Method for producing carbon monoxide and apparatus for producing carbon monoxide

A novel method using chemically bonded acidic groups in non-metallic catalysts addresses reaction stability and corrosion issues, enabling efficient and stable carbon monoxide production with high purity.

JP7799682B2Active Publication Date: 2026-01-15SUMITOMO SEIKA CHEM CO LTD
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2023510613
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-02-14
Publication Date
2026-01-15
Estimated Expiration
2042-02-14

AI Technical Summary

Technical Problem

Existing methods for producing carbon monoxide from formic acid or alkyl formate esters using zeolite catalysts face issues with reaction stability, wastewater treatment, and equipment corrosion due to acid component elution.

Method used

A method involving the decomposition of formic acid or alkyl formate esters in the presence of a base material with a catalyst having acidic groups chemically bonded to the matrix, using non-metallic materials like activated carbon or silica gel, and incorporating sulfonic acid groups to enhance catalytic activity and reduce metal impurities.

Benefits of technology

The method achieves efficient carbon monoxide production with high purity and stability, minimizing acid elution and corrosion, facilitating easy wastewater treatment and reducing equipment degradation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007799682000001
    Figure 0007799682000001
Patent Text Reader

Abstract

Disclosed is a method for producing carbon monoxide that includes a step for generating carbon monoxide by decomposition of a raw material compound that is at least one of formic acid or a formic acid alkyl ester in the presence of a catalyst that includes a base material and an acid group that is chemically bonded to the base material.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a method for producing carbon monoxide and an apparatus for producing carbon monoxide. [Background technology]

[0002] Formic acid and alkyl formates generate carbon monoxide through decomposition. As a method for producing carbon monoxide using formic acid as a raw material, for example, a method using a zeolite catalyst pre-modified with a mineral acid is known (Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 10-007413 Summary of the Invention [Problem to be solved by the invention]

[0004] The present disclosure relates to a novel method for producing carbon monoxide from formic acid or alkyl formate esters. [Means for solving the problem]

[0005] One aspect of the present disclosure relates to a method for producing carbon monoxide, comprising the step of generating carbon monoxide by decomposing at least one feed compound of formic acid or an alkyl formate ester in the presence of a base material and a catalyst comprising an acidic group chemically bonded to the base material.

[0006] Another aspect of the present disclosure relates to an apparatus for producing carbon monoxide, comprising: a reactor; and a catalyst disposed in the reactor, the catalyst including a matrix and acidic groups chemically bonded to the matrix. [Effects of the Invention]

[0007] According to a method or apparatus according to an aspect of the present disclosure, carbon monoxide can be efficiently produced. The method or apparatus according to an aspect of the present disclosure is advantageous in terms of reaction stability, ease of wastewater treatment, and suppression of equipment corrosion, because the method or apparatus results in little elution of acid components from the catalyst. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a schematic diagram illustrating one embodiment of a carbon monoxide production apparatus according to the present disclosure. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, several embodiments of the present disclosure will be described in detail, but the present disclosure is not limited to the following embodiments.

[0010] The method for producing carbon monoxide according to the present disclosure includes a step of generating carbon monoxide by decomposing at least one raw material compound of formic acid or an alkyl formate ester in the presence of a base material and a catalyst including an acidic group chemically bonded to the base material.

[0011] The starting compound can be formic acid, an alkyl formate, or a combination thereof. The alkyl formate can be, for example, methyl formate or ethyl formate.

[0012] The matrix constituting the catalyst may be porous. The matrix may be a non-metallic material, for example, a non-metallic material selected from activated carbon, silica gel, and perfluorocarbon. If the matrix is ​​a non-metallic material, catalyst deterioration due to metal elution is suppressed, and the incorporation of metal impurities into carbon monoxide can be reduced.

[0013] The acidic group constituting the catalyst may be, for example, a sulfonic acid group, a carboxyl group, a hydroxyl group, or a combination thereof, or may be a sulfonic acid group. The sulfonic acid group can be easily introduced into a base material such as a nonmetallic material by chemical bonding. For example, the sulfonic acid group (-SO3H) may be bonded to the compound species constituting the base material by a single bond. When the acidic group constituting the catalyst is a sulfonic acid group, the base material constituting the catalyst is preferably activated carbon. In this case, catalytic activity is increased, reaction efficiency is improved, and costs can be reduced.

[0014] From the viewpoint of improving the conversion rate of the reaction, the amount of acidic groups in the catalyst may be 0.03 mmol or more, 0.04 mmol or more, or 0.05 mmol or more per gram of the catalyst including the base material and the acidic groups, and may be 1.0 mmol or less, 0.50 mmol or less, or 0.10 mmol or less per gram of the catalyst.

[0015] The catalyst in which the acidic group is introduced by chemical bonding can be synthesized by a conventional method, and commercially available catalysts can also be used.

[0016] For example, a reaction to produce carbon monoxide can proceed by contacting a gas or liquid containing a raw material compound with a catalyst in a reactor. An apparatus for producing carbon monoxide including a reactor and a catalyst disposed in the reactor may be prepared in advance, and a gas or liquid containing the raw material compound may be supplied into the reactor.

[0017] The raw material compound may be commercially available formic acid or a formic acid alkyl ester. A gas containing vapor of the raw material compound may be generated from a solution containing the raw material compound and supplied to the reactor. Alternatively, a solution containing the raw material compound may be supplied to the reactor. Supplying a gas containing the raw material compound tends to be superior in terms of reaction efficiency. The concentration of the raw material compound solution is not particularly limited, but may be 40 mass % or more based on the mass of the solution from the viewpoint of energy efficiency. The raw material compound solution may be, for example, an aqueous formic acid solution.

[0018] For efficient reaction, the catalyst, the raw material compound, or both may be heated. For example, when the heating temperature is 100 to 300°C, the reaction tends to proceed particularly efficiently while suppressing the generation of by-products such as hydrogen. From the same viewpoint, the heating temperature may be 100 to 150°C.

[0019] The reactor can be, for example, a reaction kettle or a reaction tower. A gas containing the raw material compounds may be continuously supplied to a reaction tower as a reactor in which a catalyst is placed. Carbon monoxide can be continuously produced by continuously supplying the gas. The reaction tower may be one, or multiple reaction towers may be connected. A reactor consisting of multiple reaction towers is advantageous in terms of suppressing uneven flow rate distribution within the reactor and ensuring a heat transfer area for heating. Instead of using a reaction tower, a catalyst and a gas or liquid containing the raw material compounds may be placed in a reactor (reaction kettle), and then the catalyst and the gas or liquid containing the raw material compounds may be heated.

[0020] The reactor can be made of a non-metallic material such as carbon. A reactor made of a non-metallic material is less susceptible to corrosion by formic acid and carbon monoxide and is less likely to affect the reaction. When the heating temperature is relatively low (e.g., 100 to 150°C), a reactor having a surface treated with a glass lining is easily applicable. When a gas or liquid containing a raw material compound is continuously supplied to the reactor, the reactor usually has an inlet and an outlet for supplying or discharging the gas or liquid, which are connected to an external flow path.

[0021] When a gas containing the raw material compound is continuously supplied to a reactor, the supply rate of the raw material compound is appropriately adjusted depending on the amount of acidic groups, etc. For example, the supply rate of the raw material compound may be in the range of 0.1 to 1000 [1 / hour].

[0022] The produced carbon monoxide-containing gas or liquid often contains trace amounts of hydrogen, carbon dioxide, and methane in addition to water. Therefore, the method for producing carbon monoxide may further include removing unreacted raw material compounds and by-products from the carbon monoxide-containing product (gas or liquid) removed from the reactor and removing water from the product. The raw material compounds and by-products can be removed by a conventional washing method, thereby obtaining high-purity carbon monoxide. The raw material compounds and carbon dioxide can be easily removed, for example, with caustic soda. The purity of the carbon monoxide in the product after water, raw material compounds, and by-products have been removed by these steps can be 99.99% or higher. Such high-purity carbon monoxide can be used for various applications, including the semiconductor manufacturing field.

[0023] FIG. 1 is a schematic diagram showing one embodiment of a carbon monoxide production apparatus according to the present disclosure. As shown in FIG. 1, the carbon monoxide production apparatus 10 according to the present disclosure includes a reactor 1 and a catalyst 2 disposed within the reactor 1. The catalyst 2 includes a base material and acidic groups chemically bonded to the base material. The reactor 1 also has an inlet 1a and an outlet 1b for supplying or discharging a gas or liquid. Outside the reactor 1, a flow path 3 for supplying at least one raw material compound, formic acid or a formic acid alkyl ester, is connected to the inlet 1a, and a flow path 4 for discharging the gas or liquid is connected to the outlet 1b. The carbon monoxide production apparatus 10 may further include, as necessary, a heating device (not shown) for heating the catalyst 2, the raw material compound, or both, a device (not shown) for removing unreacted raw material compounds and by-products from a carbon monoxide-containing product, and a device (not shown) for removing water from the product.

[0024] In the carbon monoxide production apparatus 10, raw material compounds are supplied to the reactor 1 through the inlet 1a via the flow path 3 and pass through the catalyst 2. At this time, carbon monoxide is produced by decomposition of the raw material compounds in the presence of the catalyst. The carbon monoxide-containing product is discharged from the outlet 1b of the reactor 1 through the flow path 4. In this way, carbon monoxide is produced. [Example]

[0025] The present disclosure will be described in more detail below with reference to examples, although the present disclosure is not limited to these examples.

[0026] Example 1 Activated carbon and a catalyst containing sulfonic acid groups chemically bonded to the activated carbon (Futamura Chemical, product name: CE20-96142DH, sulfonic acid group content: 0.05-0.10 mmol per gram of catalyst (including activated carbon and sulfonic acid groups)) were prepared. 25 g of this catalyst was packed into a column with an inner diameter of 2.5 cm and a length of 25 cm. While the catalyst-packed column was heated externally to 140°C, formic acid vapor at 120°C, generated by passing a 76% by weight aqueous solution of formic acid through a vaporizer, was introduced into one end of the column at a feed rate of 6 g / hour. The gas discharged from the other end of the column was passed through a 20% by weight aqueous solution of caustic soda and then water. Trace amounts of carbon dioxide contained in the gas were removed by the caustic soda solution. The gas that had passed through the aqueous caustic soda solution and water was cooled and dried, and the amount of hydrogen in the gas was then quantified using a gas chromatograph equipped with a PDD (Pulsed Discharge Detector) as a detector. The conversion rate of formic acid and the selectivity to carbon monoxide were calculated from the determined amount of hydrogen and the gas flow rate. The conversion rate was 21%, and the selectivity to carbon monoxide was over 99.99%.

[0027] To investigate the elimination of sulfonic acid groups from the catalyst, 10 g of unused catalyst was immersed in 50 mL of water at room temperature for 1 hour. Analysis by ion chromatography showed that the amount of elimination was SO4 2- and SO3 - The total amount of sulfonic acid groups was 0.012 mmol / g. Because the sulfonic acid groups are chemically bonded to the activated carbon matrix, it was confirmed that the sulfonic acid groups are hardly released by immersing the catalyst in water.

[0028] Comparative Example 1 A 10 cm long column was packed with 22 g (50 mL) of granular activated carbon (manufactured by Takeda Pharmaceutical Co., Ltd., trade name: Shirasagi G2X) that does not have sulfonic acid groups. A carbon monoxide production test was carried out in the same manner as in Example 1, except that this packed column was used. Analysis of the gas discharged from the column confirmed that no carbon monoxide was produced.

[0029] 10 g of the unused catalyst was immersed in a sulfuric acid aqueous solution containing 0.05 mmol of sulfuric acid per 1 g of the total amount of catalyst (activated carbon) and sulfuric acid. The catalyst was removed from the sulfuric acid aqueous solution and immersed in 50 mL of water at room temperature for 1 hour. Subsequent analysis by ion chromatography showed that the amount of desorption was 100%. 2- and SO3 - The total amount of sulfuric acid introduced by immersion in the sulfuric acid aqueous solution was 0.048 mmol / g. This result confirmed that the sulfuric acid introduced by immersion in the sulfuric acid aqueous solution was not substantially chemically bonded to the activated carbon base material. [Explanation of symbols]

[0030] 1...reactor, 1a...inlet, 1b...outlet, 2...catalyst, 3, 4...flow path, 10...carbon monoxide production device

Claims

1. 1. A method for producing carbon monoxide, comprising: generating carbon monoxide by decomposing at least one raw material compound of formic acid or a formic acid alkyl ester in the presence of a base material and a catalyst containing an acidic group chemically bonded to the base material; wherein the base material is a non-metallic material, the non-metallic material includes activated carbon, and the acidic group is a sulfonic acid group.

2. 2. The method of claim 1, wherein the amount of the acidic groups in the catalyst is 0.03 mmol or more per gram of the catalyst mass.

3. 3. The method according to claim 1, wherein the amount of the acidic groups in the catalyst is 1.0 mmol or less per gram of the mass of the catalyst.

4. The method according to any one of claims 1 to 3, wherein the catalyst is heated to 100 to 300°C in the step of generating carbon monoxide by decomposition of the raw material compound.

5. The method according to any one of claims 1 to 4, wherein the catalyst is placed in a reactor, and a gas or liquid containing the raw material compound is supplied to the reactor.

6. a reactor; and a catalyst disposed within the reactor, the catalyst comprising a matrix and acidic groups chemically bonded to the matrix; wherein the base material is a non-metallic material, the non-metallic material includes activated carbon, and the acidic group is a sulfonic acid group.

7. 7. The carbon monoxide production apparatus according to claim 6, wherein the amount of the acidic groups in the catalyst is 0.03 mmol or more per 1 g of the mass of the catalyst.

8. 8. The carbon monoxide generating apparatus according to claim 6, wherein the amount of the acidic groups in the catalyst is 1.0 mmol or less per 1 g of the mass of the catalyst.

Citation Information

Patent Citations

  • Production of highly pure carbon monoxide

    JP1998007413A

  • Method of producing gaseous mixture of carbon monoxide with hydrogen

    JP2002173302A

  • Process for decomposing formic acid and apparatus for decomposing formic acid

    JP2018118876A

  • Pd-CATALYZED DECOMPOSITION OF FORMIC ACID

    JP2019089690A

  • HPW / TiO2 CATALYST FOR SYNTHESIS OF HIGH PURITY CO FROM FORMIC ACID AND THE METHOD THEREOF

    KR101851606B1