nitrogen-containing carbon materials.
A method involving microwave irradiation of nitrogen-containing carbon materials with a G-band peak in their Raman spectrum followed by supporting a transition metal element, which enhances the oxygen reduction performance.
The resulting transition metal-supported nitrogen-containing carbon material exhibits excellent oxygen reduction performance, with improved electrical conductivity and catalytic activity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for producing a transition metal-supported nitrogen-containing carbon material. More specifically, the present invention relates to a method for producing a transition metal-supported nitrogen-containing carbon material that can be suitably used as an oxygen reduction catalyst, a semiconductor, etc., and to the transition metal-supported nitrogen-containing carbon material. [Background technology]
[0002] Graphene-based carbon materials are inexpensive and abundant, and due to their catalytic performance, mechanical strength, electrical conductivity, thermal conductivity, etc., they are expected to be used in a variety of applications such as heat dissipation materials, catalysts, and electrode materials, and a great deal of research and development is being conducted on them.
[0003] For example, research and development is being conducted on a technology for modifying graphene-based carbon materials by irradiating them with microwaves. First, it has been reported that when microwaves are irradiated onto carbon nanofibers obtained by the liquid pulse injection (LPI) method or onto bulky reduced graphene oxide (rGO), discharge occurs efficiently, which promotes high crystallization and a decrease in defect density (e.g., Patent Document 1, Non-Patent Document 1). In addition, a method of irradiating microwaves onto reduced graphene oxide has been reported (e.g., Non-Patent Document 2).
[0004] Furthermore, a method for producing a nitrogen-containing carbon material with reduced defects has been disclosed, which includes a step of irradiating a nitrogen-containing carbon material having a G-band peak in a Raman spectrum with microwaves in an atmosphere containing ammonia and / or amine (for example, Patent Document 2). Furthermore, a method for producing a low-defect carbon material has been disclosed, which includes a step of irradiating a carbon material having a G-band peak in the Raman spectrum with microwaves while fluidizing the carbon material (for example, Patent Document 3).
[0005] Transition metal-supported carbon materials in which a transition metal is supported on a graphene-based carbon material are also expected to be used in the various applications described above. For example, Fe-supported catalysts (Fe-NC) can be obtained by supporting iron on nitrogen-doped carbon substrates (NC) by chemical vapor deposition (CVD), and it has been shown that the oxygen reduction reaction (ORR) performance of the obtained Fe-supported catalysts (Fe-NC) is improved (e.g., Non-Patent Document 3). [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-145435 [Patent Document 2] Japanese Patent Application Publication No. 2020-090409 [Patent Document 3] Japanese Patent Publication No. 2021-006497 [Non-patent literature]
[0007] [Non-Patent Document 1] Ogino, I. et al., J. Energy. Chem. 27 (2018) 1468-1474 [Non-patent document 2] D. Voiry et al., Science 10.1126 / science.aah3398 (2016) [Non-patent document 3] Jingkun Li et al., J. Am. Chem. Soc. 2020, 142, 1417-1423 Summary of the Invention [Problem to be solved by the invention]
[0008] However, there has been a demand for new materials with better oxygen reduction performance.
[0009] The present invention has been made in view of the above-mentioned current situation, and has as its object to provide a method for obtaining a material having excellent oxygen reduction performance. [Means for solving the problem]
[0010] The present inventors have conducted various investigations into methods for obtaining materials with excellent oxygen reduction performance, and have found that when a nitrogen-containing carbon material having a G-band peak in its Raman spectrum is modified by irradiating it with microwaves and then supporting a transition metal element, the resulting transition metal-supported nitrogen-containing carbon material has remarkable oxygen reduction performance. This led to the realization that the above-mentioned problems can be solved in an excellent manner, and has led to the present invention.
[0011] That is, the present invention provides a method for producing a transition metal-supported nitrogen-containing carbon material, comprising the steps of: irradiating a nitrogen-containing carbon material having a G-band peak in its Raman spectrum with microwaves; and supporting a transition metal element on the modified nitrogen-containing carbon material obtained in the irradiation step. [Effects of the Invention]
[0012] The method for producing a transition metal-supported nitrogen-containing carbon material of the present invention makes it possible to obtain a transition metal-supported nitrogen-containing carbon material having excellent oxygen reduction performance. [Brief explanation of the drawings]
[0013] [Figure 1] 1 is a photograph showing nitrogen-doped reduced graphite oxide. [Figure 2] FIG. 1 is a schematic diagram showing a step of irradiating nitrogen-doped reduced graphite oxide with microwaves (a step of modifying the graphite by irradiation). [Figure 3] 1 is a graph showing the pyridine-type nitrogen content and graphite-type nitrogen content of nitrogen-doped reduced graphite oxide and modified nitrogen-doped reduced graphite oxide, respectively. [Figure 4] FIG. 1 is a schematic diagram showing a process for producing nitrogen-doped reduced graphite oxide by hydrothermal treatment of graphite oxide. [Figure 5] 1 is a graph showing Raman spectroscopic data (Raman spectra) of nitrogen-doped reduced graphite oxide and modified nitrogen-doped reduced graphite oxide. [Figure 6]FIG. 1 is a schematic diagram showing a process for supporting iron on nitrogen-doped reduced graphite oxide or modified nitrogen-doped reduced graphite oxide by chemical vapor deposition (CVD). [Figure 7] 7 is a graph showing the temperature in the test tube versus time in the iron loading step shown in FIG. 6. [Figure 8] 1 is a graph showing the pyridine-type nitrogen content and graphite-type nitrogen content of nitrogen-doped reduced graphite oxide, modified nitrogen-doped reduced graphite oxide, nitrogen-doped reduced graphite oxide with iron supported thereon, and modified nitrogen-doped reduced graphite oxide with iron supported thereon. [Figure 9] This is a graph showing the results of evaluating the oxygen reduction reaction activity using a rotating electrode for nitrogen-doped reduced graphite oxide, modified nitrogen-doped reduced graphite oxide, nitrogen-doped reduced graphite oxide with iron supported, modified nitrogen-doped reduced graphite oxide with iron supported, and a physical mixture of an iron component and modified nitrogen-doped reduced graphite oxide. [Figure 10] This is a graph showing the current density per mass of iron at a potential of 0.7 V evaluated using a rotating electrode for nitrogen-doped reduced graphite oxide with iron supported, modified nitrogen-doped reduced graphite oxide with iron supported, and a physical mixture of iron component and modified nitrogen-doped reduced graphite oxide. [Figure 11] This is a graph showing the number of water molecules adsorbed per unit surface area (nm-2) versus relative humidity p / p0 at 298 K after pretreatment of nitrogen-doped reduced graphite oxide, modified nitrogen-doped reduced graphite oxide, iron-loaded nitrogen-doped reduced graphite oxide, and iron-loaded modified nitrogen-doped reduced graphite oxide. DETAILED DESCRIPTION OF THE INVENTION
[0014] The present invention will be described in detail below. In addition, a combination of two or more of the individual preferred embodiments of the present invention described below is also a preferred embodiment of the present invention.
[0015] <Method of manufacturing a transition metal-supported nitrogen-containing carbon material> The method for producing a transition metal-supported nitrogen-containing carbon material of the present invention includes the steps of irradiating a nitrogen-containing carbon material having a G-band peak in its Raman spectrum with microwaves, and supporting a transition metal element on the modified nitrogen-containing carbon material obtained in the irradiation step. The modification may be any physical or chemical change caused by microwave irradiation, such as reducing defects, improving the hydrophobicity of the surface, or a combination of these. In this specification, the term "reducing defects" refers to the ratio of the D band peak intensity to the G band peak intensity in the Raman spectrum (I D / I G The fewer defects there are, the easier it is for electrons to flow, resulting in better electrical conductivity, as well as better thermal conductivity, lubricity, strength, catalytic performance, etc. The G-band peak and the D-band peak will be discussed later. Improving the hydrophobicity of the surface means reducing the number of water molecules adsorbed per unit surface area, as shown in the examples.
[0016] Although the mechanism by which the oxygen reduction performance of the transition metal-supported nitrogen-containing carbon material obtained by the production method of the present invention is remarkable is unclear, as will be described later, it is possible that microwaves moderately improve the hydrophobicity of the surface of the nitrogen-containing carbon material, making it easier for gaseous oxygen to be adsorbed onto the surface than for liquids such as electrolytes, thereby further promoting the oxygen reduction reaction. This effect, combined with the improvement in oxygen reduction performance due to the transition metal being supported via nitrogen atoms, is thought to synergistically improve the oxygen reduction performance.
[0017] In the method for producing a transition metal-supported nitrogen-containing carbon material of the present invention, the irradiating step is preferably carried out in an atmosphere containing ammonia and / or an amine. The ammonia may be used as it is in gaseous form, or may be used by forming an aqueous solution (ammonia water) and spraying it into the atmosphere, but it is preferable to use it as it is in gaseous form. Examples of the amine include primary amines, secondary amines, and tertiary amines. Only one type of amine compound may be used, or two or more types may be used in combination. The amines may also be used in a gaseous state as they are or as an aqueous solution, but among these, those that are gaseous at room temperature are preferred, and for example, primary amines such as methylamine and ethylamine; secondary amines such as dimethylamine; and tertiary amines such as trimethylamine are preferred.
[0018] The irradiation step is carried out at a partial pressure of ammonia and / or amine of 3×10 4 The partial pressure of the ammonia and / or amine is preferably 4×10 Pa or more. 4 Pa or more is more preferable, and 5 × 10 4 The upper limit of the partial pressure of ammonia and / or amine is not particularly limited, but is usually 1×10 6 Pa or less. The ratio of the partial pressure of ammonia and / or amine to the total pressure in the atmosphere is preferably 0.3 or more, more preferably 0.4 or more, and even more preferably 0.5 or more. There is no particular upper limit to the partial pressure ratio, as long as it is 1 or less. When ammonia and an amine are used in combination, the partial pressure of ammonia and / or an amine mentioned above is the total partial pressure of ammonia and an amine.
[0019] In another preferred embodiment of the present invention, the irradiation step is carried out while circulating ammonia and / or amine through the reaction system. The flow rate of the ammonia and / or amine can be, for example, 10 to 1000 mL / min.
[0020] The atmosphere in the irradiation step may contain, as components other than ammonia and / or amine, active gases such as oxygen, and inert gases such as nitrogen, helium, argon, etc. Among these, inert gases are preferred. The irradiation step can be carried out by inserting a test tube (tubular reactor) such as a quartz tube into a microwave irradiation device, placing the nitrogen-containing carbonaceous material as the raw material into the test tube, and flowing ammonia and / or amine into the test tube (see, for example, FIG. 2).
[0021] In the production method of the present invention, the microwaves irradiated in the irradiation step are electromagnetic waves having a wavelength in the range of 100 μm to 1 m. The frequency of the microwaves is preferably within the range of 300 MHz to 300 GHz, more preferably within the range of 500 MHz to 50 GHz, and even more preferably within the range of 900 MHz to 25 GHz.
[0022] The microwave irradiation temperature is, for example, preferably −50° C. or higher, and more preferably 0° C. or higher. The irradiation temperature is preferably 1000° C. or lower, and more preferably 500° C. or lower. The irradiation temperature is the temperature of the atmosphere when microwave irradiation is carried out, and it is preferable that the temperature at the start of microwave irradiation is the above temperature. The microwave irradiation time is, for example, preferably 10 seconds or more, more preferably 30 seconds or more, and even more preferably 60 seconds or more, and from the viewpoint of further improving the oxygen reduction activity, more preferably 180 seconds or more, and particularly preferably 240 seconds or more. The irradiation time is preferably 120 minutes or less, more preferably 90 minutes or less, and even more preferably 60 minutes or less.
[0023] In the production method of the present invention, the nitrogen-containing carbonaceous material to be irradiated with microwaves in the irradiation step may be fluidized by a gas flow. The gas for fluidizing the carbon material is not particularly limited, and may be, for example, the above-mentioned ammonia and / or amine, an active gas such as oxygen, or an inert gas such as nitrogen, helium, or argon.
[0024] In the production method of the present invention, the nitrogen-containing carbon material irradiated with microwaves in the irradiation step has a G band peak in the Raman spectrum at a Raman shift of 1550 to 1620 cm , which is derived from a continuous six-membered ring structure composed of carbon atoms. -1 This is the peak. The D band peak is due to structural disorder and defects, and has a Raman shift of 1270 to 1450 cm -1 This is the peak.
[0025] In this specification, a peak in a predetermined Raman shift range is a peak whose top is clearly observed within the range of the Raman shift relative to the baseline. For example, in the case of the G band, it is 1550 to 1620 cm -1 This means that there is a clear peak top within the range of 1550 to 1620 cm. -1 Although the peak shoulder is not within the range, the Raman shift is 1550-1620 cm -1 It is not called the peak. In this specification, the Raman spectrum is measured by the method described in the Examples.
[0026] The nitrogen-containing carbon material to be irradiated with microwaves in the irradiation step may be any nitrogen-containing carbon material having a G-band peak in the Raman spectrum, and examples thereof include nitrogen-doped graphite oxide, nitrogen-doped carbon fiber, nitrogen-doped carbon nanofiber, and nitrogen-doped carbon nanotube, and one or more of these may be used.
[0027] The nitrogen-doped graphite oxide is obtained by doping nitrogen atoms into graphite oxide, and the number of layers is not particularly limited, but is preferably, for example, a sheet consisting of only one layer of carbon atoms, or a structure having 2 to 100 layers. A graphene oxide having such a number of layers is also called nitrogen-doped graphene oxide. In particular, a graphene oxide having 20 or fewer layers is more preferable.
[0028] The nitrogen-doped carbon fiber has a structure obtained by doping a carbon fiber with nitrogen atoms. The carbon fiber has a hexagonal mesh structure made up of carbon atoms connected in a linear (fibrous) shape and has a diameter of more than 100 nm. The nitrogen-doped carbon nanofibers have a structure obtained by doping carbon nanofibers with nitrogen atoms. The carbon nanofibers have a structure in which hexagonal mesh structures made up of carbon atoms are connected in a linear (fibrous) shape and have a diameter of 1 to 100 nm.
[0029] Nitrogen-doped carbon nanotubes are carbon nanotubes doped with nitrogen atoms. Carbon nanotubes have a cylindrical (tubular) structure in which a hexagonal network structure made up of carbon atoms is connected, and may be single-walled or multi-walled carbon nanotubes.
[0030] The nitrogen-containing carbon material to be irradiated with microwaves in the irradiation step preferably has graphite oxide mixed therein and / or adsorbed thereon, and / or contains nitrogen-doped graphite oxide. The graphite oxide mixed and / or adsorbed in the nitrogen-containing carbon material means a material that does not substantially contain nitrogen atoms itself. The nitrogen-containing carbon material to which graphite oxide is mixed and / or adsorbed includes, for example, a material in which graphite oxide is mixed (adsorbed) in a nitrogen-containing carbon material other than nitrogen-doped graphite oxide. Graphite oxide is sp 2 Because it contains a large amount of carbon, mixing (adsorbing) it into nitrogen-containing carbon materials may increase electronic conductivity and contribute to improved performance. When graphite oxide is mixed with and / or adsorbed onto a nitrogen-containing carbon material, the mass ratio of the nitrogen-containing carbon material to graphite oxide is not particularly limited, but is preferably, for example, 1000:1 to 1:1000, more preferably 500:1 to 1:500, even more preferably 100:1 to 1:100, and particularly preferably 50:1 to 1:50.
[0031] The nitrogen-doped graphite oxide is sp 2 It is believed that the nitrogen-doped graphite oxide contains a large amount of carbon, which contributes to improved performance. The nitrogen-doped graphite oxide is preferably nitrogen-doped reduced graphite oxide. The graphite oxide can be suitably obtained by a method that employs the oxidation method in the Hummers process and includes a step of adding permanganate to a mixed liquid containing graphite and sulfuric acid.
[0032] The nitrogen-containing carbon material irradiated with microwaves in the irradiation step preferably has a nitrogen content of 1 atomic % or more, more preferably 1.5 atomic % or more, based on 100 atomic % of the total of all elements detected by XPS analysis, and preferably has a nitrogen content of 20 atomic % or less, more preferably 10 atomic % or less. Furthermore, the nitrogen-containing carbon material preferably has an oxygen content of 20 atomic % or less, more preferably 19 atomic % or less, even more preferably 18 atomic % or less, and particularly preferably 17 atomic % or less, based on 100 atomic % of the total of all elements detected by XPS analysis.
[0033] The nitrogen-containing carbon material may further have a functional group such as a sulfur-containing group. However, the amount of elements other than carbon, hydrogen, oxygen, and nitrogen is preferably 3 atomic % or less, more preferably 1 atomic % or less, of the total of all elements detected by XPS analysis (100 atomic %). It is even more preferable that the nitrogen-containing carbon material contains only carbon, hydrogen, oxygen, and nitrogen as constituent elements. The XPS analysis is carried out under the conditions of an X-ray source of Mg-Kα and a pass energy of 10 eV.
[0034] The nitrogen-containing carbonaceous material to be irradiated with microwaves in the irradiation step preferably has a particle size in the range of 0.01 mm or more and 2.4 mm or less. The particle size range is more preferably 0.02 mm or more and 2.0 mm or less, even more preferably 0.05 mm or more and 1.5 mm or less, and particularly preferably 0.1 mm or more and 1.0 mm or less. The nitrogen-containing carbon material having a particle size within the above range can be obtained, for example, by a classification operation using a sieve having openings within the above particle size range. It is also preferable that the average particle size of the nitrogen-containing carbonaceous material be within the above-mentioned preferred particle size range. For example, in the production method of the present invention, the nitrogen-containing carbonaceous material to be irradiated with microwaves in the irradiation step preferably has an average particle size of 0.01 mm or more and 2.4 mm or less. The average particle size is a volume-based average particle size measured with a laser diffraction / scattering particle size distribution analyzer.
[0035] The nitrogen-containing carbon material may be a mixture with other components when irradiated with microwaves. The nitrogen-containing carbon material preferably accounts for 90% by mass or more of the mixture, more preferably 95% by mass or more, and even more preferably 99% by mass or more, and it is particularly preferable for the mixture to consist essentially of the nitrogen-containing carbon material.
[0036] Doping a carbon material with nitrogen atoms to produce a nitrogen-containing carbon material can be performed by adding ammonia water to the carbon material and performing a hydrothermal treatment, by calcining the carbon material under a flow of ammonia and / or amine-containing gas, or by a combination of these methods (e.g., by hydrothermally treating the carbon material and then calcining it). Examples of carbon materials to be doped with nitrogen atoms include graphite oxide, carbon nanofibers, and carbon nanotubes, with graphite oxide being preferred. Note that the graphite oxide used as the carbon material to be doped with nitrogen atoms may be reduced graphite oxide, or may be one that is reduced when doped with nitrogen atoms to become nitrogen-doped reduced graphite oxide. When graphite oxide is used as the carbon material to be doped with nitrogen atoms, after doping with nitrogen atoms, the carbon material may be calcined under a flow of an inert gas such as nitrogen in order to further promote reduction. When reduced graphite oxide is used as the carbon material to be doped with nitrogen atoms, the reduced graphite oxide can be obtained by reducing graphite oxide by liquid phase reduction, gas phase reduction, or the like.
[0037] The temperature of the hydrothermal treatment can be, for example, 80 to 250° C. The temperature is preferably 140 to 220° C. The time of the hydrothermal treatment is, for example, preferably 1 to 60 hours, and more preferably 2 to 18 hours. The firing temperature can be, for example, 200 to 1000° C. The firing temperature is preferably 300 to 800° C. The firing time is, for example, preferably 10 minutes to 10 hours, and more preferably 30 minutes to 5 hours.
[0038] The modified nitrogen-containing carbon material obtained by the above-mentioned irradiation step has a Raman spectrum with a ratio of the D band peak intensity to the G band peak intensity (I D / I G ) is preferably 2.0 or less, more preferably 1.8 or less, and even more preferably 1.6 or less. D / I G The absolute value of (a) is not particularly limited to a lower limit, and may be 0. Furthermore, the ratio of the peak intensities of the modified nitrogen-containing carbon material (I D / I G ) as raw material for nitrogen-containing carbon materials I D / I G It is preferable that the amount of the reduction is 0.05 or more, more preferably 0.1 or more, and even more preferably 0.3 or more. D / I G The upper limit of the reduction is not particularly limited, but is usually 2 or less. The ratio of the above peak intensities (I D / I G ) can be measured by the method described in the Examples.
[0039] The production method of the present invention includes a step of supporting a transition metal element on the modified nitrogen-containing carbonaceous material obtained in the above-mentioned irradiating step. Examples of the above-mentioned supporting step include a method using chemical vapor deposition (CVD) or the like in which the raw materials, the modified nitrogen-containing carbon material, and the transition metal element-containing component, are placed in a non-contact state, and a method in which these raw materials are dissolved in a solvent and brought into contact with each other, and among these, the chemical vapor deposition method is preferred. In this specification, supporting a transition metal element means that the transition metal element is attached to the surface of the (modified) nitrogen-containing carbon material, and may be, for example, chemically bonded via a covalent bond, an ionic bond or a coordinate bond, or physically adsorbed by an intermolecular force.
[0040] The temperature in the loading step can be, for example, 200 to 1000° C. The temperature is preferably 300 to 900° C., and more preferably 500 to 850° C. The time for the loading step is, for example, preferably 30 minutes to 60 hours, more preferably 1 to 30 hours, and even more preferably 2 to 18 hours. The above-mentioned loading step may be carried out in air, in the presence (flow) of an active gas such as oxygen, or in the presence of an inert gas such as nitrogen, helium, or argon, but is preferably carried out in the presence of an inert gas. The above-mentioned supporting step may be carried out under increased pressure, normal pressure, or reduced pressure.
[0041] The type of transition metal element in the above-mentioned supporting step is not particularly limited, but is preferably at least one selected from the group consisting of manganese, iron, cobalt, and nickel, more preferably iron and / or cobalt, and even more preferably iron. As the transition metal element-containing component as a raw material, simple substances, oxides, hydroxides, oxyhydroxides, carbonates, sulfates, nitrates, acetates, halides, ammonium salts, oxalates, alkoxides, etc. of the transition metal elements can be used, and among these, sulfates, nitrates, and halides are preferred, halides are more preferred, and chlorides and bromides are even more preferred. In the above-mentioned supporting step, when the raw material is dissolved in a solvent and contacted, the solvent can be water or an organic solvent capable of dissolving the raw material. If necessary, an acid such as hydrochloric acid or sulfuric acid can be used. In the above-mentioned supporting step, the mass ratio of the raw material modified nitrogen-containing carbonaceous material to the transition metal element-containing component is preferably 100:1 to 1:10, more preferably 50:1 to 1:1, even more preferably 40:1 to 3:1, and particularly preferably 30:1 to 5:1.
[0042] The transition metal-supported nitrogen-containing carbonaceous material obtained by the production method of the present invention may be subjected to appropriate procedures such as acid washing, water washing, and drying.
[0043] The transition metal-supported nitrogen-containing carbonaceous material obtained by the production method of the present invention has a BET specific surface area of 100 m 2 / g or more, and 150m 2 / g or more is more preferable, and 200m 2 The upper limit of the BET specific surface area is not particularly limited, but is usually 1500 m 2 / g or less. The BET specific surface area can be measured by the method described in the Examples.
[0044] The transition metal-supported nitrogen-containing carbonaceous material obtained by the production method of the present invention has an absolute current density of 0.01 mA / (cm) normalized by the transition metal content (mass%) at a potential of 0.7 V relative to a hydrogen electrode (RHE). 2 ·wt%-Fe) or more, and 0.1mA / (cm 2 ·wt%-Fe) or more is more preferable, and 1.0 mA / (cm 2 ·wt%-Fe) or more, and 2.0 mA / (cm 2 The absolute value of the current density is particularly preferably 10 mA / (cm 2 ) or more, although there is no particular upper limit. 2 ·wt%-Fe) or less. The current density can be measured by the method described in the Examples.
[0045] The transition metal-supported nitrogen-containing carbon material obtained by the production method of the present invention has a sufficiently suppressed change in surface area while sufficiently maintaining the pyridine-type nitrogen content, and has excellent oxygen reduction reaction activity, making it useful as a catalyst such as an oxygen reduction catalyst, a semiconductor, etc. Among these, the transition metal-supported nitrogen-containing carbon material is preferably one used for an oxygen reduction catalyst.
[0046] <Transition metal-supported nitrogen-containing carbon materials> The present invention also relates to a method for producing a pretreated product obtained by evacuating a transition metal-supported nitrogen-containing carbonaceous material at a temperature of 473 K and a pressure of 0.01 Pa or less for 180 minutes, in which the number of water molecules adsorbed per unit surface area at a temperature of 298 K and a relative humidity of 25% RH was 0.8 nm -2 The transition metal-supported nitrogen-containing carbon material is characterized by the following: The number of adsorbed water molecules is 0.7 nm -2 Preferably, it is 0.65 nm or less. -2 More preferably, it is 0.6 nm or less. -2 It is more preferable that: The number of adsorbed water molecules is 0.1 nm -2 It is preferable that the thickness is 0.2 nm or more. -2 More preferably, it is 0.4 nm or more. -2 This is more preferable, as it results in more excellent oxygen reduction performance. It can be said that, under the above-mentioned sample pretreatment and measurement conditions, the measured value of the number of adsorbed water molecules does not substantially fluctuate and is uniquely determined.
[0047] The transition metal-supported nitrogen-containing carbon material of the present invention preferably has a transition metal element content of 0.01 mass % or more, more preferably 0.05 mass % or more. The transition metal-supporting nitrogen-containing carbon material of the present invention preferably has a content of the transition metal element of 5% by mass or less, more preferably 1% by mass or less. The content ratio of the above transition metal element can be measured by the ICP emission spectrometry described in the examples.
[0048] The transition metal-supported nitrogen-containing carbon material of the present invention can be preferably obtained by the production method of the present invention described above.
Examples
[0049] The present invention will be described in more detail with reference to the following examples, but the present invention is not limited to only these examples. Unless otherwise specified, "parts" means "parts by mass" and "%" means "% by mass".
[0050] In the following examples and comparative examples, analysis and evaluation were performed as follows. <Method for Measuring BET Specific Surface Area> Using an automatic specific surface area meter (BELSORP-miniII, manufactured by MicrotracBEL Corp.), the BET specific surface area was measured using nitrogen as the adsorption gas. Each sample was pretreated at 250 °C for 4 hours under a nitrogen stream before the adsorption measurement.
[0051] <Evaluation of Degree of Progress of Low Defect Formation> In accordance with the method described in Cancado, L. G. et al., App. Phys. Lett. 88.16 (2006) 163106-163106, the degree of progress of low defect formation of the sample was evaluated by Raman spectroscopy measurement.
[0052] <ICP Emission Spectrometry (Inductively Coupled Plasma Atomic Emission Spectroscopy: ICP-AES)> The sample, concentrated nitric acid, and hydrogen peroxide solution were placed in a TFM decomposition vessel, treated using a microwave sample pretreatment device (ETHOS One, manufactured by Milestone General Co., Ltd.), then 35% hydrochloric acid was added, and the solution diluted with ultrapure water was filtered. The filtrate was analyzed using a multi-type ICP emission spectrometer (ICPE-9000, manufactured by Shimadzu Corporation).
[0053] <Preparation of nitrogen-doped carbon substrate (NC)> (Preparation Example 1 [Preparation of nitrogen-doped reduced graphite oxide NrGO-1]) Reduced graphite oxide rGO-1 (liquid-phase reduced product, sample weight: 500 mg) prepared by the method of Preparation Example 2 described in JP 2021-006497 A and classified to a particle size range of 0.6 mm to 1.0 mm was treated at 800 °C for 100 minutes under a NH3 flow (NH3 gas flow rate: 40 mL / min) to nitrogen-dope it, obtaining nitrogen-doped reduced graphite oxide NrGO-1 (Figure 1).
[0054] (Preparation Example 2 [Preparation of Modified Nitrogen-Doped Reduced Graphite Oxide MW-NrGO-1]) Nitrogen-doped reduced graphite oxide NrGO-1 (sample weight: 350 mg) was placed in a quartz test tube (tubular reactor). While NH3 gas was passed from one end of the test tube to the other (NH3 gas flow rate: 15 mL / min), microwave irradiation was performed using a microwave oven set to 700 W for 5 minutes to obtain modified nitrogen-doped reduced graphite oxide MW-NrGO-1 (Figure 2).
[0055] (Preparation Example 3 [Preparation of nitrogen-doped reduced graphite oxide NrGO-2]) 20 g of a graphene oxide (GO) aqueous dispersion (non-volatile content: 2.8% by mass), 12 g of a 25% by mass ammonia aqueous solution, and 8 g of water were mixed to obtain an aqueous solution with a non-volatile content of 1.4% by mass. The aqueous solution was placed in a Teflon (registered trademark) container and heated at 180°C for 12 hours for hydrothermal treatment. The solid obtained after the hydrothermal treatment was placed in a container, and tertiary butyl alcohol (TBA) was added. The mixture was then heated for 12 hours in a constant-temperature shaking bath at 50°C. After cooling and solid-liquid separation, fresh TBA was added. This procedure was repeated five times to perform TBA substitution. After TBA substitution, the mixture was freeze-dried at -10°C for 2 weeks. The material was carbonized by heating at 1000°C for 3 hours in a nitrogen atmosphere to obtain nitrogen-doped reduced graphite oxide NrGO-2 (Figure 4).
[0056] (Preparation Example 4 [Preparation of Modified Nitrogen-Doped Reduced Graphite Oxide MW-NrGO-2]) [Microwave Modification of Nitrogen-Doped Reduced Graphite Oxide NrGO-2] Nitrogen-doped reduced graphite oxide NrGO-2 (sample weight: 20 mg or less) was placed in a quartz test tube (tubular reactor), and NH3 gas was passed from one end of the test tube to the other (NH3 gas flow rate: 15 mL / min). Microwave irradiation was performed using a microwave oven set to 700 W for 5 minutes to obtain modified nitrogen-doped reduced graphite oxide MW-NrGO-2 (using an apparatus similar to that shown in Figure 2). Table 1 below shows the BET specific surface area of the samples obtained in each preparation example.
[0057] [Table 1]
[0058] The results in Table 1 indicate that the BET specific surface area of the modified nitrogen-doped reduced graphite oxides MW-NrGO-1 and MW-NrGO-2 is sufficiently maintained compared to that before modification. Furthermore, the modified nitrogen-doped reduced graphite MW-NrGO-2 is more porous than the modified nitrogen-doped reduced graphite MW-NrGO-1.
[0059] FIG. 3 is a graph showing the pyridine-type nitrogen content and the graphite-type nitrogen content of nitrogen-doped reduced graphite oxide and modified nitrogen-doped reduced graphite oxide, respectively. The results in Figure 3 indicate that the content of pyridine-type nitrogen, which has two bonds with carbon and is thought to contribute to the formation of catalytically active sites for the oxygen reduction reaction, is sufficiently maintained in the modified nitrogen-doped reduced graphite oxides MW-NrGO-1 and MW-NrGO-2 compared to before modification.
[0060] Figure 5 is a graph showing Raman spectroscopic data (Raman spectra) of the samples (nitrogen-doped reduced graphite oxide and modified nitrogen-doped reduced graphite oxide) obtained in each preparation example. Table 2 below also shows the ratio of the D band peak intensity to the G band peak intensity in the Raman spectrum of the samples obtained in each preparation example (I D / I G) is shown.
[0061] [Table 2]
[0062] From the results in FIG. 5 and Table 2, a G-band peak and a D-band peak were observed in all samples. In addition, in the modified nitrogen-doped reduced graphite oxide MW-NrGO-2, the ratio of the above peak intensities (I D / I G ) has been significantly reduced, clearly demonstrating the progress of defect reduction. It is also believed that the modified nitrogen-doped reduced graphite oxide MW-NrGO-1 has also progressed in reducing defects compared to before modification. The modified nitrogen-doped reduced graphite oxide MW-NrGO-2 exhibited a 2700 cm -1 The peak of the 2D band near ≈ ...
[0063] <Iron loading on nitrogen-doped carbon substrate (NC) by chemical vapor deposition (CVD)> Example 1 (Preparation of iron-loaded modified nitrogen-doped reduced graphite oxide Fe-MW-NrGO-1) FIG. 6 is a schematic diagram showing a process of supporting iron on nitrogen-doped reduced graphite oxide or modified nitrogen-doped reduced graphite oxide by chemical vapor deposition (CVD). The raw materials, modified nitrogen-doped reduced graphite oxide (MW-NrGO-1) (30 mg) and iron(II) chloride tetrahydrate (FeCl2·4H2O) (2 mg), were placed in a boat in a quartz test tube (tubular reactor). N2 gas was flowed from one end of the test tube to the other at 650 mL / min, and the reaction was heated at 750 °C for 3 hours to obtain iron-loaded modified nitrogen-doped reduced graphite oxide (Fe-MW-NrGO-1) (see Figure 6 for an example). FIG. 7 is a graph showing the temperature in the test tube versus time in the iron loading step shown in FIG.
[0064] (Comparative Example 1 [Preparation of iron-supported nitrogen-doped reduced graphite oxide Fe-NrGO-1]) Iron-loaded nitrogen-doped reduced graphite Fe-NrGO-1 was obtained in the same manner as in Example 1, except that nitrogen-doped reduced graphite NrGO-1 (30 mg) was used as the raw carbon material instead of modified nitrogen-doped reduced graphite MW-NrGO-1 (30 mg).
[0065] Example 2 (Preparation of Fe-MW-NrGO-1A, a physical mixture of iron and modified nitrogen-doped reduced graphite oxide) A boat containing a physical mixture of modified nitrogen-doped reduced graphite oxide (MW-NrGO-1) (30 mg) and iron(II) chloride tetrahydrate (FeCl2·4H2O) (2 mg) was placed in a tubular furnace and heat-treated at 750 °C for 3 h under a nitrogen flow of 50 ml / min to obtain a physical mixture of iron and modified nitrogen-doped reduced graphite oxide (Fe-MW-NrGO-1A).
[0066] FIG. 8 is a graph showing the pyridine-type nitrogen content and graphite-type nitrogen content of nitrogen-doped reduced graphite oxide, modified nitrogen-doped reduced graphite oxide, iron-loaded nitrogen-doped reduced graphite oxide, and iron-loaded modified nitrogen-doped reduced graphite oxide. In the iron-loaded nitrogen-doped reduced graphite Fe-NrGO-1 (Comparative Example 1) and the iron-loaded modified nitrogen-doped reduced graphite Fe-MW-NrGO-1 (Example 1), the content of pyridine-type nitrogen was sufficiently maintained compared to before iron loading.
[0067] The iron content of the iron-loaded, nitrogen-doped reduced graphite Fe-NrGO-1 (Comparative Example 1) and the iron-loaded, modified nitrogen-doped reduced graphite Fe-MW-NrGO-1 (Example 1) was measured by inductively coupled plasma atomic emission spectroscopy (ICP-AES). The results are shown in Table 3.
[0068] [Table 3]
[0069] (Evaluation of oxygen reduction reaction activity using a rotating electrode) The samples were evaluated by linear sweep voltammetry (LSV) measurements using a rotating disk electrode in a 0.5M H2SO4 aqueous solution in which oxygen had been dissolved until saturated at room temperature. Each sample was pretreated and dried by heating at 80°C for 12 hours under vacuum (-0.1 MPa on a negative pressure gauge). 2.5 mg of the carbon material (catalyst) was weighed out and added to 25 μL of a 5% by mass Nafion dispersion, 300 μL of ethanol, and 300 μL of distilled water to prepare a catalyst ink. The catalyst ink was sonicated at 120 kHz for 30 minutes while ice-cooled, and then an appropriate amount was drawn up using a micropipette. 4 μL was applied as a drop onto the glassy carbon electrode of a rotating disk electrode apparatus and dried to prepare a working electrode (the electrode contained 0.082 mg / cm). 2 The electrode was rotated at 1600 rpm, and the potential was swept from 0.05 to 1.05 V vs. RHE at a sweep rate of 1 mV / s, and the current was recorded as a function of the potential. The ORR measurement results for each sample are shown in Figures 9 and 10. Compared with the nitrogen-doped reduced graphite NrGO-1, the modified nitrogen-doped reduced graphite MW-NrGO-1 and the iron-loaded nitrogen-doped reduced graphite Fe-NrGO-1 each exhibited reduced overpotentials. Furthermore, the physical mixture of iron and modified nitrogen-doped reduced graphite, Fe-MW-NrGO-1A, and the iron-loaded modified nitrogen-doped reduced graphite Fe-MW-NrGO-1 each exhibited significantly reduced overpotentials. In particular, the iron-loaded modified nitrogen-doped reduced graphite Fe-MW-NrGO-1 exhibited a significant reduction in overpotential, resulting in a significant improvement in the absolute value of the current density at a potential of 0.7 V vs. the hydrogen electrode (RHE). Thus, it is believed that a sample obtained by modifying a nitrogen-containing carbon material having a G-band peak in the Raman spectrum by microwave irradiation and then supporting a transition metal element can sufficiently reduce the activation energy required for oxygen reduction.
[0070] (Evaluation of the surface hydrophobicity of the substrate and catalyst) Figure 11 shows the number of water molecules adsorbed per unit surface area (nm) versus relative humidity p / p0 at 298 K after pretreatment of nitrogen-doped reduced graphite oxide, modified nitrogen-doped reduced graphite oxide, iron-loaded nitrogen-doped reduced graphite oxide, and iron-loaded modified nitrogen-doped reduced graphite oxide. -2 ) is a graph showing the BET specific surface area of each of the nitrogen-doped reduced graphite oxide, the modified nitrogen-doped reduced graphite oxide, the iron-loaded nitrogen-doped reduced graphite oxide, and the iron-loaded modified nitrogen-doped reduced graphite oxide.
[0071] [Table 4]
[0072] The comparison of the modified nitrogen-doped reduced graphite oxide (MW-NrGO-1) with the unmodified nitrogen-doped reduced graphite oxide (NrGO-1) and the comparison of the iron-loaded modified nitrogen-doped reduced graphite (Fe-MW-NrGO-1) with the iron-loaded nitrogen-doped reduced graphite (Fe-NrGO-1) in Figure 11 demonstrates that microwave irradiation improves the surface hydrophobicity of carbon materials. The hydrophobicity of the surface of the nitrogen-containing carbon material, moderately improved by microwave irradiation, may affect the oxygen reduction performance. That is, moderately improved surface hydrophobicity may make it easier for gaseous oxygen to adsorb to the surface than for liquids such as electrolytes, thereby further promoting the oxygen reduction reaction. This effect, combined with the oxygen reduction performance improvement effect of supporting the transition metal via nitrogen atoms, is thought to synergistically improve the oxygen reduction performance. Note that if the surface hydrophobicity of the carbon material is improved too much by a modification method other than microwave irradiation, it may become more difficult for the carbon material to receive protons necessary for oxygen reduction from the liquid acid component, resulting in a risk of reduced oxygen reduction performance.
Claims
1. Irradiating a nitrogen-containing carbon material having a G-band peak in a Raman spectrum with microwaves; The method for producing a transition metal-supported nitrogen-containing carbon material comprises a step of supporting a transition metal element on the modified nitrogen-containing carbon material obtained in the irradiating step.
2. 2. The method for producing a transition metal-supported nitrogen-containing carbonaceous material according to claim 1, wherein the irradiating step is carried out in an atmosphere containing ammonia and / or an amine.
3. 3. The method for producing a transition metal-supported nitrogen-containing carbon material according to claim 1, wherein the nitrogen-containing carbon material to be irradiated with microwaves in the irradiation step is a material to which graphite oxide is mixed and / or adsorbed, and / or contains nitrogen-doped graphite oxide.
4. 4. The method for producing a transition metal-supported nitrogen-containing carbon material according to claim 1, wherein the transition metal element is at least one selected from the group consisting of manganese, iron, cobalt, and nickel.
5. 5. The method for producing a transition metal-supported nitrogen-containing carbon material according to claim 1, wherein the transition metal-supported nitrogen-containing carbon material is used as an oxygen reduction catalyst.
6. The pre-treated product obtained by evacuating a transition metal-supported nitrogen-containing carbonaceous material at a temperature of 473 K and a pressure of 0.01 Pa or less for 180 minutes had an adsorbed water molecule count of 0.7 nm per unit surface area at a temperature of 298 K and a relative humidity of 25% RH. -2 A transition metal-supported nitrogen-containing carbon material, characterized in that:
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