Synthesis of a spherical material with a zeolitic imidazolate structure

The synthesis of spherical ZIFs using an aqueous medium with ligand concentrations above the solubility limit addresses the limitations of existing methods by eliminating the need for toxic solvents and producing monodisperse spherical particles, thereby expanding their application potential.

FR3156775A1Pending Publication Date: 2025-06-20COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
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Patent Information

Application Number
FR2023014102
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-12-13
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

Existing methods for synthesizing zeolitic imidazolate frameworks (ZIFs) often require specialized equipment and organic solvents, which are costly, toxic, and environmentally unfriendly, and result in irregularly shaped particles, limiting their applications.

Method used

A method for synthesizing ZIFs in the form of spherical particles by reacting a zinc or cobalt salt with imidazole or its derivatives in an aqueous medium, where the ligand concentration exceeds its solubility limit, allowing for the production of monodisperse spherical ZIF particles.

Benefits of technology

This method enables the production of ZIFs and their corresponding oxides in spherical shapes without the need for expensive or hazardous solvents, enhancing their applicability in catalysis, energy storage, and other fields.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a method for synthesizing a material with a zeolitic imidazolate structure comprising zinc or cobalt and in the form of spherical particles, the method comprising at least the following steps: a) reaction in an aqueous medium, at a temperature θ and with stirring, between a zinc or cobalt salt and at least one ligand chosen from imidazole and its derivatives, whereby a precipitate is obtained; and b) recovery of the precipitate; and is characterized in that, in step a), the ligand(s) is (are) present in the aqueous medium at a concentration at least equal to its (their) solubility limit in water at temperature θ. It also relates to a method for preparing a simple or mixed oxide of zinc or cobalt in the form of spherical particles, this method implementing said synthesis method.Applications: photocatalysis, separation, adsorption, gas storage, manufacturing of electronic devices, chemical sensors and luminescent probes, health and cosmetics fields, manufacturing of electrodes.
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Description

Title of the invention: Synthesis of a spherical material with a zeolitic imidazolate structure Technical field

[0001] The invention relates to the field of the synthesis of organic-inorganic hybrid materials.

[0002] More specifically, the invention relates to a method for synthesizing a material with a zeolitic imidazolate structure, conventionally called ZIF (for "Zeolitic Imidazolate Framework" in English), which comprises zinc or cobalt and which has the characteristic of being in the form of spherical particles.

[0003] It also relates to a process for preparing a simple or mixed oxide of zinc or cobalt which implements this synthesis process and which leads to a zinc or cobalt oxide also in the form of spherical particles.

[0004] The invention finds application in particular in all fields where ZIFs are likely to be used and, in particular, catalysis and more specifically photocatalysis, separation, adsorption and / or storage of gases, the manufacture of electronic devices, chemical sensors and luminescent probes, as well as in the fields of health and cosmetics, for example for the administration and controlled release of active ingredients.

[0005] It also finds application in the fields of use of particles of a simple or mixed oxide of zinc or cobalt such as, in the case of particles of a simple oxide, the manufacture of glasses, ceramics and the preparation of sun cream compositions and, in the case of particles of a mixed oxide, the manufacture of electrodes, for example, of the LCO type (for "Lithium Cobalt Oxide" in English) for lithium-ion batteries. State of the prior art

[0006] For about ten years, ZIFs, which represent a subclass of MOFs (for "Metal-Organic Framework" in English), have been the subject of much attention due to their unique properties (high porosity, high specific surface area, hydrophobicity, biocompatibility, high chemical and thermal stability, numerous functionalization possibilities, etc.) which give them a very wide range of applications.

[0007] These materials consist of a regular, three-dimensional assembly of organic and inorganic entities, formed by iteration of metallic centers (more precisely metal cations) linked together via ligands which establish coordination bonds with these metal centers.

[0008] More specifically, ZIFs consist of an assembly of tetrahedral units at the center of which is a divalent metal cation that is bonded to four nitrogen atoms - each from an imidazolate ligand - representing the four vertices of the tetrahedra. The tetrahedra are connected to each other by their vertices, that is, each ligand is shared between two tetrahedra.

[0009] A number of ZIF synthesis routes have been proposed, including solvothermal, hydrothermal, solvo / hydrothermal, sonochemical, mechanochemical, electrochemical and microfluidic (in microreactor) routes.

[0010] The particles of ZIFs obtained by these different synthesis routes have either an irregular, even anarchic, morphology, or a regular morphology, typically rhombic dodecahedra, truncated rhombic dodecahedra, cubes or sheets.

[0011] It turns out that, for their use in certain application areas, it would be desirable to have ZIFs also in the form of spheres.

[0012] This is how Shunsuke Tanaka et al. (ACS Omega 2017, 2, 6737-6445) proposed a process for synthesizing a ZIF-8 that makes it possible to obtain spherical particles. This process consists of transforming an aqueous mixture of zinc acetate and 2-methylimidazole into a powder by spray drying and dispersing the powder thus obtained in methanol or butanol, the ZIF particles then being recovered by centrifugation.

[0013] While this process is undeniably of interest, it nevertheless has the disadvantage of requiring the use of specific equipment, namely a spray dryer, as well as the use of organic solvents, which are more expensive, more toxic and less environmentally friendly than water.

[0014] The inventors therefore set themselves the objective of providing a method for synthesizing a ZIF which leads to obtaining this ZIF in the form of spheres and which does not have these drawbacks. Statement of the invention

[0015] This objective is achieved by the invention which proposes, firstly, a method for synthesizing a material with a zeolitic imidazolate structure - which will be more simply called ZIF in the following - comprising zinc or cobalt and in the form of spherical particles, which method comprises at least the following steps: a) reaction in an aqueous medium, at a temperature of 0 and with stirring, between a zinc or cobalt salt and at least one ligand chosen from imidazole and its derivatives, whereby a precipitate is obtained; and b) recovery of the precipitate; and is characterized in that, in step a), the ligand(s) is (are) present in the aqueous medium at a concentration at least equal to its (their) solubility limit in water at temperature 0.

[0016] The inventors have in fact observed that, surprisingly, the reaction in aqueous medium between a zinc or cobalt salt and one or more ligands chosen from imidazole and its derivatives leads to the production of a ZIF in the form of spherical particles provided that the aqueous medium during the reaction is saturated with ligand(s).

[0017] In the above and the following, the terms "material [...] in the form of spherical particles" designate a material whose particles are perfect spheres or quasi-spheres, that is to say spheres whose ratio between the maximum dimension (Dmax) and the minimum dimension (Dmin) is less than 1.2.

[0018] Furthermore, the solubility limit of the ligand(s) is understood as the maximum concentration (mass or molar) at which this / these ligand(s) can be dissolved in the aqueous medium and, more generally, in water at the temperature of the reaction between the zinc or cobalt salt and this ligand, i.e. at temperature 0. Typically, an imidazole type ligand has a solubility limit in water at least equal to 2 g / L at 30°C.

[0019] In accordance with the invention, the ligand(s) preferably correspond to the formula (I) below:

[0020] [Chem.l]

[0021] in which: - R1 and R2 represent, independently of each other, a hydrogen atom, a linear or branched C1 to C4 alkyl group, a halogen atom, an amino group or a nitro group, or R1 and R2 together form a phenyl group optionally substituted one or more times; and - R3 represents a hydrogen atom, a linear or branched C1 to C4 alkyl group, a halogen atom, an amino group or a nitro group.

[0022] It is specified that we mean: - by “linear or branched C} to C4 alkyl group”, any alkyl group (i.e. of formula CnH2n+i) comprising 1, 2, 3 or 4 carbon atoms and the chain of which, in the case where it is C4, may be linear or include a branch; and - by “a phenyl group optionally substituted one or more times”, a phenyl group in which the hydrogen atom carried by one or more carbon atoms of the cycle is replaced by a substituent such as a halogen atom, a linear or branched C1 to C4 alkyl group, an amino group or a nitro group.

[0023] More particularly, when R1, R2 and / or R3 represent a linear or branched C1 to C4 alkyl group, they can be chosen, independently of one another, from a methyl group and an ethyl group.

[0024] Also, in formula (I) above, it is preferred that: - R1 and R2 represent, independently of one another, a hydrogen atom, a methyl group, an ethyl group, a halogen atom, an amino group or a nitro group, or R1 and R2 together form a phenyl group; and - R3 represents a hydrogen atom, a methyl group, an ethyl group, a halogen atom, an amino group or a nitro group.

[0025] More particularly, it is preferred that: - R1 and R2 represent a hydrogen atom or R1 and R2 together form a phenyl group; and - R3 represents a hydrogen atom, a methyl group or an ethyl group.

[0026] Furthermore, it is preferred that the ligand(s) have a hydrophobic part, which is particularly the case for ligands corresponding to formula (I) above in which R1 and R2 together form a phenyl group.

[0027] Among these, preference is given to benzimidazole which corresponds to the following formula:

[0028] [Chem.2]

[0029] In which case, the synthesized ZIF is either a ZIF-7-III (if the benzimidazole is associated with zinc) or a ZIF-9-III (if the benzimidazole is associated with cobalt).

[0030] Alternatively, however, it is entirely possible to take advantage of the synthesis method of the invention to synthesize ZIFs other than a ZIF-7 or a ZIF-9, such as, for example, a ZIF-8 or a ZIF-67, using 2-methylimidazole as ligand, this ligand being associated with zinc in ZIF-8 or with cobalt in ZIF-67.

[0031] Preferably, the zinc or cobalt salt is chosen from zinc or cobalt nitrates and sulfates, advantageously in hydrated form.

[0032] According to the invention, the temperature 0 at which the reaction of step a) is carried out is preferably between 20°C and 80°C, for example 40°C. Stirring is preferably maintained for several hours, for example between 6 hours and 12 hours.

[0033] Advantageously, in step a), the zinc / ligand(s) or cobalt / ligand(s) molar ratio of the aqueous medium is between 1 / 16 and 1 / 25.

[0034] In accordance with the invention, step b) aimed at recovering the precipitate can be carried out by any known solid-liquid separation technique, for example by filtration, in particular under vacuum, or centrifugation, and can be followed, if necessary, by a step aimed at drying the particles, for example in an oven.

[0035] The particles of ZIF obtained at the end of the synthesis process have a volume average size preferably between 1 pm and 40 pm and, better still, between 10 pm and 25 pm.

[0036] In this regard, it is specified that "size" means the diameter of the particles in the case where they are perfect spheres, or the diameter of circles which would have the same surface area as the particles (or equivalent diameter) in the case where they are quasi-spheres.

[0037] As known per se, the size of the particles can be determined by light diffraction granulometry, for example using a laser granulometer such as that marketed under the reference Mastersizer™ 3000 by Malvern Panalytical, or by morphogranulometry, for example using the morphogranulometer marketed under the reference Morphologi™ G3, also by Malvern Panalytical, or even using a scanning electron microscope (SEM) and image processing software.

[0038] It has been observed that, thanks to the synthesis process of the invention, the ZIF particles resulting from the same synthesis, that is to say the ZIF particles from the same batch, are advantageously monodisperse.

[0039] The inventors also observed that, surprisingly, the calcination of the particles of a ZIF obtained by the synthesis process of the invention leads to particles of a zinc or cobalt oxide having retained the spherical shape of the ZIF particles.

[0040] Also, the invention also relates to a process for preparing a simple zinc or cobalt oxide in the form of spherical particles, which process comprises the following steps: i) a step of synthesizing a ZIF comprising zinc or cobalt and in the form of spherical particles, by implementing the synthesis method as defined previously; then ii) a step of calcining the ZIF thus obtained.

[0041] The invention also relates to a process for preparing a mixed oxide of zinc or cobalt in the form of spherical particles, which process comprises the following steps: i) a step of synthesizing a ZIF comprising zinc or cobalt and in the form of spherical particles, by implementing the synthesis method as defined previously; then ii) a step of mixing the ZIF thus synthesized with another compound comprising a metallic element other than zinc and cobalt; and iii) a step of calcining the mixture comprising ZIF and the other compound.

[0042] More particularly, in the case of the preparation of a mixed cobalt oxide, the other compound comprising a metallic element other than zinc and cobalt may be LiOH or Li2CO3.

[0043] Preferably, the mixed oxide is a LiCoO2 oxide which, as known per se, can be used for the manufacture of LCO type electrodes for lithium-ion batteries.

[0044] The calcination step (step ii) of the process for preparing a simple oxide and step iii) of the process for preparing a mixed oxide) is advantageously carried out at a temperature between 600°C and 1000°C and this, under an oxidizing atmosphere, typically air.

[0045] Other characteristics and advantages of the invention will emerge from the additional description which follows and which refers to the appended figures.

[0046] It goes without saying that this additional description is given only as an illustration of the subject of the invention and must in no case be interpreted as a limitation of this subject. Brief description of the figures

[0047] [Fig. 1] illustrates the X-ray diffractogram (XRD) of a first ZIF-7-III obtained by the synthesis method of the invention using a zinc nitrate as salt and, for comparison, the theoretical XRD of a ZIF-7-III.

[0048] [Fig.2] is an image taken with a SEM, at a magnification of x3,000, of a particle of the first ZIF-7-III.

[0049] [Fig.3] illustrates the volume granulometric distribution of the first ZIF-7-III; in this figure, the abscissa axis represents the particle diameter (noted D and expressed in pm), while the ordinate axes represent respectively, the percentage of particles (left y-axis) and cumulative percentage of particles (right y-axis).

[0050] [Fig.4] illustrates the DRX of a zinc oxide obtained from the first ZIF-7-III and, for comparison, the theoretical DRX of zinc oxide.

[0051] [Fig.5] is an image taken with a SEM, at a magnification of 10 000, of a particle of zinc oxide obtained from the first ZIF-7-III.

[0052] [Fig.6] is a figure similar to [Fig.l] but for a second ZIF-7-III obtained by the synthesis process of the invention using a zinc sulfate as salt.

[0053] [Fig.7] is an image similar to that of [Fig.2] but for the second ZIF-III.

[0054] [Fig.8] is a figure similar to [Fig.3] but for particles of the second ZIF-7-III.

[0055] [Fig.9] is a figure similar to [Fig.4] but for a zinc oxide obtained from the second ZIF-7-III.

[0056] [Fig. 10] is an image taken with a SEM, at a magnification of x5,500, of a particle of zinc oxide obtained from the second ZIF-7-III.

[0057] [Fig. 11] illustrates the DRX of two ZIF-9-III obtained by the synthesis method of the invention, using as salt a cobalt sulfate for the first and a cobalt nitrate for the second, and, for comparison, the theoretical DRX of a ZIF-9-III.

[0058] [Fig. 12] is an image taken with a SEM, at a magnification of x2,500, of a particle of the first ZIF-9-III.

[0059] [Fig. 13] is an image taken with a SEM, at a magnification of x3,000, of a particle of the second ZIF-9-III.

[0060] [Fig. 14] and [Fig. 15] illustrate the volume particle size distributions of the first and second ZIF-9-III; in these figures, the abscissa axis represents the particle diameter (denoted D and expressed in pm), while the ordinate axes represent, respectively, the percentage of particles (left ordinate axis) and the cumulative percentage of particles (right ordinate axis).

[0061] Detailed description of particular implementation methods

[0062] Example 1: Synthesis of a first _ ZIF -7-III and preparation of a zinc oxide from this ZIF

[0063] A first ZIF-7-III is synthesized by the synthesis method of the invention using zinc nitrate as salt and benzimidazole as ligand.

[0064] To do this, 0.506 g of zinc nitrate hexahydrate are first dissolved in 15 mL of distilled water, then 3.544 g of benzimidazole (i.e. a zinc / benzimidazole molar ratio of 1 / 17) are added.

[0065] The mixture obtained is introduced into a Teflon™ reaction vessel and then heated to 40°C, with stirring, for 12 hours.

[0066] A precipitate is thus formed which is recovered by vacuum filtration, resulting in a powder.

[0067] The powder is then analyzed by DRX and the diffractogram obtained is compared to the theoretical diffractogram of a ZIF-7-III.

[0068] These two diffractograms are illustrated in [Fig.l], the first being noted ZIF-7-III S (for synthesized) and the second ZIF-7-III T (for theoretical).

[0069] As shown in this figure, these two diffractograms exhibit the same characteristic peak at 8.99°, which confirms that the synthesis method of the invention has indeed made it possible to obtain a ZIF-7-III.

[0070] The powder is also observed by SEM. As illustrated by the SEM image in [Fig.2], the results of this observation confirm that the ZIF-7-III synthesized according to the invention is in the form of spherical particles. They further indicate that these particles have a size between 10 qm and 20 qm.

[0071] Finally, as visible in [Fig.3], a volume granulometric analysis of the powder, using the Mastersizer™ laser granulometer (Malvern Panalytical), shows that the average particle diameter is 16.71 qm.

[0072] The powder is then calcined at 850°C for four hours to convert the ZIF-7-III into a zinc oxide, then the resulting product is analyzed by XRD and the diffractogram obtained is compared to the theoretical diffractogram of zinc oxide.

[0073] These two diffractograms are illustrated in [Fig.4], the first being denoted ZnO S and the second ZnO T.

[0074] As shown in this figure, these two diffractograms are identical, which confirms that ZIF-7-III has indeed been converted into zinc oxide by calcination.

[0075] Furthermore, [Fig.5], which illustrates an image taken by SEM of a particle of the zinc oxide obtained, shows that the latter has retained the spherical shape of the ZIF-7-III from which it was obtained.

[0076] Example 2: Synthesis of a second ZIF-7-III and preparation of a zinc oxide from this ZIF

[0077] A second ZIF-7-III is synthesized by the synthesis method of the invention, this time using zinc sulfate heptahydrate as the salt and benzimidazole as the ligand.

[0078] To do this, 0.489 g of zinc sulfate heptahydrate are first dissolved in 15 mL of distilled water, then 3.544 g of benzimidazole (i.e. a zinc / benzimidazole molar ratio of 1 / 17) are added.

[0079] Here too, a precipitate is formed which is recovered by vacuum filtration, allowing a powder to be obtained.

[0080] This powder is then analyzed by DRX and the diffractogram obtained is compared to the theoretical diffractogram of a ZIF-7-III.

[0081] These two diffractograms are illustrated in [Fig.6], which is a figure similar to [Fig.l] but for this second ZIF-7-III.

[0082] This figure shows that the two diffractograms have the same characteristic peak at 8.93°, which confirms, once again, that the synthesis process of the invention has indeed made it possible to obtain a ZIF-7-III.

[0083] The powder is also observed by SEM. As illustrated by the SEM image in [Fig.7], the results of this observation confirm, once again, that the ZIF-7-III synthesized according to the invention is in the form of spherical particles. They further indicate that these particles have a size between 10 pm and 20 pm.

[0084] Furthermore, as shown in [Fig.8], a volume granulometric analysis of the powder, using the Mastersizer™ laser granulometer, shows that the average particle diameter is 15.93 pm.

[0085] The powder is then calcined at 850°C for four hours to convert the ZIF-7-III into a zinc oxide, then the resulting product is analyzed by XRD and the diffractogram obtained is compared to the theoretical diffractogram of zinc oxide ([Fig.9]).

[0086] [Fig.9] shows that the diffractogram of zinc oxide obtained from this second ZIF-7-III is identical to the theoretical diffractogram of zinc oxide, which confirms, once again, that ZIF-7-III has indeed been converted into zinc oxide by calcination.

[0087] [Fig. 10], for its part, illustrates an image taken by SEM of a particle of the zinc oxide obtained and shows that the latter has also retained the spherical shape of the ZIF-7-III from which it was obtained.

[0088] Example 3: Synthesis of two ZIF-9-III and preparation of cobalt oxides from these ZIFs

[0089] This example illustrates the synthesis of two ZIF-9-III by the synthesis method of the invention using benzimidazole as ligand and cobalt sulfate heptahydrate as salt - for the first ZIF-9-III - and cobalt nitrate hexahydrate as salt - for the second ZIF-9-III.

[0090] To do this, for the first ZIF-9-III, 0.478 g of cobalt sulfate heptahydrate are first dissolved in 15 mL of distilled water, then 3.544 g of benzimidazole (i.e. a cobalt / benznidazole molar ratio of 1 / 17) are added.

[0091] For the second ZIF-9-III, 0.495 g of cobalt nitrate hexahydrate are dissolved in 15 mL of distilled water and then 3.544 g of benzimidazole (i.e. a cobalt / benzimidazole molar ratio of 1 / 17) are added.

[0092] At the end of each of these two syntheses, a precipitate is formed which is recovered by vacuum filtration, allowing a powder to be obtained.

[0093] These powders are analyzed by DRX and the diffractograms obtained are compared to the theoretical diffractogram of a ZIF-9-III.

[0094] These diffractograms are illustrated in [Fig.l 1], the first being noted ZIF-9-III T, the second being noted ZIF-9-III S (corresponding to the first ZIF-9-III) and the third being noted ZIF-9-III S' (corresponding to the second ZIF-9-III).

[0095] As shown in this figure, these three diffractograms exhibit the same characteristic peak at 9.04°, which confirms here that the synthesis method of the invention has indeed made it possible to obtain two ZIF-9-IIIs.

[0096] The powders obtained at the end of these two syntheses are also observed by SEM. As illustrated by the SEM images of Figures 12 and 13, the results of these observations confirm that the ZIF-9-III synthesized according to the invention are in the form of spherical particles. They further indicate that these particles have a size between 10 pm and 20 pm.

[0097] Furthermore, as visible in Figures 14 and 15, a volume granulometric analysis of the powders, using the Mastersizer™ laser granulometer, shows that the average diameter of the particles is 25.34 pm (for the first ZIF-9-III - [Fig.14]) and 18.60 pm (for the second ZIF-9-III - [Fig.15]). Reference cited

[0098] Shunsuke Tanaka et al., ACS Oméga 2017, 2, 6737-6445.

Claims

Claims

1. A process for synthesizing a material with a zeolitic imidazolate structure comprising zinc or cobalt and in the form of spherical particles, the process comprising at least the following steps: a) reaction in an aqueous medium, at a temperature of 0 and with stirring, between a zinc or cobalt salt and at least one ligand chosen from imidazole and its derivatives, whereby a precipitate is obtained; and b) recovery of the precipitate; and characterized in that, in step a), the ligand(s) is (are) present in the aqueous medium at a concentration at least equal to its (their) solubility limit in water at temperature 0.

2. Synthesis process according to claim 1, in which the ligand(s) correspond(s) to formula (I) below: [Chem 1] R5 \ R®' X" R® H in which: - R1 and R2 represent, independently of each other, a hydrogen atom, a linear or branched C1 to C4 alkyl group, a halogen atom, an amino group or a nitro group, or R1 and R2 together form a phenyl group optionally substituted one or more times; and - R3 represents a hydrogen atom, a linear or branched C1 to C4 alkyl group, a halogen atom, an amino group or a nitro group.

3. A synthesis process according to claim 2, wherein: - R1 and R2 represent, independently of one another, a hydrogen atom, a methyl group, an ethyl group, a halogen atom, an amino group or a nitro group, or R1 and R2 together form a phenyl group; and - R3 represents a hydrogen atom, a methyl group, an ethyl group, a halogen atom, an amino group or a nitro group

4. A synthesis process according to claim 2 or claim 3, wherein: - R1 and R2 represent a hydrogen atom or R1 and R2 together form a phenyl group; and - R3 represents a hydrogen atom, a methyl group or an ethyl group.

5. A synthesis process according to any one of claims 2 to 4, wherein R1 and R2 together form a phenyl group.

6. A synthesis process according to any one of claims 1 to 5, wherein the ligand(s) correspond(s) to the formula below: [Chem 2]

7. % j / Vv "'N'"" H Synthesis process according to any one of claims 1 to 6, in which the zinc or cobalt salt is chosen from zinc or cobalt nitrates and sulfates.

8. A synthesis process according to any one of claims 1 to 7, wherein the temperature 0 is between 20°C and 80°C.

9. Synthesis process according to any one of claims 1 to 8, in which the particles of the material obtained at the end of step b) have a volume average size of between 1 pm and 40 pm and, better still, of between 10 pm and 25 pm.

10. A process for preparing a simple oxide of zinc or cobalt in the form of spherical particles, the process comprising the following steps: i) a step of synthesizing a material with a zeolitic imidazolate structure comprising zinc or cobalt and in the form of spherical particles, by implementing the synthesis process according to any one of claims 1 to 9; then ii) a step of calcining the material thus obtained.

11. A process for preparing a simple oxide according to claim 10, wherein the calcination step is carried out under an oxidizing atmosphere and at a temperature between 600°C and 1000°C.

12. A process for preparing a mixed oxide of zinc or cobalt in the form of spherical particles, the process comprising the following steps: i) a step of synthesizing a material with a zeolitic imidazolate structure comprising zinc or cobalt and in the form of spherical particles, by implementing the synthesis method according to any one of claims 1 to 9; then ii) a step of mixing the material thus synthesized with another compound comprising a metallic element other than zinc and cobalt; and iii) a step of calcining the mixture comprising the material and the other compound.

13. A process for preparing a mixed oxide according to claim 12, wherein the calcination step is carried out under an oxidizing atmosphere and at a temperature between 600°C and 1000°C.

Citation Information

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