Molecular sieve and method for producing molecular sieve

By employing morphology modifiers in the synthesis of molecular sieves, the process achieves molecular sieves with improved external surface area and acidity, addressing the need for enhanced catalytic performance in hydrocarbon conversion processes.

JP7781231B2Active Publication Date: 2025-12-05EXXONMOBIL TECHNOLOGY & ENGINEERING CO
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Patent Information

Application Number
JP2024145115
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-08-27
Filing Date
2024-08-27
Publication Date
2025-12-05
Estimated Expiration
2039-08-20

AI Technical Summary

Technical Problem

Existing molecular sieves, particularly zeolites, lack improved activity and selectivity, with smaller crystal sizes being desirable to enhance catalytic performance by increasing external surface area and reducing diffusion path lengths.

Method used

A process for synthesizing molecular sieves with framework codes MEI, TON, MRE, MWW, MFS, MOR, FAU, and EMT, involving the use of a morphology modifier L, such as cationic surfactants or sugars, to control crystal size and acidity, resulting in increased external surface area and acidity.

Benefits of technology

The synthesized molecular sieves exhibit enhanced external surface area and acidity, leading to increased activity and selectivity in hydrocarbon conversion reactions.

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Abstract

To provide a process for preparing molecular sieves of framework structure MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, or MSE.SOLUTION: The process includes preparing a synthesis mixture for molecular sieves, wherein the synthesis mixture includes a morphology modifier L selected from the group consisting of cationic surfactants having a quaternary ammonium group comprising at least one hydrocarbyl group having at least 12 carbon atoms, nonionic surfactants, anionic surfactants, sugars and combinations thereof.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a novel method for producing molecular sieve crystals, the molecular sieves produced by this method, and their use as hydrocarbon conversion catalysts. [Background technology]

[0002] Molecular sieve materials, both natural and synthetic, have been demonstrated to be useful as adsorbents and to have catalytic properties for various types of hydrocarbon conversion reactions. Certain molecular sieves are ordered, porous, crystalline materials with a well-defined crystalline structure as determined by X-ray diffraction (XRD). Certain molecular sieves, such as MCM-41, are ordered and produce specific, definable X-ray diffraction patterns, but are not strictly crystalline. Within molecular sieve materials, there are numerous voids that may be interconnected by numerous channels or pores. These voids and pores are uniform in size within a particular molecular sieve material. Because the dimensions of these pores are such that they allow the adsorption of molecules of a certain size but preclude the adsorption of molecules of larger sizes, these materials are known as "molecular sieves" and are utilized in various industrial processes.

[0003] Such molecular sieves, both natural and synthetic, include a wide variety of positive ion-containing crystalline silicates. These silicates can be described as a three-dimensional framework of SiO4 and oxides of Group 13 elements of the periodic table (e.g., AlO4). The tetrahedra are typically corner-shared by oxygen atoms, and the valence of the tetrahedra containing Group 13 elements (e.g., aluminum, gallium, or boron) is charge-balanced by the inclusion of cations, such as protons, alkali metal, or alkaline earth metal cations.

[0004] Molecular sieves that have found application in catalysis include both naturally occurring and synthetic crystalline molecular sieves. Examples of these molecular sieves include large pore zeolites, medium pore size zeolites, and small pore zeolites. These zeolites and their isotypes are described in "Zeolite Structures," Journal of Chemical Engineering, Vol. 1, No. 1, pp. 111-114, 2002, incorporated herein by reference, and in the online database of zeolite structures, http: / / www.iza-structure.org / databases / . Large pore zeolites generally have pore sizes of at least about 6.5-7 angstroms and include LTL, MAZ, FAU, OFF, *BEA, and MOR framework-type zeolites (IUPAC Commission of Zeolite Nomenclature). Examples of large pore zeolites include mazzite, offretite, zeolite L, zeolite Y, zeolite X, omega, and beta. Medium pore size zeolites generally have pore sizes of about 4.5 angstroms to less than about 7 angstroms and include, for example, MFI, MEL, EUO, MTT, MFS, AEL, AFO, HEU, FER, MWW, and TON framework-type zeolites (IUPAC Commission of Zeolite Nomenclature). Examples of medium pore size zeolites include ZSM-5, ZSM-11, ZSM-22, MCM-22, silicalite 1, and silicalite 2. Small pore size zeolites have pore sizes of about 3 angstroms to less than about 5.0 angstroms and include, for example, CHA, ERI, KFI, LEV, SOD, and LTA framework-type zeolites (IUPAC Commission of Zeolite Nomenclature). Examples of small pore zeolites include ZK-4, SAPO-34, SAPO-35, ZK-14, SAPO-42, ZK-21, ZK-22, ZK-5, ZK-20, zeolite A, chabazite, zeolite T, and ALPO-17. [Prior art documents] [Non-patent literature]

[0005] [Non-Patent Document 1] "Atlas of Zeolite Framework Types", edited by Ch. Baerlocher, LBMcCusker, DHOlson, Elsevier, Sixth Revised Edition, 2007 Summary of the Invention [Problem to be solved by the invention]

[0006] While many molecular sieves, particularly zeolites, have been commercially established as adsorbents and catalysts, there is a need for improved molecular sieves, e.g., as catalysts with improved activity and / or selectivity. One aspect that has recently received much attention is the crystal size of the molecular sieve. All other things being equal, molecular sieves with smaller crystal sizes generally have larger external surface areas, which can lead to increased catalytic activity by increasing the rate of adsorption onto the surface of the molecular sieve crystals and / or by reducing the diffusion path length into the crystal's internal pores. By reducing the crystal size of the molecular sieve catalyst, reactions that occur primarily on the external surface of the zeolite, e.g., reactions involving larger reactant molecules that diffuse slowly into the internal pores due to their size, can be promoted.

[0007] U.S. Patent No. 7,482,300 describes the synthesis of ZSM-48 having a silica-to-aluminum ratio of 70:1 to 110:1, along with a method for using such ZSM-48 for catalytic dewaxing. The synthesis method is said to be suitable for forming ZSM-48 crystals with a reduced or minimized content of crystals with needle-like morphology. [Means for solving the problem]

[0008] The present invention relates to a process for preparing crystals of molecular sieves having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT and MSE, comprising the steps of: combining at least a source of a tetravalent element X, a morphology modifier L, and water to form a synthesis mixture; heating the synthesis mixture under crystallization conditions for a time period of about 1 hour to 100 days to form molecular sieve crystals having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE; recovering said crystals of molecular sieve from the synthesis mixture; wherein X=Si, and the morphology modifier L is selected from the group consisting of a cationic surfactant having a quaternary ammonium group containing at least one alkyl having at least 12 carbon atoms, a nonionic surfactant, an anionic surfactant, a sugar, and combinations thereof, and when a structure directing agent Q is present, L is different from the structure directing agent Q and is present in addition to the structure directing agent Q.

[0009] Optionally, the synthesis mixture also includes a source of hydroxide ions. Optionally, the synthesis mixture also includes a structure directing agent Q. Optionally, the synthesis mixture also includes a source of trivalent element Y. Optionally, the synthesis mixture also includes a source of pentavalent element Z. Optionally, the synthesis mixture also includes a source of halide ions W. - Optionally, the synthesis mixture also includes a source of alkali metal ions M + and / or a source of alkaline earth metal cation M 2+ Optionally, the synthetic mixture also includes one or more other components.

[0010] The present inventors have discovered that by carrying out the synthesis of a molecular sieve in the presence of morphology modifier L, it is possible to affect crystal growth so that the molecular sieve crystals have modified crystal size and / or modified acidity compared to the same molecular sieve crystals prepared in the absence of morphology modifier L. This allows for the production of molecular sieve crystals with novel and desirable properties. The molecular sieve crystals produced by the process of the present invention may be smaller than the same molecular sieve crystals prepared by the same process but in the absence of morphology modifier L. While not wishing to be bound by theory, the present inventors believe that the presence of morphology modifier L may alter the distribution of trivalent elements, such as Al, in the crystal and / or change the manner in which the crystal terminates to enhance access to the trivalent elements. The molecular sieve crystals produced by the process of the present invention may have increased surface area, particularly external surface area, compared to crystals of the same molecular sieve prepared by the same process but in the absence of morphology modifier L. The molecular sieve crystals produced by the process of the present invention may have a higher external surface acidity, e.g., as measured by collidine adsorption, than crystals of the same molecular sieve prepared by the same process but in the absence of morphology modifier L. The reduced crystal size and / or increased external surface area and / or increased external acidity can lead to increased activity and / or increased selectivity of the molecular sieve when used, for example, as a component in a catalyst in hydrocarbon conversion reactions.

[0011] The process of the present invention has been found to produce zeolites having crystals with increased external surface area and / or increased surface acidity compared to the same zeolites prepared under identical conditions except in the absence of morphology modifier L.

[0012] In another aspect, the present invention provides a molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, wherein the molecular sieve has a ratio of external surface area to internal surface area of ​​1.2 or greater and / or a ratio of external acidity, as measured by collidine adsorption, to internal acidity, as measured by ammonia adsorption, of greater than 1.5.

[0013] The present invention also provides the molecular sieve of the present invention in its as-prepared form. The present invention also provides the molecular sieve of the present invention in its calcined form.

[0014] The present invention further provides a catalyst comprising the molecular sieve of the present invention.

[0015] The present invention further provides a hydrocarbon conversion process comprising contacting a hydrocarbon feedstock with the catalyst of the present invention. In one embodiment, the hydrocarbon conversion process is a dewaxing process. In another embodiment, the hydrocarbon conversion process is a process for aromatic alkylation. [Brief explanation of the drawings]

[0016] [Figure 1] 1 shows the olefin yield versus amount of methanol exposure for various ZSM-48 catalysts. [Figure 2] 1 shows the paraffin yield versus the amount of methanol exposure for various ZSM-48 catalysts. [Figure 3] 1 shows the combined olefin and aromatic yield versus amount of methanol exposure for various ZSM-48 catalysts. [Figure 4] 1 shows the combined yield of olefins, aromatics, and unknowns versus the amount of methanol exposure for various ZSM-48 catalysts. [Figure 5] 1 shows the olefin yield versus amount of methanol exposure for ZSM-48 catalysts synthesized with various zeolite growth modifiers. [Figure 6]1 shows the paraffin yield versus the amount of methanol exposure for ZSM-48 catalysts synthesized with various zeolite growth modifiers. [Figure 7] 1 shows the combined olefin and aromatic yield versus the amount of methanol exposure for ZSM-48 catalysts synthesized with various zeolite growth modifiers. [Figure 8] 1 shows the combined yield of olefins, aromatics, and unknowns versus the amount of methanol exposure for ZSM-48 catalysts synthesized with various zeolite growth modifiers. DETAILED DESCRIPTION OF THE INVENTION

[0017] The process for producing a molecular sieve according to the present invention involves preparing a synthesis mixture according to conventional techniques, except that the synthesis mixture also contains a morphology modifier L. While not wishing to be bound by any theory, it is believed that the morphology modifier L may bind to or otherwise interact with the growing surfaces of crystallites within the synthesis mixture, thereby affecting the morphology, including size, aspect ratio, and aggregation / agglomeration, of the final product crystals. Depending on the nature and concentration of the morphology modifier L used, the product crystals may be smaller or larger than those otherwise obtained using the same synthesis mixture without the morphology modifier L under the same conditions. The morphology modifier L may also affect the distribution of any trivalent elements present and, therefore, the surface acidity of the molecular sieve.

[0018] synthetic mixture As described above, the synthesis mixture can be prepared according to conventional methods. The morphology modifier L can be included in the synthesis mixture at any time during crystallization, but is preferably combined with the other components before crystal nucleation or crystallization begins. Optionally, the morphology modifier L is combined with the other components of the synthesis mixture before the source of tetravalent element X is added. For example, to form a mixture, water, a source of hydroxide ions (if present), a structure directing agent (if present), a source of trivalent element Y (if present), a seed (if present), and any other components can be combined in any order, and then the source of the tetravalent element is combined with the mixture.

[0019] In the molecular sieve of the present invention, the tetravalent element X is Si. Suitable sources of silicon (Si) that can be used to prepare the synthesis mixture include silica; colloidal suspensions of silica, such as Ludox®; precipitated silica; alkali metal silicates such as potassium silicate and sodium silicate; tetraalkyl orthosilicate; and fumed silica such as Aerosil and Cabosil.

[0020] The synthesis mixture also optionally contains a source of hydroxide ions; for example, the synthesis mixture may contain an alkali metal hydroxide, such as sodium hydroxide or potassium hydroxide. Hydroxide can also be present as the anion of any charged (organic) structure directing agent or modifier, which may be present through the use of sodium or potassium aluminate as the source of Y or through the use of sodium or potassium silicate as the source of X. Sodium or potassium salts of aluminates and silicates are preferred as the anion of alkali metal M + It can also be used as a source of

[0021] Optionally, the trivalent element Y is selected from the group consisting of Al, B, Fe, and Ga, and mixtures thereof. Optionally, Y is selected from B, Ga, or Al, or mixtures thereof. Preferably, the trivalent element Y is Al. Suitable sources of the trivalent element Y that can be used to prepare the synthesis mixture depend on the element Y selected (e.g., boron, aluminum, iron, and gallium). In embodiments where Y is boron, sources of boron include boric acid, borax, and potassium tetraborate. Optionally, the trivalent element Y is aluminum, and sources of aluminum include aluminum sulfate, aluminum nitrate, aluminum hydroxide, hydrated aluminas such as boehmite, gibbsite, and pseudoboehmite, and mixtures thereof. Other aluminum sources include, but are not limited to, other water-soluble aluminum salts, alkali metal aluminate solids or liquids, aluminum alkoxides such as aluminum isopropoxide, or aluminum metal, such as aluminum in chip or powder form.

[0022] Besides or in addition to the aforementioned sources of Si and Al, sources containing both elements Si and Al can also be used as sources of Si and Al. Examples of suitable sources containing elements Si and Al include amorphous silica-alumina gel or dried silica-alumina powder, silica-alumina, clays such as kaolin, metakaolin, and zeolites, particularly aluminosilicates such as synthetic faujasites and ultrastable faujasites, e.g., USY, Beta, or other large- to medium-pore zeolites. Optionally, the pentavalent element Z (if present) is selected from the group consisting of P and As and mixtures thereof. Preferably, Z, when present, is P. Suitable sources of phosphorus include one or more sources selected from the group consisting of phosphoric acid; organic phosphates such as triethyl phosphate, tetraethylammonium phosphate, and the like; aluminophosphates; phosphates such as alkali metal phosphates, dihydrogen phosphate, hydrogen phosphate, and pyrophosphate, and mixtures thereof.

[0023] Optionally, a halide ion W - When present, is selected from the group consisting of chloride, bromide, fluoride, and mixtures thereof. The source of halide ions may be any compound capable of releasing halide ions in the molecular sieve synthesis mixture. Non-limiting examples of sources of halide ions include salts containing one or more halide ions, such as metal halides, preferably wherein the metal is sodium, potassium, calcium, magnesium, strontium, or barium. Suitable sources of fluoride ions (F-) include HF; ammonium fluoride or tetraalkylammonium fluoride, such as tetramethylammonium fluoride or tetraethylammonium fluoride; fluoride-containing salts, such as NaF and KF; fluoride compounds with elements X and Y, such as AlF3 and SiF6 salts; and / or compounds in which fluoride ions are present as counterions to the cationic structure directing agent (Q). If the synthesis mixture does not include a source of hydroxide ions, the synthesis mixture preferably contains a source of fluoride ions, which can also act as a mineralizer. A convenient source of halide ions is HF.

[0024] Optionally, the synthesis mixture contains an alkali metal cation M + and / or alkaline earth metal cation M 2+ If present, the alkali metal cation M + is preferably Li + , Na + , K. + , Rb + and Cs + and mixtures thereof. + Suitable sources of K may include sodium salts such as NaCl, NaBr, NaF, or NaNO; sodium hydroxide, sodium aluminate, and mixtures thereof. + Suitable sources of include potassium hydroxide, potassium halides such as KCl, KF or NaBr, potassium nitrate and mixtures thereof. When present, the alkaline earth metal cation is preferably Mg2+ , Ca 2+ , Sr 2+ , Ba 2+ and mixtures thereof.

[0025] Structure-directing agents (Q) are compounds known to influence the crystallization of the molecular sieve framework to promote the formation of a particular desired molecular sieve. For example, tetrapropylammonium hydroxide or bromide is often used to produce ZSM-5. In contrast, the role of morphology modifiers (L), as discussed above, is to influence crystallization by altering the molecular sieve's crystal size, external surface area, and / or external acidity, rather than affecting the identity of the molecular sieve. If the molecular sieve requires the use of structure-directing agent Q, the synthesis mixture will also contain an effective concentration of the structure-directing agent. In that case, morphology modifier L will be different from and in addition to structure-directing agent Q. ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, and MCM-68 require the use of a structure-directing agent. The nature of the structure-directing agent Q will depend on the desired framework type. Suitable structure-directing agents are known to those skilled in the art. The structure directing agent Q can be present in any suitable form, for example, as a halide such as a chloride or bromide, or as a hydroxide, or as a nitrate. For example, the structure directing agent Q will generally be an organic structure directing agent, such as an amine, for example, propylamine, pyrrolidine, or pyridine, or a nitrogen-containing cation, for example, a quaternary ammonium cation. Optionally, the ammonium cation does not contain any alkyl chains with more than 10 carbon atoms. For example, the structure directing agent Q can optionally be N,N,N-trimethyl-1-adamantammonium hydroxide (TMAdA) when it is desired to produce a zeolite of framework type CHA. Additional structure directing agents Q and related zeolites are listed below: ZSM-48: hexamethonium dichloride (diquat-6-Cl2), hexamethonium dihydroxide (diquat-6-OH2), pentamethonium dichloride (diquat-5-Cl2), pentamethonium dihydroxide (diquat-5-OH2), octylamine, 1,6-diaminohexane, pyrrolidine, propylamine / tetramethylammonium hydroxide, bis(N-methylpyridyl)ethylinium, diethylenetriamine, triethylenetetraamine, tetraethylenepentamine, 1,4,8,11-tetraaza-undecane, 1,5,9,13-tetraaza-undecane, 1,5,8,12-tetraaza-undecane, 1,3-diaminopropane, trimethylamine; ZSM-18: 2,3,4,5,6,7,8,9-octahydro-2,2,5,5,8,8-hexamethyl-1 1H-benzo[1,2-c:3,4-c':5,6-c"]tripyrrolium hydroxide and chloride, butamesonium hydroxide / tetramethylammonium hydroxide; ZSM-22: 1-aminobutane, diethylamine, ethylenediamine, 1,3-diaminopropane, 1,6-diaminohexane, 1,4,8,11-tetra-aza-undecane, 1,5,9,13-tetra-aza-undecane, 1,5,8,12-tetra-aza-undecane, N-ethylpyridinium; ZSM-57: hexaethyl-diquat-5 dichloride, hexaethyl-diquat-5 dihydroxide; Mordenite: tetraethylammonium hydroxide, tetraethylammonium bromide, benzyltrimethylammonium chloride, benzyltrimethylammonium hydroxide, N-ethylpyridinium bromide, N-ethylpyridinium hydroxide, trioctylamine, alkylphenol / alkylsulfonate; MWW (including MCM-49, MCM-22, MCM-56): hexamethyleneimine, aniline, piperidine, diethyldimethylammonium hydroxide, ethyltrimethylammonium hydroxide, choline chloride, choline hydroxide, N-N,N',N'-tetramethyl-1,6-diaminohexane, triethylamine, hexamethonium dihydroxide, triethanolamine; Hexagonal faujasite (EMT): methyltriethylammonium hydroxide, tetraethylammonium hydroxide, 18-crown-6; Cubic faujasite (FAU): 15-crown-5; MCM-68: N,N,N',N'-tetraethylbicyclo[2.2.2]-oct-7-ene-2R,3S:5R,6S-dipyrrolidinium diiodide, N,N,N',N'-tetraethylbicyclo[2.2.2]-oct-7-ene-2R,3S:5R,6S-dipyrrolidinium dihydroxide, N,N-dimethyl-4-cyclohexylpiperazinium hydroxide, 1-butyl-1-methylpiperidinium hydroxide.

[0026] Those structure directing agents Q, if present in the synthesis mixture to promote the formation of the relevant molecular sieve, are not considered to be morphology modifiers L according to the present invention.

[0027] For embodiments related to the synthesis of ZSM-48 (or other MRE framework zeolites listed in the Zeolite Database maintained by the International Zeolite Association), any convenient structure-directing agent suitable for use in synthesis mixtures for the formation of ZSM-48 can be used as the primary structure-directing agent. One option can be to use a diquaternary alkylammonium salt (diquat-6) having a chain of six carbon atoms between the ammonium ions. Another option can be to use a diquaternary alkylammonium salt (diquat-5) having a chain of five carbon atoms between the ammonium ions. While diquat-5 and diquat-6 are both known to be suitable as structure-directing agents for the formation of ZSM-48, the resulting ZSM-48 crystals produced by diquat-5 and diquat-6 typically differ.

[0028] The synthesis mixture can have any composition that is suitable for preparing the desired zeolite framework. The following ranges are given as examples of desirable and preferred ranges for each pair of components in the synthesis mixture. Advantageously, the molar ratio of XO2:Y2O3 in the synthesis mixture can range from 2 to infinity (i.e., no Y), in particular from 5 to 500, preferably from 5 to 200. Optionally, in the synthesis mixture, the molar ratio of structure directing agent Q:(XO2 + Y2O3 + Z2O5) ranges from 0.01 to 1.0, preferably from 0.02 to 0.9, optionally from 0.04 to 0.5. Optionally, in the synthesis mixture, the molar ratio of H2O:(XO2 + Y2O3 + Z2O5) ranges from 5 to 100. Optionally, in the synthesis mixture, M + The molar ratio of (XO2 + Y2O3 + Z2O5) is in the range of 0 to 1.2, preferably 0 to 1.0. Optionally, in the synthesis mixture, OH - The molar ratio of (XO2 + Y2O3 + Z2O5) is in the range of 0.05 to 1.1, preferably 0.10 to 1.0. Optionally, in the synthesis mixture, a halide -The molar ratio of (XO2 + Y2O3 + Z2O5) is in the range of 0 to 1, preferably 0 to 0.5. The reaction mixture may have, for example, a composition expressed in molar ratios as shown in Table 1 below.

[0029] [Table 1]

[0030] Water may be added in any amount suitable for dissolving the components and preparing the desired molecular sieve. The synthesis mixture contains an aqueous liquid phase and may also contain some insoluble solid components as well as crystallized molecular sieves. The liquid present in the synthesis mixture is substantially single-phase, typically an aqueous solution, gel phase, slurry, paste, or wet powder. The liquid present in the synthesis mixture typically contains less than 5 wt. %, optionally less than 2 wt. %, and optionally 1 wt. % of water-insoluble liquid components. In particular, the liquid present in the synthesis mixture is not an emulsion or microemulsion. The synthesis may be carried out without or with the addition of nucleating seeds. If nucleating seeds are added to the synthesis mixture, the seeds are suitably present in an amount of about 0.01 to 10.0 wt. % based on the synthesis mixture, for example, about 0.01 to 2.0 wt. % of the synthesis mixture. The seeds can be any suitable zeolite, for example, a zeolite having the same or a different framework as the resulting zeolite.

[0031] Morphology Modifier L The morphology modifier L is selected from the group consisting of cationic surfactants having a quaternary ammonium group containing at least one hydrocarbyl, preferably alkyl, group having at least 12 carbon atoms, nonionic surfactants, anionic surfactants, sugars, and combinations thereof. The morphology modifier may be added to the synthesis mixture at any time before crystallization is complete. Optionally, the morphology modifier L is added to other components of the synthesis mixture before crystal nucleation or crystallization begins. Mixtures of two or more morphology modifiers L may also be used, and such processes are within the scope of the present invention.

[0032] The morphology modifier may be a sugar. The sugar may be a monosaccharide or a disaccharide. Suitable monosaccharides include glucose, fructose, and galactose, particularly fructose. Suitable disaccharides include saccharose, maltose, and lactose. The sugar may be a pentose. Alternatively, the sugar may be a hexose.

[0033] The morphology modifier L may be a cationic surfactant having a quaternary ammonium group containing at least one hydrocarbyl having at least 12 carbon atoms. The at least one hydrocarbyl having at least 12 carbon atoms is covalently bonded to the nitrogen atom of the quaternary ammonium group and may be branched or linear, preferably linear. The at least one hydrocarbyl optionally has at least 14 carbon atoms, optionally at least 16 carbon atoms, or optionally at least 18 carbon atoms. Optionally, the at least one hydrocarbyl has 30 or fewer carbon atoms. The alkyl may be saturated or unsaturated, preferably saturated. The cationic surfactant may contain two hydrocarbyls, each having at least 12 carbon atoms, bonded to the nitrogen atom of the quaternary ammonium group. Optionally, other substituents on the nitrogen atom of the quaternary ammonium group are alkyls having 1 to 8, optionally 1 to 4, carbon atoms, such as alkyls having methyl groups. Each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen, and halides.

[0034] The morphology modifier L may be a cationic surfactant having a single quaternary ammonium group containing at least one alkyl having at least 12 carbon atoms. The at least one alkyl having at least 12 carbon atoms is covalently bonded to the nitrogen atom of the quaternary ammonium and may be branched or linear, preferably linear. Optionally, the at least one alkyl has at least 14 carbon atoms, optionally at least 16 carbon atoms, or optionally at least 18 carbon atoms. Optionally, the at least one alkyl has 30 or fewer carbon atoms. The alkyl may be saturated or unsaturated, preferably saturated. The cationic surfactant may contain two alkyls, each having at least 12 carbon atoms, bonded to the nitrogen atom of the quaternary ammonium group. Optionally, the other substituent on the nitrogen atom of the quaternary ammonium group is an alkyl having 1 to 8, optionally 1 to 4, carbon atoms, such as an alkyl having a methyl group.

[0035] A cationic surfactant may contain two or more such quaternary ammonium groups, or alternatively, a cationic surfactant may contain only a single (i.e., one or less) quaternary ammonium group.

[0036] The cationic surfactant may contain any suitable anion as a counterion, such as hydroxide or halide. OH - , F - , Cl - and Br - is a preferred counterion.

[0037] The morphology modifier L optionally has the formula (1): (R 1 ) q (R 2 ) 4-q N + (X n- ) 1 / n (1) (Wherein, each R 1are independently C1-C6, optionally C1-C4 hydrocarbyl groups which may be linear or branched, saturated or unsaturated, preferably linear and saturated, and each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen and halides; R 2 C may be branched or linear, saturated or unsaturated, preferably linear and saturated 12 ~C 30 , optionally C 14 ~C 30 , optionally C 16 ~C 30 , optionally C 18 ~C 30 hydrocarbyls, and each hydrocarbyl may contain one or more aromatic or aliphatic cyclic groups and / or optionally one or more heteroatoms selected from oxygen, sulfur, nitrogen, and halides; q is 1 or 2, preferably 1; X n- is an anion of valence n, where n is preferably 1, and X n- is optionally a hydroxy anion or a halide anion, in particular a halide anion selected from fluoride, chloride or bromide, and R 1 is optionally methyl).

[0038] Preferably, each R 1 are independently C1-C6, optionally C1-C4 alkyl groups which may be linear or branched, saturated or unsaturated, preferably linear and saturated. 2 C may be branched or linear, saturated or unsaturated, preferably linear and saturated 12 ~C 30 , optionally C 14 ~C 30 , optionally C 16 ~C 30 , optionally C 18 ~C 30 Alkyl group is.

[0039] Optionally, the morphology modifier L is a compound represented by formula (2): (R 3 )3R 4 N + A - (2) (In the formula, A - is an anion, preferably a hydroxide or halide, and preferably OH - , Cl - and Br - are selected from, and each R 3 are independently selected from hydrogen and C1-C4 alkyl, preferably methyl, and R 4 C may be branched or linear, saturated or unsaturated, optionally containing one or more cyclic groups, and is preferably saturated and linear. 12 ~C 30 Alkyl groups, preferably C 14 ~C 20 It is a cationic surfactant having an alkyl group.

[0040] Suitable cationic surfactants include dodecyltrimethylammonium chloride, dodecyltrimethylammonium bromide, hexadecyltrimethylammonium chloride, hexadecyltrimethylammonium bromide, octadecyltrimethylammonium chloride, octadecyltrimethylammonium bromide, hexadecylethyldimethylammonium chloride, and hexadecylethyldimethylammonium bromide.

[0041] The morphology modifier L may be a nonionic surfactant. Optionally, the nonionic surfactant is selected from the group consisting of alkyl ethoxylates, alkyl propoxylates, alkyl phenol ethoxylates, alkyl phenol propoxylates, fatty acid ethoxylates, fatty acid propoxylates, ethoxylated amines, propoxylated amines, ethoxylated amides, propoxylated amides, block copolymers of ethylene oxide and propylene oxide, block copolymers of ethylene oxide and butylene oxide, and fatty acid esters of polyhydric compounds such as glycerol and sorbitan. For example, the morphology modifier L may be PEG-dodecyl ether or PEG oleyl ether. The morphology modifier L may be an anionic surfactant. The anionic surfactant comprises an anionic group, such as a sulfate, sulfonate, phosphate, or carboxylate group, and an alkyl group having at least 8 carbon atoms, optionally at least 10 carbon atoms, optionally at least 12 carbon atoms, for example, 14 to 30 carbon atoms. Optionally, the anionic surfactant is an alkyl sulfate, alkyl sulfonate, alkyl phosphate, or alkyl carboxylate. Optionally, the anionic surfactant is an alkyl sulfate, such as sodium lauryl sulfate.

[0042] The molar ratio L:X in the synthesis mixture optionally ranges from 0.0001 to 0.10, optionally 0.0001 to 0.08, optionally 0.0001 to 0.05, optionally 0.0001 to 0.03, and optionally 0.001 to 0.025. At lower ratios, the concentration of morphology modifier L is insufficient, which can cause significant changes in the crystal morphology, while at higher ratios, the concentration of morphology modifier L is too high, which can hinder crystallization, significantly reducing the crystallization rate, or causing the formation of a different molecular sieve framework instead of the desired one.

[0043] The morphology modifier L is optionally present in the synthesis mixture at a concentration ranging from 0.01 to 10 wt. %, optionally from 0.1 to 5 wt. %, optionally from 0.2 to 3 wt. %, preferably from 0.5 to 2 wt. %, based on the weight of the synthesis mixture.

[0044] Crystallization and Recovery Crystallization can be carried out under static or stirred conditions in suitable reactor vessels, such as polypropylene jars or Teflon® bottles, acid digestion vessels, Teflon®-coated or stainless steel autoclaves, plow shear mixers, or reaction kettles. Crystallization is typically carried out at temperatures of about 80°C to about 250°C, optionally 100°C to about 200°C, and optionally about 150°C to about 170°C, for a time sufficient for crystallization to occur at the temperature used, e.g., about 1 day to about 100 days, particularly 1 to 50 days, e.g., about 2 days to about 40 days. The synthesized crystals are then separated from the mother liquor and recovered by any convenient method, such as filtration or centrifugation. The crystals are then dried, for example, under ambient conditions, washed with a low-boiling solvent such as acetone, methanol, ethanol, or propanol, or microwave-dried, or oven-dried at temperatures up to 150°C.

[0045] Firing The process optionally includes calcining the crystals recovered in step c) to obtain a calcined form of the molecular sieve. Calcination conditions will be selected to at least partially remove any remaining organic residues, such as residual morphology modifier L and / or structure directing agent Q (if present), that are typically trapped in the pores of the molecular sieve in its "as-produced" form.

[0046] The calcination step typically involves heating the zeolite at a temperature of at least about 200°C, preferably at least about 300°C, and more preferably at least about 370°C, for at least 1 minute, generally not more than 20 hours. Although subatmospheric pressures can be utilized for the heat treatment, atmospheric pressure is usually preferred for reasons of convenience. The heat treatment can be carried out at temperatures up to about 925°C. For example, the heat treatment can be carried out in the presence of an oxygen-containing gas, e.g., in air, at temperatures of 400-600°C, e.g., 500-550°C.

[0047] The molecular sieve may be subjected to an ion exchange treatment with aqueous ammonium salts, such as ammonium nitrate, ammonium chloride, and ammonium acetate, to remove residual alkali metal and / or alkaline earth metal cations and exchange them with protons, thereby producing the acid form of the molecular sieve. To the desired extent, the original cations of the as-synthesized material, such as alkali metal cations, may be replaced by other cations through ion exchange. Preferred exchange cations include metal ions, hydrogen ions, hydrogen precursors, such as ammonium ions, and mixtures thereof. Particularly preferred cations may be those that tailor the catalytic activity to specific hydrocarbon conversion reactions. These include hydrogen, rare earth elements and metals from Groups IIA, IIIA, IVA, VA, IB, IIB, IIIB, IVB, VB, VIB, VIIB, and VIII of the Periodic Table of the Elements. The ion exchange step may be performed after drying the as-prepared molecular sieve. The ion exchange step may be carried out before or after the calcination step.

[0048] The molecular sieve may be subjected to other treatments, such as steaming and / or washing with solvents, which are well known to those skilled in the art and are carried out to modify the properties of the molecular sieve as desired.

[0049] molecular sieve The molecular sieves of the present invention and molecular sieves produced by the process of the present invention have a framework structure code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE. Optionally, the molecular sieve is a zeolite selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, cubic faujasite, hexagonal faujasite, and MCM-68. Framework Type and Pore Size Dimension The details are shown in Table 2 below.

[0050] [Table 2]

[0051] Optionally, the molecular sieve is selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, cubic faujasite, and hexagonal faujasite. Optionally, the molecular sieve is selected from the group consisting of ZSM-18 and ZSM-48. Optionally, the molecular sieve is selected from the group consisting of MCM-49, ZSM-57, and mordenite. Optionally, the molecular sieve is selected from the group consisting of cubic faujasite, hexagonal faujasite, and MCM-68. ZSM-48 and MCM-49 are particularly preferred molecular sieves.

[0052] ZSM-12, ZSM-23, ZSM-50, zeolite beta, ZSM-10, chabazite and zeolite A are all additional molecular sieves that may be produced according to the process of the present invention, and thus the molecular sieve of the present invention may, in another embodiment, be selected from the group consisting of ZSM-12, ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, cubic faujasite, hexagonal faujasite, ZSM-23, ZSM-50, zeolite beta, ZSM-10, chabazite and zeolite A.

[0053] The molecular sieve produced by the process of the present invention may have an increased surface area compared to the same molecular sieve produced in the absence of morphology modifier L. Optionally, the molecular sieve produced by the process of the present invention has an external surface area that is at least 1.1 times, and optionally at least 1.2 times, the external surface area of ​​the same molecular sieve produced in the absence of morphology modifier L.

[0054] The molecular sieve produced by the process of the present invention may have increased external acidity, as measured by collidine adsorption, compared to the same molecular sieve produced in the absence of morphology modifier L. Optionally, the molecular sieve produced by the process of the present invention has an external acidity that is at least 1.1 times, and optionally at least 1.2 times, the external acidity of the same molecular sieve produced in the absence of morphology modifier L.

[0055] Alternatively, the molecular sieve produced by the process of the present invention has a reduced external surface area and / or reduced external acidity compared to the same molecular sieve produced in the absence of morphology modifier L.

[0056] By selecting the appropriate morphology modifier L and the appropriate concentration of that morphology modifier, one skilled in the art can prepare molecular sieves having a range of external surface areas, external acidities and / or crystallite sizes.

[0057] In some embodiments, for molecular sieves with one-dimensional pore channel structure, such as MRE (ZSM-48), a small crystal size may be beneficial for improving catalyst life. Without being bound by any particular theory, it is believed that for one-dimensional pore channel molecular sieves, having a shorter crystal length in the direction of the pore channels can reduce or minimize the rate of coke formation. This allows for the processing of larger amounts of feed, such as larger amounts of oxygenate loss, under oxygenate conversion conditions while maintaining activity. As used herein, catalyst exposure life refers to the amount of oxygenate that a catalyst can process under oxygenate conversion conditions before the catalyst's activity for conversion becomes substantially zero.

[0058] The molecular sieves of the present invention preferably have a ratio of external surface area to internal surface area greater than 1.20 and / or a ratio of external acidity, as measured by collidine adsorption, to internal acidity, as measured by ammonia adsorption, greater than 1.50.

[0059] In some embodiments, molecular sieves produced by the processes described herein, either in calcined or as-produced form, can form agglomerates of small crystals, which can have crystal sizes ranging from 0.01 to 1 μm. These small crystals can be desirable because they generally lead to higher activity. Small crystals can mean a larger surface area, which leads to a greater number of active catalytic sites for a given amount of catalyst.

[0060] Optionally, the zeolite contains Si and Al and has a SiO2:Al2O3 molar ratio greater than 2:1, optionally greater than 5:1, optionally greater than 10:1, optionally greater than 30:1, optionally greater than 100:1, and optionally greater than 150:1. The SiO2:Al2O3 molar ratio is optionally less than 500, optionally less than 300, or optionally less than 200. The presence of aluminum in the framework structure provides acidic sites to the catalyst, but it is also associated with reduced thermal stability of the zeolite. Many industrial organic feedstock conversion processes are carried out at temperatures requiring the use of zeolite supports having a SiO2:Al2O3 molar ratio greater than 6:1, or even greater than 10:1.

[0061] The molecular sieve has a crystallinity of at least 80%, optionally at least 90%, preferably at least 95%, and most preferably at least 98%. In one embodiment, the molecular sieve is an essentially pure crystalline material. Crystallinity can be calculated by X-ray diffraction (XRD).

[0062] In one embodiment, the molecular sieve is in its as-prepared form and optionally contains a structure directing agent Q within its pores.

[0063] In another embodiment, the molecular sieve does not include any structure directing agent Q. For example, the molecular sieve may be one that can be synthesized without any structure directing agent Q.

[0064] The molecular sieve may be in a calcined form. The molecular sieve crystals can be "as-synthesized" crystals that still contain the organic template, or the crystals can be calcined crystals, such as K-type molecular sieve crystals or Na-type molecular sieve crystals, or the crystals can be calcined, ion-exchanged crystals, such as H-type molecular sieve crystals.

[0065] The calcined acid form of the molecular sieve of the present invention preferably has an external acidity at least 1.10 times, more preferably at least 1.30 times, and in some cases at least 1.50 times, that of a molecular sieve produced using an equivalent process except that the synthesis mixture does not contain any morphology modifier. External acidity can be measured by collidine adsorption.

[0066] The calcined acid form molecular sieves of the present invention have an external surface area that is at least 1.10 times, more preferably at least 1.20 times, and in some cases at least 1.30 times, that of molecular sieves produced using an equivalent process except that the synthesis mixture does not contain any morphology modifier. The external surface area may be measured by BET.

[0067] The molecular sieve of the present invention in its calcined form has a ratio of external surface area to internal surface area greater than 1.20 and / or a ratio of external acidity, as measured by collidine adsorption, to internal acidity, as measured by ammonia adsorption, greater than 1.50.

[0068] The molecular sieves of the present invention or those produced by the process of the present invention can be used as adsorbents or catalysts to catalyze a wide variety of organic compound conversion processes, including many currently of commercial / industrial importance. Examples of preferred chemical conversion processes that can be effectively catalyzed by the zeolites of the present invention or those produced by the process of the present invention, alone or in combination with one or more other catalytically active materials, including other crystalline catalysts, include those requiring catalysts with acid activity or hydrotreating activity. Examples of organic conversion processes that can be catalyzed by the zeolites of the present invention or those produced by the process of the present invention include cracking, hydrocracking, isomerization, polymerization, reforming, hydrogenation, dehydrogenation, dewaxing, hydrodesorption, adsorption, alkylation, transalkylation, dealkylation, hydrodecyclization, disproportionation, oligomerization, dehydrocyclization, and combinations thereof. The conversion of hydrocarbon feedstocks can be carried out in any convenient mode, for example, in a fluidized, ebullated, moving, or fixed-bed reactor, depending on the type of process required.

[0069] Once synthesized, the molecular sieve can be formulated into a catalyst composition by combining it with other materials, such as binder and / or matrix materials, that provide additional hardness or catalytic activity to the finished catalyst. These other materials can be inert or catalytically active materials.

[0070] In particular, it may be desirable to incorporate the molecular sieve of the present invention or a molecular sieve produced by the process of the present invention with another material that is resistant to the temperatures and other conditions utilized in organic conversion processes. Such materials include synthetic or natural zeolites, and inorganic materials such as clays, silica and / or metal oxides such as alumina, yttria, zirconium oxide, gallium oxide, zinc oxide and mixtures thereof. The metal oxides can be of natural origin or in the form of gelatinous precipitates or gels containing mixtures of silica and metal oxides. Natural clays that can be used include sub-bentonite, and kaolin generally known as Dixie, McNamee, Georgia and Florida clays, or montmorillonite and kaolin groups containing other materials whose major mineral components are halloysite, kaolinite, dickite, nacrite or anauxite. Such clays can be used in the state of the as-mined raw materials or after being subjected to calcination, acid treatment or chemical modification. These binder materials are resistant to temperatures and other conditions, such as mechanical friction occurring in various hydrocarbon conversion processes. Thus, the molecular sieve of the present invention or a molecular sieve produced by the process of the present invention may be used in the form of an extrudate with a binder. They are typically bound by forming tablets, spheres or extrudates. The extrudates are usually formed by extruding the molecular sieve, optionally in the presence of a binder, and then dried, and the resulting extrudates are calcined. Further treatments such as steam treatment, addition of catalytic metals and / or ion exchange may be carried out as required. The molecular sieve may optionally have a surface area of at least 200 m 2 / g, optionally at least 300 m 2 / g and be bound by a binder.

[0071] Binders may suitably function as diluents to control the amount of conversion in a given process so that product can be obtained in an economical and regular manner without utilizing other means to control the reaction rate. These materials may be incorporated into naturally occurring clays, such as bentonite and kaolin, to improve the crushing power of the catalyst under commercial operating conditions.

[0072] In addition to the materials mentioned above, the molecular sieves of the present invention can be composited with porous matrix materials such as silica-alumina, silica-magnesia, silica-zirconia, silica-thoria, silica-beryllia, silica-titania, and ternary compositions such as silica-alumina-thoria, silica-alumina-zirconia, silica-alumina-magnesia, and silica-magnesia-zirconia.

[0073] The relative proportions of molecular sieve and inorganic oxide matrix can vary widely, with the molecular sieve content ranging from about 1 to about 100 weight percent, and more usually from about 2 to about 95, optionally from about 20 to about 90 weight percent of the composite, particularly when the composite is prepared in the form of an extrudate.

[0074] Additional Embodiments Additionally or alternatively, the present disclosure can include one or more of the following embodiments.

[0075] Embodiment 1. A process for preparing crystals of a molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, comprising the following steps: a. a source of tetravalent element X, a morphology modifier L, water, optionally a source of hydroxide ions, optionally a structure directing agent Q, optionally a source of trivalent element Y, optionally a source of pentavalent element Z, optionally halide ions W - a source of alkali metal ions M + and / or a source of alkaline earth metal cation M 2+and optionally one or more other ingredients to form a synthetic mixture; b. heating the synthesis mixture under crystallization conditions for a time period ranging from about 1 hour to about 100 days to form molecular sieve crystals; c. recovering said molecular sieve crystals from the synthesis mixture; wherein X=Si, and the morphology modifier L is selected from the group consisting of a cationic surfactant having a quaternary ammonium group containing at least one hydrocarbyl group having at least 12 carbon atoms, a nonionic surfactant, an anionic surfactant, a sugar, and combinations thereof, and when a structure directing agent Q is present, L is different from the structure directing agent Q and is present in addition to the structure directing agent Q.

[0076] Embodiment 2. The process of embodiment 1, wherein the molar ratio of L:X in the synthesis mixture ranges from 0.001 to 0.03.

[0077] Embodiment 3. The process of embodiment 1 or 2, wherein Y is present in the synthesis mixture, and Y is Al, and the ratio of XO2:Y2O3 is in the range of 5 to 500.

[0078] Embodiment 4. The process of any one of embodiments 1 to 3, wherein the ratio Q:(XO2 + Y2O3 + Z2O5) is in the range of 0.01 to 1.0.

[0079] Embodiment 5. The process of any one of embodiments 1 to 4, wherein the morphology modifier, L, is a cationic surfactant having a single quaternary ammonium group, and the single ammonium group comprises at least one C12 to C30 alkyl group attached to the quaternary ammonium group.

[0080] Embodiment 6. The morphology modifier L is a compound of formula (1) (R 1 ) q (R 2 ) 4-q N + (X n- ) 1 / n (1) (Wherein, each R 1 are independently C1-C6, optionally C1-C4 hydrocarbyl groups which may be linear or branched, saturated or unsaturated, preferably linear and saturated, and each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen and halides; R 2 C may be branched or linear, saturated or unsaturated, preferably linear and saturated 12 ~C 30 , optionally C 14 ~C 30 , optionally C 16 ~C 30 , optionally C 18 ~C 30 are hydrocarbyl groups, and each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen, and halides; q is 1 or 2, preferably 1; X n- The process of any one of embodiments 1 to 5, wherein the anion is a cationic surfactant having a valence of n.

[0081] Embodiment 7. The process of any one of embodiments 1 to 6, wherein the morphology modifier, L, is a monosaccharide.

[0082] Embodiment 8. The process of any one of embodiments 1 to 7, wherein the morphology modifier, L, is an anionic surfactant.

[0083] Embodiment 9. The process of any one of embodiments 1 to 8, wherein the morphology modifier, L, is a nonionic surfactant.

[0084] Embodiment 10. The process of any one of embodiments 1 to 9, wherein the synthesis mixture is substantially free of water-insoluble liquid components.

[0085] Embodiment 11. The process of any one of embodiments 1 to 10, comprising calcining the crystals recovered in step c) to obtain a calcined form of the molecular sieve.

[0086] Embodiment 12. The process of any one of embodiments 1 to 12, wherein the molecular sieve is a zeolite selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, cubic faujasite, hexagonal faujasite, and MCM-68.

[0087] Embodiment 13. A molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, wherein the ratio of external surface area to internal surface area is greater than 1.2 and / or the ratio of external acidity, as measured by collidine adsorption, to internal acidity, as measured by ammonia adsorption, is greater than 1.5.

[0088] Embodiment 14. A molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, and having an external surface area at least 1.1 times the external surface area of ​​the same molecular sieve produced using the same process except that the synthesis mixture does not contain any morphology modifier L, and / or an increased external acidity, as measured by collidine adsorption, compared to the same molecular sieve produced using the same process except that the synthesis mixture does not contain any morphology modifier L.

[0089] Embodiment 15. A molecular sieve according to embodiment 13 or 14, produced by the process of any one of embodiments 1 to 12.

[0090] Embodiment 16. A molecular sieve according to any one of embodiments 13 to 15, wherein the zeolite is selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, cubic faujasite, hexagonal faujasite, and MCM-68.

[0091] Embodiment 17. A catalyst comprising the molecular sieve of any one of embodiments 13-16, and optionally a binder.

[0092] Embodiment 18. A hydrocarbon conversion process comprising contacting a hydrocarbon feedstock with the catalyst of embodiment 17.

[0093] Embodiment 19. The hydrocarbon conversion process of embodiment 18, which is a dewaxing process or an aromatic alkylation process. [Example]

[0094] The synthesis of ZSM-48 was carried out according to the following procedure using hexamethonium dichloride (HMDC) as a structure directing agent and various morphology modifiers.

[0095] Example 1 (Comparative). ZSM-48 reference, no morphology modifier, morphology modifier / SiO2 = 0.0, morphology modifier present at 0 wt% of total mixture. Dilute 1.26g of 25% hexamethonium dichloride (HMDC) in 14.8g of water. Stir to ensure a uniform solution. Add 0.62g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2% seeds by weight) to the aluminate mixture. Add 3.95g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. Stir the mixture for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.000 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0096] Transmission electron microscopy (TEM) revealed that the crystals generally had lengths in the range of 30-50 nm and widths in the range of 10-15 nm, with length:width aspect ratios of 3-5.

[0097] Example 2. ZSM-48, trimethyloctadecylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.011, 1 wt% of total mixture Dilute 1.25g of 25% hexamethonium dichloride (HMDC) in 13.7g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.8% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.74g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.28g of a 20wt% solution of trimethyloctadecylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=89.3 OH - / SiO2=0.179 HMDC / SiO2=0.019 Modifier / SiO2=0.011 H2O / SiO2=17.9 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0098] Example 3. ZSM-48, dodecyltrimethylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.014, 1 wt% of total mixture Dilute 1.25g of 25% hexamethonium dichloride (HMDC) in 13.7g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.8% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.26g of a 20wt% solution of dodecyltrimethylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 1 hour to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=97.2 OH - / SiO2=0.176 HMDC / SiO2=0.019 Modifier / SiO2=0.014 H2O / SiO2=17.9 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0099] Example 4. ZSM-48, ethylhexadecyldimethylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.011, 1 wt% of total mixture Dilute 1.27g of 25% hexamethonium dichloride (HMDC) in 13.7g of water. Stir to ensure a uniform solution. Add 0.62g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.8% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.25g of a 20wt% solution of ethylhexadecyldimethylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=98.2 OH - / SiO2=0.176 HMDC / SiO2=0.019 Modifier / SiO2=0.011 H2O / SiO2=17.9 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0100] Example 5. ZSM-48, cetyltrimethylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.023, 2 wt% of total mixture Dilute 1.24g of 25% hexamethonium dichloride (HMDC) in 12.5g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.8% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 2.25g of a 20wt% solution of cetyltrimethylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 1 hour to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=99.3 OH - / SiO2=0.174 HMDC / SiO2=0.019 Modifier / SiO2=0.023 H2O / SiO2=16.8 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0101] Example 5B Additional ZSM-48 crystals were synthesized using the same reaction mixture as in Example 5, except that 1 wt. % CTAB was used instead of 2 wt. Transmission electron microscopy (TEM) revealed that the crystals had a median crystal length of about 53 nm and an aspect ratio of about 2.2.

[0102] Example 6. ZSM-48, Brij L4 morphology modifier, morphology modifier / SiO2 = 0.017, 1.6 wt% of total mixture Dilute 1.24 g of 25% hexamethonium dichloride (HMDC) in 13.0 g of water. Stir to ensure a uniform solution. Add 0.59 g of sodium aluminate solution (7.5% Na2O, 10.2% Al2O3, 82.3% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.75 g of colloidal beta seeds (16.7 wt % seeds) to the aluminate mixture. Add 1.96 g of a 19.2 wt % solution of Brij L493 (polyethylene glycol dodecyl ether as a nonionic surfactant morphology modifier) ​​and stir the mixture to dissolve the zeolite growth modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.017 H2O / SiO2=18.7 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0103] Example 7. ZSM-48, Brij 93 morphology modifier, morphology modifier / SiO2 = 0.018, 1.7 wt% of total mixture Dilute 1.27g of 25% hexamethonium dichloride (HMDC) in 12.9g of water. Stir to ensure a uniform solution. Add 0.59g of sodium aluminate solution (7.5% Na2O, 10.2% Al2O3, 82.3% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.75g of colloidal beta seeds (16.7wt% seeds) to the aluminate mixture. Add 2.02g of an 18.54wt% solution of Brij 93 (polyethylene glycol loryl ether as a nonionic surfactant morphology modifier) ​​and stir the mixture to dissolve the zeolite growth modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.018 H2O / SiO2=18.7 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0104] Example 8. ZSM-48, sodium octyl sulfate morphology modifier, morphology modifier / SiO2 = 0.026, 1.5 wt% of total mixture Dilute 1.27 g of 25% hexamethonium dichloride (HMDC) in 13.0 g of water. Stir to ensure a uniform solution. Add 0.60 g of sodium aluminate solution (7.5% Na2O, 10.2% Al2O3, 82.3% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.75 g of colloidal beta seeds (16.7 wt% seeds) to the aluminate mixture. Add 1.86 g of a 20 wt% solution of sodium octyl sulfate, and stir the mixture to dissolve the zeolite growth modifier. Add 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.026 H2O / SiO2=18.7 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0105] Example 9 (Comparative) ZSM-48, 1,2-hexanediol comparative modifier, comparative modifier / SiO2 = 0.053, 1.5 wt% of the total mixture Dilute 1.27g of 25% hexamethonium dichloride (HMDC) in 13.1g of water. Stir to ensure a uniform solution. Add 0.60g of sodium aluminate solution (7.5% Na2O, 10.2% Al2O3, 82.3% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.75g of colloidal beta seeds (16.7wt% seeds) to the aluminate mixture. Add 1.86g of a 20.1wt% solution of 1,2-hexanediol, and stir the mixture to dissolve the zeolite growth modifier. Add 3.89g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.053 H2O / SiO2=18.7 Approximately 5200 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0106] Example 10. ZSM-48, trimethyloctadecylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.021, 2.0 wt% of total mixture Dilute 1.26 g of 25% hexamethonium dichloride (HMDC) in 12.5 g of water. Stir to ensure a uniform solution. Add 0.61 g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73 g of colloidal beta seeds (17.2 wt% seeds) to the aluminate mixture. Add 2.51 g of a 20 wt% solution of trimethyloctadecylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.87 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.021 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0107] Example 11. ZSM-48, sodium lauryl sulfate morphology modifier, morphology modifier / SiO2 = 0.029, 2.0 wt% of total mixture Dilute 1.24 g of 25% hexamethonium dichloride (HMDC) in 12.5 g of water. Stir to ensure a uniform solution. Add 0.61 g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73 g of colloidal beta seeds (17.2 wt% seeds) to the aluminate mixture. Add 2.5 g of a 20 wt% solution of sodium lauryl sulfate (anionic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. Add 3.90 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.2 OH - / SiO2=0.174 HMDC / SiO2=0.019 Modifier / SiO2=0.029 H2O / SiO2=18.6 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0108] Example 11B Additional ZSM-48 crystals were synthesized using the same reaction mixture as in Example 11, except that 1 wt. % SLS was used instead of 2 wt. Transmission electron microscopy (TEM) revealed that the crystals had a median crystal length of about 41 nm and an aspect ratio of about 2.0.

[0109] Example 12. ZSM-48, sodium lauryl sulfate morphology modifier, morphology modifier / SiO2 = 0.075, 5.0 wt% of total mixture Dilute 1.2 g of 25% hexamethonium dichloride (HMDC) in 9.1 g of water. Stir to ensure a uniform solution. Add 0.59 g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.4 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73 g of colloidal beta seeds (17.2 wt% seeds) to the aluminate mixture. Add 6.3 g of a 20 wt% solution of sodium lauryl sulfate (anionic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. Add 3.78 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.9 OH - / SiO2=0.174 HMDC / SiO2=0.019 Modifier / SiO2=0.075 H2O / SiO2=18.6 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0110] Example 13. ZSM-48, benzylhexadecyldimethylammonium chloride morphology modifier, morphology modifier / SiO2 = 0.016, 1.5 wt% of total mixture Dilute 1.24g of 25% hexamethonium dichloride (HMDC) in 13.1g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.88g of a 20wt% solution of benzylhexadecyldimethylammonium chloride (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.016 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0111] Example 14. ZSM-48, dihexadecyldimethylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.012, 1.5 wt% of total mixture Dilute 1.24g of 25% hexamethonium dichloride (HMDC) in 13.1g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.86g of a 20wt% solution of dihexadecyldimethylammonium bromide (a cationic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.012 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0112] Example 15. ZSM-48, Lithium Dodecyl Sulfate Morphology Modifier, Morphology Modifier / SiO2 = 0.023, 1.5 wt% of Total Mixture Dilute 1.24 g of 25% hexamethonium dichloride (HMDC) in 13.1 g of water. Stir to ensure a uniform solution. Add 0.61 g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6 g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73 g of colloidal beta seeds (17.2 wt% seeds) to the aluminate mixture. Add 1.86 g of a 20 wt% solution of lithium dodecyl sulfate (anionic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. Add 3.89 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.023 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0113] Transmission electron microscopy (TEM) revealed that the crystals generally had lengths in the range of 30-60 nm and widths in the range of approximately 30 nm, with length:width aspect ratios in the range of 1-2.

[0114] Example 16. ZSM-48, Pluronic EO-PO-EO Morphology Modifier, Morphology Modifier / SiO2 = 0.0007, 1.0 wt% of Total Mixture Dilute 1.25g of 25% hexamethonium dichloride (HMDC) in 13.7g of water. Stir to ensure a uniform solution. Add 0.61g of sodium aluminate solution (7.8% Na2O, 10.0% Al2O3, 82.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 3.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.73g of colloidal beta seeds (17.2wt% seeds) to the aluminate mixture. Add 1.24g of a 20wt% solution of Pluronic EO-PO-EO triblock copolymer (nonionic surfactant morphology modifier) ​​and stir the mixture to dissolve the morphology modifier. To this mixture, 3.91 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) is added. The mixture is stirred for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=100.0 OH - / SiO2=0.175 HMDC / SiO2=0.019 Modifier / SiO2=0.0007 H2O / SiO2=18.7 Approximately 5100 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0115] The synthesis of MCM-49 below was carried out using hexamethyleneimine (HMI) as the structure directing agent according to the following procedure.

[0116] Example 17. MCM-49 reference, no morphology modifier, morphology modifier / SiO2 = 0.000, 0 wt% of total mixture Dilute 3.54 g of a 40 wt% solution of aluminum sulfate octahydrate in 12.0 g of water. Add 4.1 g of a 20% NaOH solution to the aluminum sulfate solution. Stir to homogenize the mixture. Add 3.46 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to the sodium aluminate solution. Stir the mixture until the slurry appears uniform. Add 1.86 g of hexamethyleneimine (HMI) to the slurry. Stir the mixture for 10 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=25.0 OH - / SiO2=0.390 HMI / SiO2=0.350 Modifier / SiO2=0.000 H2O / SiO2=18.5 The autoclave is sealed and the mixture is kept stirred at 360 rpm using a U-shaped stirrer. The mixture is heated to 143°C (20°C / hr ramp rate) and held for 5 days. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction indicates that the powder is of the MCM-49 / MCM-22 structure type.

[0117] Example 18. MCM-49, cetyltrimethylammonium bromide morphology modifier, morphology modifier / SiO2 = 0.013, 1 wt% of total mixture Dilute 3.51 g of a 40 wt% solution of aluminum sulfate octahydrate in 10.9 g of water. Add 4.1 g of a 20% NaOH solution to the aluminum sulfate solution. Stir to homogenize the mixture. Add 3.42 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to the sodium aluminate solution. Stir the mixture until the slurry appears uniform. Add 1.85 g of hexamethyleneimine (HMI) to the slurry. Add 1.26 g of 20 wt% of cetyltrimethylammonium bromide (a cationic surfactant morphology modifier) ​​to the slurry. Stir the mixture for 10 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=25.0 OH - / SiO2=0.390 HMI / SiO2=0.350 Modifier / SiO2=0.013 H2O / SiO2=19.6 The autoclave is sealed and the mixture is kept stirred at 360 rpm using a U-shaped stirrer. The mixture is heated to 143°C (20°C / hr ramp rate) and held for 5 days. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction indicates that the powder is of the MCM-49 / MCM-22 structure type.

[0118] Example 19. MCM-49, Sodium Lauryl Sulfate Morphology Modifier, Morphology Modifier / SiO2 = 0.016, 1 wt% of Total Mixture Dilute 3.51 g of a 40 wt% solution of aluminum sulfate octahydrate in 10.9 g of water. Add 4.1 g of a 20% NaOH solution to the aluminum sulfate solution. Stir to homogenize the mixture. Add 3.42 g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to the sodium aluminate solution. Stir the mixture until the slurry appears uniform. Add 1.85 g of hexamethyleneimine (HMI) to the slurry. Add 1.26 g of 20 wt% of sodium lauryl sulfate (anionic surfactant morphology modifier) ​​to the slurry. Stir the mixture for 10 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=25.0 OH - / SiO2=0.390 HMI / SiO2=0.350 Modifier / SiO2=0.016 H2O / SiO2=19.6 The autoclave is sealed and the mixture is kept stirred at 360 rpm using a U-shaped stirrer. The mixture is heated to 143°C (20°C / hr ramp rate) and held for 5 days. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction indicates that the powder is of the MCM-49 / MCM-22 structure type.

[0119] Example 20. ZSM-48, Fructose Morphology Modifier, Modifier / SiO2 = 0.020, 1.0 wt% of Total Mixture Dilute 1.39g of 56% hexamethonium dichloride (HMDC) in 14.4g of water. Stir to ensure a uniform solution. Add 1.42g of sodium aluminate solution (20% NaOH, 7.8% Al(OH)3, 72.2% water) to the structure directing agent solution. Stir to homogenize the solution. Add 2.6g of 10% NaOH solution to the HMDC / aluminate solution. Stir to homogenize the mixture. Add 0.03g of ZSM-48 seeds to the aluminate mixture. Add 0.63g of a 39.7% solution of fructose and stir to homogenize the mixture. Add 4.62g of Ultrasil VN3 PM modified precipitated silica (92.4% SiO2) to this mixture. Stir the mixture for 15 minutes to prepare a uniform slurry. The approximate molgel composition for the mixture is as follows: SiO2 / Al2O3=99.9 OH - / SiO2=0.190 HMDC / SiO2=0.040 Modifier / SiO2=0.020 H2O / SiO2=14.9 Approximately 1000 ppm of seeds The autoclave is sealed and the mixture is kept stirred at 300 rpm using a U-shaped stirrer. The mixture is heated to 160°C (20°C / hr ramp rate) and held for 28 hours. The solid is isolated by vacuum filtration and washed with three volumes of water. The material is dried in an oven at 120°C. X-ray diffraction shows the powder to be ZSM-48.

[0120] Post-synthesis processing and measurements The molecular sieve samples produced in Examples 1 to 20 above were subjected to the following treatments.

[0121] After crystallization is complete and the material is determined to be crystalline by XRD, the crystals are ion-exchanged twice with NH4NO3, washed with water, and dried in an oven at 120° C. The ammonium form of the powder is then calcined in air for 2 hours at 550° C. to produce the acid form of the zeolite crystals.

[0122] The acid form of the crystals was then characterized using collidine adsorption to assess the acidity of the catalyst. Nitrogen BET techniques were used to determine the external and internal surface areas of the crystals, as well as the pore volume. This data was collected for the reference material and each modified material of the present invention, and the ratio of the external surface area and collidine adsorption of each example of the present invention to the reference example of the same zeolite is shown in Table 3, demonstrating the change in acidity and external surface area of ​​the modified crystals caused by the presence of morphology modifiers in the synthesis mixture.

[0123] BET analysis was performed as described in SJ Gregg, K.S. W Singh, "Adsorption, Surface Area and Porosity," 1st ed., Academic Press, NY (1967) pp. 30-31.

[0124] Ammonia and collidine absorption tests were generally performed as described in J. Phys. Chem. B, 2002, 106(2), pp 395-400 (note that in some cases the apparatus was slightly different, but in all cases the measurements were performed on a thermogravimetric balance).

[0125] [Table 3]

[0126] The results in Table 3 show that the use of 1,2-hexanediol, which is not a morphology modifier as described herein, had no effect on collidine absorption or external surface area, as was the case with the reference ZSM-48 in Comparative Example 1.

[0127] For inventive Examples 2-8, 10-16, 18, and 19, the presence of the morphology modifier had a significant effect on collidine adsorption and / or external SA compared to the synthesis of a reference material in the absence of the morphology modifier. In Examples 11 and 12, the reported collidine adsorption and external SA values ​​were lower than those for the reference synthesis of the same zeolite in the absence of the morphology modifier, but within 10%, which may be due to experimental error. For Example 15, the collidine adsorption and external SA results were lower than those for the reference material. In this case, TEM results indicated that the aspect ratio of the crystals produced in the presence of lithium dodecyl sulfate as a morphology modifier was significantly reduced compared to reference ZSM-48, primarily due to increased crystal width compared to the reference material. In ZSM-48, one-dimensional framework channels run longitudinally of the crystal; therefore, an increase in the crystal width compared to the length may make these channels more accessible to incoming reactant molecules.

[0128] Examples 21-24 - Catalyst Life of Small Crystal Size One-Dimensional Zeolite Catalysts For catalysts based on one-dimensional zeolites, catalyst exposure life can be improved by reducing the crystal size of the zeolite along the direction of the pore channels. This can be achieved by modifying the synthesis conditions for zeolite production, by using zeolite growth modifiers (ZGMs) in the synthesis mixture, or by other methods that reduce or minimize the crystal size along the direction of the pore channels.

[0129] Small crystals of one-dimensional zeolites can have a crystal length along the pore channel direction of 90 nm or less, or 70 nm or less, or 50 nm or less, or 45 nm or less, for example, down to 20 nm, or possibly even less. In such embodiments, the crystals can have an aspect ratio, defined as the ratio of the length along the pore channel direction to the length along the perpendicular direction, of 4.0 or less, or 3.0 or less, or 2.5 or less, or 2.0 or less, for example, down to 1.0, or possibly even less. It should be noted that the length of the crystal along the pore channel direction of some one-dimensional zeolites, such as ZSM-48, can typically correspond to the longest direction of the crystal.

[0130] Methanol conversion catalysts with increased catalyst exposure life can be beneficial in a variety of situations. For fixed-bed systems (such as trickle-bed reactors), increasing catalyst life can allow for longer run lengths at a given thickness of the catalyst bed and / or comparable run lengths with reduced amounts of catalyst. For systems capable of continuous catalyst regeneration, such as fluidized-bed or moving-bed reactors, increasing catalyst life can allow for a reduction in the rate of catalyst removal from the system and a corresponding reduction in the addition of freshly made-up catalyst. As used herein, catalyst exposure life refers to the amount of oxygenate that a catalyst can process under oxygenate conversion conditions before the catalyst's activity for conversion becomes substantially zero.

[0131] To investigate the effect of crystallite size, ZSM-48 catalysts were synthesized with two different silica:alumina ratios (approximately 70:1 and 90:1) and different lengths along the pore channel direction (approximately 60-70 nm or greater than 100 nm). More generally, the size effect demonstrated in this example is believed to be relevant for use with a variety of unidimensional 10-ring zeolites at silica to alumina ratios between 30 and 100, and with hexane cracking activities of 15 or greater (as defined in U.S. Pat. No. 3,354,078, incorporated herein by reference, for the limited purpose of hexane cracking activity testing).

[0132] The synthesis mixtures for preparing the catalysts are shown in Table 3. The catalyst mixtures are described based on the weight ratio of most components by weight in the mixture provided for the seeds. For each synthesis mixture, the silica-to-alumina ratio, crystal length (along the pore channel direction), and aspect ratio (AR) are listed.

[0133] [Table 4]

[0134] For the 90:1 ZSM-48 synthesis mixture, a mixture was prepared from water, hexamethonium chloride (56% solution), commercially available Ultrasil silica (available from Degussa), sodium aluminate solution (45%), TEAOH solution (35%), 50% sodium hydroxide solution, and seeds. The mixture was reacted for 48 hours at 320°F (160°C) with stirring at 250 RPM. The product was filtered, washed with deionized (DI) water, and dried at 250°F (120°C). XRD patterns of the synthesized material showed a pure phase typical of ZSM-48 topology. SEM of the synthesized material showed that the material was composed of crystalline aggregates. For crystals with an aspect ratio of approximately 7, the crystals had a needle-like morphology, while crystals with an aspect ratio of approximately 3 had an irregular morphology.

[0135] For the 70:1 ZSM-48 synthesis mixture, a mixture was prepared from water, hexamethonium chloride (56% solution), commercially available Ultrasil silica, sodium aluminate solution (43%), TEAOH solution (35%), 50% sodium hydroxide solution, and seeds. The mixture was reacted at 340°F (approximately 170°C) with stirring at 250 RPM for 24 hours. The product was filtered, washed with deionized (DI) water, and dried at 250°F (120°C). XRD patterns of the synthesized material showed a pure phase typical of ZSM-48 topology. SEM of the synthesized material showed that the material was composed of crystalline aggregates. For crystals with an aspect ratio of approximately 7, the crystals had a needle-like morphology, while crystals with an aspect ratio of approximately 3 had an irregular morphology.

[0136] After synthesis, the catalyst was compounded with an alumina binder to produce catalyst particles with 80 wt% zeolite and 20 wt% binder.

[0137] For catalyst A (90:1, length = 138 nm), the combined catalyst had an Alpha value of 90, a hexane cracking activity of about 56, a median pore diameter of 9.0 Å, and a pore size of 298 m 2 / g BET surface area (174 m 2 / g micropore surface area), an aspect ratio of 7, and a median crystal length of 138 nm.

[0138] For catalyst B (90:1, length = 66 nm), the combined catalyst had an Alpha value of 100, a hexane cracking activity of about 55, a median pore diameter of 6.5 Å, and a pore size of 275 m 2 / g BET surface area (165 m 2 / g micropore surface area), an aspect ratio of 3, and a median crystal length of 66 nm.

[0139] For catalyst C (70:1, length = 110 nm), the combined catalyst had an Alpha value of 120, a hexane cracking activity of about 52, a median pore diameter of 20.3 Å, and a pore size of 323 m 2 / g BET surface area (171 m 2 / g micropore surface area), an aspect ratio of 7, and a median crystal length of 110 nm.

[0140] For catalyst D (70:1, length = 61 nm), the combined catalyst had an Alpha value of 140, a hexane cracking activity of about 49, a median pore diameter of 14.4 Å, and a pore size of 324 m 2 / g BET surface area (169 m 2 / g micropore surface area), an aspect ratio of 3, and a median crystal length of 61 nm.

[0141] In addition to catalysts A-D, a fifth ZSM-48 catalyst was also synthesized, having a silica-to-alumina ratio of approximately 70:1 and a median crystal length of less than 90 nm. This catalyst is designated as the "reference" ZSM-48 catalyst. This reference ZSM-48 catalyst is similar to the ZSM-48 catalyst described and used in U.S. Patent Application Publication No. 2018 / 0201843.

[0142] The catalyst was tested in an isothermal fixed-bed reactor without recycle, but recycle is possible and may be desirable because it could further extend the catalytic cycle length or modify the overall yield. This reactor configuration is illustrative and should not be considered limiting. Moving or fluidized bed operation may be preferred. In this example, pure methanol was used as the model feed, but co-feedstocks such as water, oxygenates (e.g., ethanol, DME), olefins, paraffins, and aromatics are possible and may be desirable. Test conditions were 2 h-1 WHSV (zeolite basis), a temperature of 450°C, and a pressure of approximately 100 kPa-g.

[0143] Figures 1-4 show the results from the methanol conversion tests. Figure 1 shows the olefin yield (g MeOH / g catalyst) versus the amount of methanol exposed to the catalyst. Figure 2 shows the paraffin yield versus methanol exposure. Figure 3 shows the combined olefin and aromatic yield versus methanol exposure. Figure 4 shows the combined olefin, aromatic, and unknown yield versus methanol exposure. The "unknowns" in Figure 4 likely correspond to iso-olefins containing six or more carbons. Therefore, the "unknowns" likely correspond to compounds with relatively high octane numbers.

[0144] As shown in Figure 1, varying the aspect ratio of the 90:1 ZSM-48 catalyst had a substantial effect on yield and catalyst life. This is due, in part, to the relatively low yield at either exposure for the 90:1 ZSM-48 with an aspect ratio of 7. However, the 90:1 ZSM-48 with an aspect ratio of 3 and a crystallite length of less than 75 nm appeared to have a longer life than either of the 70:1 ZSM-48 catalysts. For the 70:1 catalyst, the lower aspect ratio catalyst had a somewhat higher peak yield of olefins, but the amount of increase in catalyst exposure life was modest. The catalyst exposure life for the reference catalyst was similar to that of the 70:1 ZSM-48 catalyst with an aspect ratio of 3 and a crystallite length of approximately 61 nm.

[0145] With respect to paraffin yield, Figure 2 shows that the 90:1 ZSM-48 with an aspect ratio of 3 had the highest paraffin yield at all exposures, but the 90:1 ZSM-48 crystals with an aspect ratio of 7 generally had lower activity. The paraffin yields of the 70:1 catalysts were similar, but the 70:1 ZSM-48 with an aspect ratio of 3 appeared to have a longer lifetime before the paraffin yield essentially dropped to zero. As shown in Figure 1, the catalytic exposure lifetime of the reference catalyst was similar to that of the 70:1 catalyst with an aspect ratio of 3 and a crystal length of approximately 61 nm.

[0146] Figure 3, which shows the combined olefin and aromatic yields, also shows trends similar to those in Figure 1. Thus, Figure 3 shows that 70:1 ZSM-48 with an aspect ratio of 3 provides only a modest increase in lifetime compared to the higher aspect ratio 70:1 ZSM-48, but a substantial increase in yield for 90:1 ZSM-48 with an aspect ratio of 3. Figure 4, which shows the combined olefin, aromatic, and unknown yields, also shows trends similar to the data in Figures 1 and 3.

[0147] To further explore the benefit of small crystallite size on the catalytic exposure life of unidimensional zeolites, the catalysts from Example 5B (CTAB) and Example 11B (SLS) were exposed to a methanol feedstock under the reaction conditions and reactor configuration described above. Additionally, ZSM-48 crystals produced using a method similar to Example 5B or Example 11B, but using 1 wt. % sodium sulfate as a crystal growth modifier, were also tested. Data from the reference catalysts from Figures 1-4 are also shown for comparison.

[0148] The catalyst prepared using sodium sulfate as a growth modifier had an Alpha value of 130 and an Alpha value of 280m 2 / g BET surface area (167 m 2 / g micropore surface area), an aspect ratio of 2.4, and a median crystallite length of 49 nm. The catalyst prepared using CTAB as a growth modifier (Example 5B) had an Alpha value of 120, a SiO2 value of 327 m 2 / g BET surface area (176 m 2 / g micropore surface area), an aspect ratio of 2.2, and a median crystallite length of 53 nm. The catalyst prepared using SLS as a growth modifier (Example 11B) had an Alpha value of 120, a SiO2 value of 281 m 2 / g BET surface area (167 m 2 / g micropore surface area), an aspect ratio of 2.0, and a median crystallite length of 41 nm.

[0149] Figures 5-8 show results from methanol conversion tests. Figure 5 shows the olefin yield (g MeOH / g catalyst) versus the amount of methanol exposed to the catalyst. Figure 6 shows the paraffin yield versus methanol exposure. Figure 7 shows the combined olefin and aromatic yield versus methanol exposure. Similar to Figure 4, Figure 8 shows the combined olefin, aromatic, and unknown yield versus methanol exposure.

[0150] As shown in Figure 5, adding SLS as a modifier had a substantial effect on catalyst life, with olefin yields remaining above zero until well past 200 g MeOH / g catalyst. Note that the SLS growth modifier resulted in the smallest median crystal length (41 nm) of the growth modifiers tested for methanol conversion. Addition of sodium sulfate or CTAB had a more modest effect, resulting in a similar overall life to the reference catalyst but higher production of olefins toward the end of catalyst life of approximately 150 g MeOH / g catalyst.

[0151] The paraffin yields in Figure 6 are similar to the results shown in Figure 5, except that the addition of sodium sulfate resulted in some additional initial yield of paraffins. However, the lifetime trends for each growth modifier in Figure 6 are similar to those in Figure 5. Figure 7, which shows the combined olefin and aromatic yields, and Figure 8, which shows the combined olefin, aromatic, and unknown yields, also show trends similar to those in Figure 5. Thus, Figures 7 and 8 show an unexpected improvement in catalyst lifetime for the small crystallite length ZSM-48 catalyst (synthesized using SLS). The preferred embodiments of the present invention are as follows. [1] A method for preparing crystals of a molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT and MSE, comprising the steps of: a. combining at least a source of a tetravalent element X, a morphology modifier L, and water to form a synthesis mixture; b. heating the synthesis mixture under crystallization conditions for a time period ranging from about 1 hour to about 100 days to form crystals of the molecular sieve; c. recovering the crystals of the molecular sieve from the synthesis mixture; wherein X=Si, and the morphology modifier L is selected from the group consisting of cationic surfactants having a quaternary ammonium group comprising at least one hydrocarbyl group having at least 12 carbon atoms, nonionic surfactants, anionic surfactants, sugars, and combinations thereof, and when structure directing agent Q is present, L is different from, and is present in addition to, the structure directing agent Q. [2] In step a), a source of hydroxide ions, a structure directing agent Q, a source of trivalent element Y, a source of pentavalent element Z, halide ions W - and a source of alkali metal ions M+ and / or a source of alkaline earth metal cation M 2+

[0023] The method of [1], wherein one or more additional components selected from the group consisting of sources of [3] The method according to [1], wherein the molar ratio of L:X in the synthesis mixture is in the range of 0.001 to 0.03. [4] a source of a trivalent element Y is present in the synthesis mixture, and Y is Al, and XO 2 :Y 2 O 3 The method according to [1], wherein the ratio is in the range of 5 to 500. [5] Ratio Q:(XO 2 +Y 2 O 3 +Z 2 O 5 ) is in the range of 0.01 to 1.0. [6] The method according to [1], wherein the morphology modifier L is a cationic surfactant having a single quaternary ammonium group, and the single ammonium group comprises at least one C12 to C30 alkyl group bonded to the quaternary ammonium group. [7] The morphology modifier L is a compound represented by the formula (1) (R 1 ) q (R 2 ) 4-q N + (X n- ) 1 / n (1) wherein each R1 is independently a C group which may be linear or branched, saturated or unsaturated, preferably linear and saturated. 1 ~C 6 , optionally C 1 ~C 4 R is a hydrocarbyl group, and each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen, and halides; 2 C may be branched or linear, saturated or unsaturated, preferably linear and saturated 12 ~C 30 , optionally C 14 ~C 30 , optionally C 16 ~C 30 , optionally C 18 ~C 30 are hydrocarbyl groups, and each hydrocarbyl may optionally contain one or more heteroatoms selected from oxygen, sulfur, nitrogen, and halides; q is 1 or 2, preferably 1; X n- is an anion of valence n). [8] The method according to [1], wherein the morphology modifying agent L is a monosaccharide. [9] The method according to [1], wherein the morphology modifier L is an anionic surfactant.

[10] The method according to [1], wherein the morphology modifier L is a nonionic surfactant.

[11] The method of [1], wherein the synthesis mixture is substantially free of water-insoluble liquid components.

[12] The method of claim 1, further comprising calcining the crystals recovered in step c) to provide a calcined form of the molecular sieve.

[13] 10. The method according to claim 1, wherein the molecular sieve is a zeolite selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, cubic faujasite, hexagonal faujasite, and MCM-68.

[14] A molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, wherein the molecular sieve has a ratio of external surface area to internal surface area greater than 1.2 and / or a ratio of external acidity, as measured by collidine adsorption, to internal acidity, as measured by ammonia adsorption, greater than 1.5.

[15] A molecular sieve having a framework code selected from the group consisting of MEI, TON, MRE, MWW, MFS, MOR, FAU, EMT, and MSE, and having an external surface area that is at least 1.1 times the external surface area of ​​the same molecular sieve produced using an equivalent method except that the synthesis mixture does not contain any morphology modifier L, and / or an increased external acidity, as measured by collidine adsorption, compared to the same molecular sieve produced using an equivalent method except that the synthesis mixture does not contain any morphology modifier L.

[16]

[14] The molecular sieve according to

[14] , which is produced by the method according to [1].

[17]

[14] The molecular sieve according to

[14] , which is a zeolite selected from the group consisting of ZSM-18, ZSM-22, ZSM-48, MCM-49, ZSM-57, mordenite, cubic faujasite, hexagonal faujasite, and MCM-68.

[18] A catalyst comprising the molecular sieve according to

[14] and optionally a binder.

[19]

[18] A method for converting hydrocarbons, comprising contacting the hydrocarbon feedstock with the catalyst according to

[18] .

[20]

[19] The hydrocarbon conversion process according to

[19] , which is a dewaxing process or an aromatic alkylation process.

[21] 19. The hydrocarbon conversion process according to

[19] , which is an oxygenate conversion process, a methanol conversion process, or a combination thereof.

[22]

[21] The hydrocarbon conversion method according to

[21] , wherein the molecular sieve according to

[14] comprises a median crystal length of 90 nm or less, an aspect ratio of 3 or less, or a combination thereof.

Claims

1. A method for producing crystals of a molecular sieve having an MRE skeletal code, comprising: The method involves the following steps: a. combining at least a source of tetravalent element X, a source of trivalent element Y, structure directing agent Q, morphology modifier L, and water to form a synthesis mixture, wherein morphology modifier L is included in the synthesis mixture before nucleation or crystallization begins; b. heating the synthesis mixture under crystallization conditions for a time period between 1 hour and 100 days to form molecular sieve crystals; c. Recovering the molecular sieve crystals from the synthesis mixture; Including, X=Si and Y=Al, The morphology modifier L is At least one C bonded to a quaternary ammonium group 12 ~C 30 cationic surfactants having a single quaternary ammonium group comprising an alkyl group; a nonionic surfactant selected from the group consisting of block copolymers of ethylene oxide and propylene oxide, block copolymers of ethylene oxide and butylene oxide, PEG dodecyl ether, and PEG oleyl ether; anionic surfactants selected from alkyl sulfates in which the alkyl group has at least 8 carbon atoms; a monosaccharide selected from glucose, fructose and galactose; and combinations thereof; A method of making wherein L is different from and is present in addition to structure directing agent Q.

2. In step a), a source of hydroxide ions, a source of pentavalent element Z, halide ions W - and a source of alkali metal ions M + and / or a source of alkaline earth metal cation M 2+ 10. The method of claim 1, wherein one or more additional components selected from the group consisting of sources of:

3. 10. The method of claim 1, wherein the molar ratio of L:X in the synthesis mixture ranges from 0.001 to 0.

03.

4. XO 2 :Y 2 O 3 The method of claim 1, wherein the ratio is in the range of 5 to 500.

5. Q: (XO 2 +Y 2 O 3 +Z 2 O 5 3. The method of claim 2, wherein the ratio of

6. The morphology modifier L is a compound represented by the formula (1) (R 1 ) q (R 2 ) 4-q N + (X n- ) 1/n (1) (Wherein, each R 1 are independently linear and saturated C 1 ~C 4 R 2 is a C 14 -C 30 alkyl group that is straight-chain (linear) and saturated; q is 2; X n- is an anion of valence n.) The method of claim 1, wherein the cationic surfactant has the formula:

7. 10. The method of claim 1, wherein the amount of water-insoluble liquid components in the synthesis mixture is less than 5% by weight.

8. 10. The method of claim 1, comprising calcining the crystals recovered in step c) to provide a calcined form of the molecular sieve.

9. 2. The method of claim 1, wherein the molecular sieve is ZSM-48.

10. A process for converting hydrocarbons, comprising contacting a hydrocarbon feedstock with a catalyst comprising molecular sieve crystals produced by the process of any one of claims 1 to 9.

11. 11. The hydrocarbon conversion process of claim 10, which is a dewaxing process or an aromatic alkylation process.

12. 11. The hydrocarbon conversion process of claim 10, which is an oxygenate conversion process, a methanol conversion process, or a combination thereof.

13. The hydrocarbon conversion method of claim 12, wherein the molecular sieve comprises a median crystal length of 90 nm or less, an aspect ratio of 3 or less, or a combination thereof.

Citation Information

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