Enantiospecific crystallization systems and methods
The use of planar magnetic surfaces with perpendicular magnetization vectors for enantioselective crystallization addresses inefficiencies in traditional methods, achieving high-purity enantiomeric separation in a single step with continuous flow, eliminating the need for seeding and reducing energy consumption.
Patent Information
- Application Number
- JP2022554584
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-11
- Filing Date
- 2021-03-11
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2041-03-11
AI Technical Summary
Existing enantioseparation by crystallization methods require frequent filtration, multiple heating and cooling cycles, leading to energy inefficiency and large setup sizes, and often necessitate seeding with enantiopure crystals, limiting yield and purity.
A system utilizing planar magnetic surfaces with perpendicular magnetization vectors for enantioselective crystallization, allowing simultaneous crystallization of different enantiomers on each surface without seeding, and a continuous flow configuration to enhance efficiency and purity.
Achieves high-purity enantiomeric separation in a single step with constant enantiomer ratios, eliminating the need for seeding and reducing energy consumption by enabling continuous operation.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of separation of enantiomers by crystallization and further to techniques for providing crystallization systems.
[0002] Background technical literature The following documents are considered relevant as background to the subject matter of the present disclosure. [1]J.Gal,Pasteur and the art of chirality.Nat.Chem.2017,9,604. [2]A.Svang-Ariyaskul,WJKoros,RWRousseau,Chiral separation using a novel combination of cooling crystallization and a membrane barrier:Resolution of DL-glutamicacid,Chemical Engineering Science 64,1980-1984(2009). [3] A. Kumar, E. Capua, MKKesharwani, JML Martin, E. Sitbon, DH Waldeck, R. Naaman, Chirality-induced spin polarization places symmetry constraints on biomolecular interactions.PNAS 2017,114,2474. [4] O. Ben Dor, S. Yochelis, A. Radko, K. Vankayala, E. Capua, A. Capua, S.-H. Yang, LTBaczewski, SSPParkin, R. Naaman, Y. Paltiel, Magnetization switching in ferromagnets by adsorbed chiral molecules without current or external magnetic field. Nat.Comm.2017,8,14567. [5]A.M.Rouhi,Chem.Eng.News 2003,81(18),45-61. [6]E.Francotte,W.Lindner,Chirality in Drug Research;Wiley-VCH:Weinheim,2006. [7]G.Coquerel,in Novel Optical Resolution Technologies(Eds:K.Sakai,N.Hirayama,R.Tamura),Springer Berlin Heidelberg,Berlin,Heidelberg,2006,pp1-51. [8]H.H-Tung,Crystallization of Organic Compounds:An Industrial Perspective,Wiley,Hoboken,N.J,2009. [9]A.Lewis,M.Seckler,H.J.M.Kramer,G.van Rosmalen,Industrial Crystallization:Fundamentals and Applications;Cambridge University Press,Cambridge,2015.
[10] A.Collins,G.N.Sheldrake,J.Crosby,The Commercial Manufacture and Applications of Optically Active Compounds,Reprint,Wiley,Chichester,2000.
[11] S.T.Hayes,G.Assaf,G.Checksfield,C.Cheung,D.Critcher,L.Harris,R.Howard,S.Mathew,C.Regius,G.Scotney,A.Scott,Org.Process Res.Dev.2011,15(6),1305-1314.
[12] F. Tassinari, J. Steidel, S. Paltiel, C. Fontanesi, M. Lahav, Y. Paltiel, R. Naaman, Chemical Science 2019, 10(20), 5246-5250.
[13] R. Naaman, Y. Paltiel, DH Waldeck, J. Phys. Chem. Lett. 2020, 11(9), 3660-3666.
[14] K. Banerjee-Ghosh, O. Ben Dor, F. Tassinari, E. Capua, S. Yochelis, A. Capua, SHYang, SSPParkin, S. Sarkar, L. Kronik, LT Baczewski, R. Naaman, Y. Paltiel, Science 2018, 360(6395), 1331-1334.
[15] A. Ziv, A. Saha, H. Alpern, N. Sukenik, LTBaczewski, S. Yochelis, M. Reches, Y. Paltiel, Adv. Mater.2019, 31(40), 1904206.
[0003] Identification of the above documents herein should not be inferred as meaning that they are in any way relevant to the patentability of the subject matter of the present disclosure. [Background technology]
[0004] Crystallization occurs in two major steps. The first step is nucleation, the emergence of a crystalline phase from a supercooled liquid or a supersaturated solvent. The second step, known as crystal growth, is the increase in particle size, leading to a crystalline state. More specifically, during the nucleation step, solute molecules or atoms dispersed in a solvent begin to aggregate into clusters on a microscopic scale (increasing the solute concentration in a small area). The clusters must reach a critical size to become stable nuclei. Such a critical size is determined by various factors (temperature, concentration, etc.). Crystal growth is the subsequent increase in size of nuclei that successfully achieve a critical cluster size. Crystal growth is a dynamic process that occurs in equilibrium as solute molecules or atoms precipitate out of solution and then dissolve back into solution.
[0005] Crystal formation can be achieved by a variety of methods, including cooling, evaporation, adding a second solvent to reduce the solubility of the solute (a technique known as antisolvent or drawout), solvent layering, sublimation, and changing the cation or anion. The formation of a supersaturated solution does not guarantee crystal formation; seed crystals or scratching of glass are often necessary to create nucleation sites. A typical experimental technique for crystal formation is to dissolve a solid in a solution that is usually partially soluble at high temperature to achieve supersaturation. The hot mixture is then filtered to remove insoluble impurities. The filtrate is then slowly cooled. The formed crystals are then filtered and washed with a solvent that does not dissolve the crystals but is miscible with the mother liquor. This process can be repeated to increase purity, a technique known as recrystallization.
[0006] For biomolecules, where solvent channels remain to maintain the three-dimensional structure, microbatch crystallization under oil and vapor diffusion [2] has been a common method.
[0007] Because most biological systems consist of molecules of a single chirality, the production of enantiopure chemicals is important to the pharmaceutical and agricultural industries. Ever since Pasteur manually separated mirror-image crystals of tartrate salts,[1] crystallization has emerged as an important method for separating enantiomers. Although several other methods have been developed to obtain chiral separations, chiral separation by crystallization remains the most important for large-scale production due to its simplicity.
[0008] There are two main chiral crystallization methods: diastereomeric crystallization and direct crystallization. Separation by diastereomeric crystallization is widely used in industry, especially in the pharmaceutical industry, to produce most chiral drugs that are not derived from natural products. Diastereomeric crystallization is a process in which enantiomers are converted into diastereomers (stereoisomers that are not mirror images of each other) before being crystallized. [2] Direct crystallization is an alternative technique that has shown substantial economic importance in industry.
[0009] As mentioned above, crystallization is the most commonly used technique for separating and purifying enantiopure molecules from racemic mixtures, whether by the formation of diastereomers through the addition of resolving agents [5] or by spontaneous separation in the case of conglomerates [6,7]. Most active pharmaceutical ingredients are prepared through at least one crystallization step, making them of great industrial importance [9,10]. Because many enantiomeric drugs have different biological effects for the two enantiomers
[11] , regulatory agencies are striving to develop and commercialize enantiopure active molecules rather than racemates, making the development of efficient separation techniques even more important. Summary of the Invention
[0010] The direct crystallization process presents several challenges. First, frequent filtration is required, which requires multiple tanks, increasing the setup size and length of the process. Second, the crystallizer must be heated and cooled multiple times, which is energy inefficient.
[0011] A concept related to the interaction between magnets and chiral molecules was introduced
[12] and is also described in commonly assigned International Patent Publication WO 19 / 043693.
[13] showed that the use of a magnetized surface as a crystallization substrate can direct the preferential crystallization of agglomerates toward one enantiomer or the other. This concept is based on the observation that the charge polarization of chiral molecules is accompanied by a spin polarization [3] and the recognition that the polarized spins of chiral molecules interact enantiospecifically with ferromagnets (FMs) whose spins are aligned perpendicular to the surface [4]. It is important to understand that this interaction is not due to the magnetic field itself, but rather to the interaction of electrons in the substrate with those in the molecules via an electron spin exchange interaction.
[0012] The underlying mechanism of this effect lies in the intrinsic property of chiral molecules, where charge polarization induces transient spin polarization. Even if all electrons in a molecule are paired and have a total spin of zero, charge polarization to form an induced dipole also results in spin polarization of the two electrodes, with one pole carrying the opposite charge to the spin polarization of the other pole. The handedness of the chiral molecule determines which pole is associated with which spin polarization
[13] . This spin-dependent charge reorganization (SDCR) effect is related to the chiral-induced spin selectivity (CISS) phenomenon. Due to the SDCR effect, (partially) unpaired electrons in the near-surface electrode undergo spin-dependent exchange interactions with the magnetized surface. The magnitude of this interaction depends on the relative orientation of the spins on the molecule and in the ferromagnetic substrate
[14] . In other words, the presence of a magnetized surface acts like a crystalline seed for one enantiomer, facilitating a separation process known as kinetic entrainment, whereby the crystallization of the selected enantiomer becomes kinetically favored, allowing for the isolation of an enantiopure product. The same magnetic surface can be used to separate many different chiral substances. It has been qualitatively demonstrated that SDCR can be used to separate enantiomers by seedless crystallization using a ferromagnetic substrate placed horizontally in a solution containing a racemic mixture
[12] .
[0013] Typically, enantioseparation by crystallization is performed in a stationary vessel, and the crystals are removed after the crystallization process is complete. Furthermore, the crystals are typically collected from the bottom of the device. Therefore, there is a need in the art for a technique for continuous crystallization. Furthermore, when aiming to form crystals on a magnetic surface, it is necessary to eliminate the collection of crystals formed in the bulk solution rather than on the surface. According to a broad aspect of the present invention, a system for flow crystallization is provided, which includes a vessel having a bottom surface defining a first plane, the vessel including at least two planar magnetic surfaces, the magnetic surfaces spaced apart along the first plane and substantially parallel to a second plane, the magnetization vector of each of the magnetic surfaces being perpendicular to the plane, the vessel being configured such that the first plane is substantially perpendicular to the second plane, and a cavity formed between the planar magnetic surfaces is configured to receive a racemic mixture containing different enantiomers, and each magnetic surface interacts with each of the different enantiomers in a different manner, thereby enabling enantioselective crystallization. Thus, the system of the present invention is based on enantioseparation of crystals using magnetic surfaces. This system is configured to separate a racemic mixture while it flows between two magnetic surfaces. Enantioseparation of multiple compounds shows quantitative results, allowing highly pure materials to be obtained in a single separation step. The present invention can provide simultaneous, high-purity enantiomeric separation of aggregates using a magnetic substrate. The magnetic surface is positioned perpendicular to the bottom of a vessel so that crystallization occurs on the magnetic surface, and crystals are recovered by removing the magnetic surface from the vessel. By applying a magnetic substrate magnetized perpendicularly to the surface, pure aggregates of a few molecules were crystallized from a racemic solution. This separation is based on the spin-dependent charge reorganization (SDCR) effect.
[0014] In some embodiments, by having two planar magnetic surfaces, one with opposite magnetization relative to the other, it was possible to simultaneously crystallize different enantiomers on each surface. In this regard, it should be noted that because crystallization of both enantiomers occurs simultaneously on the two oppositely magnetized surfaces, the ratio between the concentrations of the two enantiomers remains constant during the crystallization process, thus allowing the separation process to be carried out with high efficiency, in one step, and without the need for solution refreshing. Furthermore, the technology of the present invention does not require seeding or chemical modification and is generally applicable to any conglomerate. The system can be operated continuously, as a flow system, rather than in a stationary mode.
[0015] The vertical configuration eliminates contamination of the crystals with bulk-formed crystals and can accommodate the opposite enantiomer. The flow system ensures a continuous process that is easily interoperable with other chemical processes. Many systems can be operated in series.
[0016] In some embodiments, one magnetic surface is magnetized with a magnetization vector that points the north pole of the magnetic surface toward the cavity, and the other magnetic surface is magnetized with a magnetization vector that points the south pole of the magnetic surface toward the cavity.
[0017] In some embodiments, the cavity defines a pathway through which the racemic mixture passes, the pathway being configured and operable to allow selected enantiomers of the racemic mixture to crystallize separately on each magnetic surface.
[0018] In some embodiments, the system comprises an inlet for inputting and outputting the racemic mixture, the inlet and outlet being disposed in a plane perpendicular to the plane defined by the magnetic surface.
[0019] In some embodiments, the system comprises a pump configured and operable to control the flow of the racemic mixture.
[0020] In some embodiments, the system comprises at least one temperature controller configured and operable to control at least one of the temperature of the racemic mixture or the temperature of the planar magnetic surface.
[0021] In some embodiments, the cavity comprises a separation structure configured to separate the cavity into two subchannels, the separation structure having a surface configured to attract the enantiomers and allow them to crystallize on the surface.
[0022] In some embodiments, the magnetic surface comprises a magnetized ferromagnetic or paramagnetic substrate, which may be structured to increase roughness and thereby increase crystallization.
[0023] According to another broad aspect of the present invention, there is provided a method for flow crystallization, comprising the steps of providing a racemic mixture containing different enantiomers, providing a pathway formed by at least two substantially parallel planar magnetic surfaces, and allowing interaction between the racemic mixture and the pathway to allow crystallization of each enantiomer on a different magnetic surface.
[0024] In some embodiments, interacting between the racemic mixture and the pathway comprises controlling the flow of the racemic mixture.
[0025] In some embodiments, the interaction between the racemic mixture and the channel includes controlling the temperature of the racemic mixture and / or the magnetic surface on the planar surface. The flowing of the mixture through the channel may be performed continuously.
[0026] In some embodiments, the method further comprises dissolving the crystals on the planar magnetic surface.
[0027] In some embodiments, dissolving the crystals on the planar magnetic surfaces includes flowing a solvent therethrough to interact with one of the planar magnetic surfaces, and redirecting the solvent therethrough to interact with the other planar magnetic surface.
[0028] In some embodiments, dissolving the crystal on the planar magnetic surface includes providing a separation structure configured to separate the pathway into two sub-channels, and dissolving the crystal on the separation structure. [Brief explanation of the drawings]
[0029] In order to better understand the subject matter disclosed herein and to illustrate how it may be carried out in practice, embodiments will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which: [Figure 1] Figure 1A is a non-limiting schematic block diagram of a system for flow crystallization. Figure 1B is a possible schematic of a continuous flow crystallization system of the present invention. Figure 1C is a schematic of a system that may be used for crystallization experiments, with a ferromagnetic substrate in a vertical configuration. Figure 1D is a specific, non-limiting example of a continuous flow crystallization system of the present invention. [Figure 2] FIG. 2 is a general flowchart illustrating, without limitation, a possible method for eye tracking. [Figure 3] Figures 3A and 3B show the circular dichroism (CD) and ultraviolet-visible (UV-vis) absorbance spectra of pure L-asparagine and separated asparagine, respectively. [Figure 4] Figures 4A and 4B show chiral high performance liquid chromatography (HPLC) traces of the asparagine enantiomers and the crystals separated by a magnetic substrate, respectively. [Figure 5]Figures 5A-5C show graphs showing the statistics of crystallization experiments for glutamic acid *HCl (Figure 5A), threonine (Figure 5B), and asparagine (Figure 5C). Figure 5D shows the CD spectra of two crystals of glutamic acid *HCl grown on a ferromagnetic surface magnetized with the north and south poles, respectively, near the back of the surface. Figure 5E shows the HPLC chromatogram of crystals collected from the magnetized surface polarized with the north and south poles, respectively. Figure 5F shows the CD spectra of two crystals of threonine grown on a ferromagnetic surface magnetized with the north and south poles, respectively, near the back of the surface. Figure 5G shows the CD spectra of two crystals of asparagine grown on a ferromagnetic surface magnetized with the north and south poles, respectively, near the back of the surface. Figure 5H shows the HPLC chromatogram of crystals collected from the magnetized surface polarized with the south and north poles, respectively. Figure 5I shows the CD spectra of two crystals of Imglimin*HCl grown on a ferromagnetic surface magnetized with north and south magnetic poles, respectively, near the backside of the surface. Figure 5J shows the HPLC chromatograms of crystals collected from the magnetized surface polarized with south and north magnets, respectively. [Figure 6] FIG. 6 shows a schematic representation of the enantioselective mechanism. [Figure 7] FIG. 7 shows a schematic diagram of a possible configuration of a system configured to improve crystallization yield in ferromagnetic substrate induced separation, according to some embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0030] Referring to FIG. 1A, a block diagram of a system 10 for flow crystallization is shown. The system 10 includes a vessel 12 having a bottom surface defining a first plane P1 and a side surface defining a second plane P2, with the first plane P1 being substantially perpendicular to the second plane P2. The vessel 12 includes at least two planar magnetic surfaces 14A, 14B, and 14C spaced apart along the first plane P1 and substantially parallel to the second plane P2. Each of the magnetic surfaces 14A, 14B, and 14C has a magnetization vector MA, MB, or MC perpendicular to the surface. Cavities C1 and / or C2 formed between the planar magnetic surfaces are configured to receive a racemic mixture containing different enantiomers, such that each magnetic surface 14A, 14B, and 14C interacts differently with each of the different enantiomers, thereby enabling enantioselective crystallization.
[0031] In some embodiments, the magnetic surfaces 14A, 14B can have opposite magnetizations, represented by the direction of the vector MA within the cavity C1. For example, a planar magnetic surface can have opposite magnetizations, one perpendicular to the other. In a specific, non-limiting example, one magnet can be magnetized with its magnetic moment pointing away from the surface, while the other can be magnetized with its magnetic moment pointing toward the surface. As the racemic solution flows through the channel, molecules crystallize on the magnetic surface, resulting in predominantly one enantiomer crystallizing on one side and the other on the other. The magnetic surface can be formed by a magnetized magnetic, ferromagnetic, or paramagnetic substrate. Additionally, the magnetic surface can be structured to increase roughness, thereby increasing crystallization.
[0032] In a specific, non-limiting example, magnetic surface 14C is magnetized with a magnetization vector MC such that the north pole of the magnetic surface points toward cavity C2, and magnetic surface 14B is magnetized with a magnetization vector MB such that the south pole of the magnetic surface points toward cavity C2.
[0033] Referring to FIG. 1B, a specific, non-limiting system 100 for flow crystallization is shown. The system 100 includes a vessel 102 having a bottom surface defining a first plane P1. The vessel 102 contains two substantially parallel, planar magnetic surfaces M1, M2 spaced apart along a second plane P2. The vessel 102 is configured such that the first plane P1 is substantially perpendicular to the second plane P2. A cavity C formed between the planar magnetic surfaces M1, M2 is configured to receive a racemic mixture containing different enantiomers (e.g., an input high-temperature racemic solution), such that each magnetic surface interacts differently with each of the different enantiomers (e.g., each magnetic surface attracts a different enantiomer), thereby enabling enantioselective crystallization. Thus, the cavity C defines a path through which the racemic mixture passes. This path is configured and operable to allow selected enantiomers of the racemic mixture to crystallize separately on each magnetic surface. That is, the path may be a flow path formed by the planar magnetic surfaces M1, M2 spaced a certain distance apart. The planar magnetic surfaces M1, M2 may be configured to be removable from the vessel 102, such that crystals can be removed from the system 100 by either removing one or more of the magnetic surfaces M1 and / or M2 from the vessel 102 and dissolving the crystals on their surfaces, or by tilting the system 100 (e.g., 90 degrees) and allowing a certain amount of solvent to flow into the cavity C after tilting one of the magnetic surfaces so that the solvent contacts only the bottom surface of the vessel 102. After the crystals on the bottom surface have dissolved, the system 100 can be tilted in the opposite direction to place the other magnetic surface on the bottom surface of the vessel 102 and dissolve the crystals formed on that surface.
[0034] In some embodiments, the cavity C can include a separation structure S (e.g., a wall) configured to separate the cavity into two subchannels. The separation structure S has a surface configured to attract enantiomers and allow them to crystallize on the surface. Thus, a racemic solution can flow between one magnetic surface and the separation structure S. After crystals form, the separation structure S can be removed from the container 102, and the crystals can then be dissolved on the surface separation structure S.
[0035] Referring to Figure 1C, a schematic system that may be used for crystallization experiments with ferromagnetic substrates in a vertical configuration is shown. The north pole is defined as the pole where the magnetic field lines penetrate the surface of the magnet. In this specific, non-limiting example, a ferromagnetic nickel substrate was fabricated by depositing a 10 nm titanium layer on a Si(100) wafer, followed by a 20 nm nickel layer, and finally a 7 nm gold layer. The thin gold capping layer reduces oxidation of the ferromagnetic layer in air and solution, thereby preserving its magnetic and spin transport properties even under prolonged operating conditions. The crystallization process was carried out in a plastic cuvette with a total volume of 1.5 mL and dimensions of 5 × 10 × 30 mm. Two permanent neodymium magnets (each with a magnetic field strength of 0.45 T) were placed on the two opposing long walls of the vessel, oriented so that their magnetic interaction was attractive. During crystallization, the two ferromagnetic substrates were held perpendicular to the same wall of the cuvette, with both substrates parallel to each other. This allows the two ferromagnetic (FM) substrates to have opposite spin polarizations depending on the direction of the magnetic field. The distance between the two substrates in our setup is 4 mm.
[0036] Referring to FIG. 1D, a system 200 according to some embodiments of the present invention for controlling the flow of a racemic mixture and at least one of the temperature of the racemic mixture and / or the temperature of a planar magnetic surface is shown. The system 200 includes one or more temperature controllers 202 configured and operable to control at least one of the temperature of the racemic mixture or the temperature of the planar magnetic surface. In this specific, non-limiting example, the temperature of the magnetic surfaces M1 and M2 can be controlled independently of the temperature of the racemic solution. In this specific, non-limiting example, the temperature controller 202 includes a heating element (e.g., a hot plate) configured to heat the racemic solution to a temperature T3 and a cooling element (e.g., a chiller or jacket) configured to cool each of the planar magnetic surfaces to temperatures T1 and T2, respectively. The racemic solution enters the vessel at a specific temperature T4 and, after interaction with the magnetic surfaces, exits at a lower temperature T5. However, temperature control can be implemented using the same temperature controller or different elements, as illustrated in this example. The system 200 includes a pump 204 configured and operable to control the flow of the racemic mixture. The pump controls the flow of the mixture through the channel, allowing for continuous circulation of the mixture. The cooling element 202 can also include a pump, as shown, configured to circulate a cooling fluid along the magnetic surfaces. The drawing also shows a cooling fluid inlet and outlet for cooling both magnetic surfaces M1 and M2. The system 200 also includes an inlet I and an outlet O configured to input and output the racemic solution, respectively. In this specific, non-limiting example, the inlet and outlet for the racemic solution are positioned in a plane perpendicular to the plane defined by the magnetic surfaces M1 and M2.
[0037] Asparagine is an α-amino acid essential for the biosynthesis of glycoproteins and many other proteins. Recent studies have explored the separation of D / L-asparagine using a vertically oriented ferromagnetic (FM) substrate. We prepared a system according to the teachings of the present invention. To achieve a vertically oriented magnetic substrate, two FM layers were fabricated by evaporating 10 nm of gold onto a 120 nm Ni-coated silicon wafer. A thin film of gold (10 nm) was deposited on the FM layers to protect them from oxidation without degrading their magnetic or spin transport properties. Experiments were performed by magnetizing each FM layer so that the magnetic field points toward the north or south pole, respectively. A container was formed by placing the two FM layers at a specific distance from each other in a reservoir to form a cavity. A racemic supersaturated solution of asparagine was introduced into the cavity to induce the crystallization process.
[0038] 2 shows a flowchart illustrating a method 300 for flow crystallization. The method 300 includes providing a racemic mixture containing different enantiomers at 302, providing a pathway formed by at least two substantially parallel planar magnetic surfaces at 304, allowing interaction between the racemic mixture and the pathways at 306, and allowing crystallization of each enantiomer on a different magnetic surface at 308. Allowing interaction between the racemic mixture and the pathways can include controlling the flow of the racemic mixture at 310 and / or controlling the temperature of the racemic mixture and / or the temperature of the planar magnetic surfaces. For example, controlling the flow of the racemic mixture can include continuously flowing the mixture through the pathways.
[0039] In some embodiments, the method further includes dissolving the crystals on the planar magnetic surfaces at 312. Dissolving the crystals on the planar magnetic surfaces can include flowing a solvent therethrough to allow interaction with one of the planar magnetic surfaces and redirecting the path to flow the solvent therethrough to allow interaction with the other planar magnetic surface. Dissolving the crystals on the planar magnetic surfaces can include providing a separation structure configured to separate the path into two subchannels and dissolving the crystals on the separation structure.
[0040] 3A and 3B show the comparison of the CD and UV-vis absorbance spectra of pure L-asparagine and asparagine separated by the system of the present invention. Clearly, when the absorbance of both is the same, their CD spectra are nearly overlapping, suggesting that highly pure chiral crystals have been obtained. Furthermore, accurate enantiomeric excess (EE) can be detected using chiral high-performance liquid chromatography (HPLC).
[0041] Table 1 below shows the enantiomeric excess (EE:%) of asparagine crystals separated with a magnet pointing south or north. As shown in the table below, the opposite EE value was obtained when the magnet was pointing north. These data demonstrate significant enantioselective crystallization based on magnetic substrates. TIFF0007792140000001.tif92170
[0042] Figures 4A and 4B show chromatograms obtained from chiral HPLC. More specifically, Figure 4A shows the chromatogram of the racemic mixture before the separation process, and Figure 4B shows the chromatogram after separation. As shown in Figure 4B, only one peak belonging to L-asparagine was observed from the separated crystals. Therefore, when a magnet is magnetized so that the north pole faces the surface, the enantiomeric excess EE value is 100%.
[0043] The experiments described below are non-limiting and provide evidence of ferromagnetic surface-induced agglomerate crystallization. Although the results were obtained at a low scale, no technical changes are required for upscaling. The method of the present invention is general, does not require seeding, and can simultaneously obtain both pure enantiomers in one step.
[0044] Figures 5A–5C show the crystallization results for three amino acids: glutamic acid, threonine, and asparagine. The enantiomeric excess of the crystals approached 100%, with crystallization yields ranging from 10% to 20%. Specifically, glutamic acid crystallization was performed from a supersaturated racemic solution of the amino acid (102 mg / mL Glu) in 5 M HCl. The solution was slowly cooled from 80°C to 33°C over 2 hours, and then left at a constant temperature for 36 hours. Crystals grown on the ferromagnetic substrate were recovered and characterized (Figure 5A), but crystals formed in solution and precipitated on the bottom of the container were not considered. CD spectra of the recovered crystals, as shown in Figure 5D, were measured by dissolving all crystals recovered from each ferromagnetic surface in water. The CD spectra demonstrate that enantiospecific crystallization occurs on the surface of the ferromagnetic substrate, and that the enantiospecificity depends on the magnetic field applied to the substrate. Substrates polarized with a north-pole magnet show preferential growth of crystals of the L-isomer, while surfaces polarized with a south-pole magnet show growth of the D-isomer.
[0045] The enantiomeric excess (EE) of the crystals was determined using CD spectroscopy, comparing the CD signal with a calibration curve obtained from the pure isomers, and further determined by chiral HPLC (Figure 5E). The EE of the L-enantiomer obtained by this process was 97 ± 2%, and that of the D-enantiomer was 97 ± 2%. This result demonstrates the feasibility of simultaneously separating enantiomers with very high purity from a racemic mixture. Figure 5A, mentioned above, shows the data for each experimental repetition, along with the EE% of the crystals harvested from the surface of the FM substrate. The average yield obtained by applying this method is approximately 11 ± 2% (calculated from the amount of starting material) for a single crystallization step.
[0046] Crystallization of threonine was performed by starting from a supersaturated racemic mixture in 2 M HCl solution (600 mg / mL Thr) and slowly cooling from 80 °C to 28 °C over 1.5 h, followed by standing at constant temperature for 36 h. The CD spectra of crystals recovered from the surface, shown in Figure 5F, indicate that crystals grown on N-polarized substrates are the L-threonine-enriched enantiomer, whereas crystals grown on S-polarized substrates are the D-threonine-enriched enantiomer.
[0047] The purity of the crystals obtained by this method was approximately 64±3% EE for D-threonine and 58±2% for L-threonine, as determined solely by CD spectroscopy, as shown in Figure 5B. The average yield of threonine obtained by this method in a single crystallization step was approximately 10±3% (calculated from the amount of starting material).
[0048] Asparagine crystallization was performed from a supersaturated racemic solution of the amino acid in water (190 mg / mL Asn). The solution was heated to 95 °C, cooled to room temperature, and then left for 12 h. The enantiomeric purity of the crystals recovered from the surface was measured by CD spectroscopy (Figure 5G) and chiral HPLC (the same analytical method used for glutamic acid, Figure 5H). Crystals grown on the N-polarized substrate were D-asparagine, while crystals grown on the S-polarized substrate were L-asparagine (Figure 5C). The enantiomeric purity of the crystals was approximately 94 ± 12% for D-asparagine crystals and approximately 96 ± 6% for L-asparagine crystals. The maximum crystallization yield was 20 ± 5%.
[0049] Separation of racemic imeglimin hydrochloride was achieved by crystallization from methanol (325 mg / mL imeglimin) on a magnetic substrate. The solution was slowly cooled from 30 °C to 6 °C over 2 h and then left at this temperature for 20 h to crystallize. CD spectroscopy of the recovered crystals confirmed the opposite enantiomeric excess on the oppositely magnetized substrate (Figure 5I). Chiral HPLC measurements revealed that the EE of the R-isomer was up to 22% on the south-polarized substrate, and the EE of the S-isomer was up to 27% on the north-polarized substrate (Figure 5J).
[0050] The crystallization experiments conducted demonstrate that the simultaneous separation of agglomerate pairs in a single batch is possible by utilizing a magnetized surface as a crystallization substrate. This phenomenon is general, and the same system was used for all materials studied. Figure 6 shows a schematic representation of the mechanism of interaction between chiral molecules and a ferromagnetic substrate. Because the strength of the interaction depends on the properties of the molecules, the system must be tuned to achieve efficient separation. The change in the interaction is related to the strength of the CISS effect and the electric dipole moment for a particular molecule. Under a sufficiently large external magnetic field, the spin state of electrons in a ferromagnetic material splits, with the majority of spins pointing in one direction. When a chiral molecule approaches a ferromagnetic surface, dispersion forces reorganize the charges within the molecule, forming an induced dipole. Due to the SDCR effect, this reorganization of the electron density is accompanied by spin polarization due to the chirality of the molecule. Each pole of the induced electric dipole is associated with a spin polarization, with one direction of spin polarization associated with the positive pole and the opposite direction associated with the negative pole. Which pole is associated with which orientation depends on the handedness of the chiral molecule. The relative electronegativity of the molecule and the surface controls the attractive potential. One electrode is more attracted to the surface than the other. Thus, a spin-polarized pole interacts with a spin-polarized ferromagnetic substrate, and the interaction is stronger or weaker depending on whether the spins on the pole and the surface are antiparallel (singlet-like state) or parallel (triplet-like state). Because the spin orientation of the molecule on the electrode depends on the specific enantiomer, this interaction is apparently enantiomer-specific, allowing the separation of enantiomers by the rate of adsorption to the surface. In recent experiments, the interaction of two enantiomers with a ferromagnetic substrate has been directly measured by AFM
[15] . The difference in interaction energy between the two enantiomers and a ferromagnetic substrate magnetized perpendicular to the surface has been found to be on the order of 10 kJ / mol (0.1 eV). This allows the surface to impart an asymmetric bias to the formation of the initial crystalline seeds.This mechanism, in which preferential crystallization results from surface-molecule interactions rather than preferential adsorption of small chiral crystalline species, is also supported by experiments on the crystallization of sodium chlorate. Sodium chlorate is an achiral molecule that crystallizes in a chiral space group, and therefore, in this system, there is no possibility of spin-spin interactions when the molecules are fully solvated. Experiments with ferromagnetic surfaces did not observe preferential crystallization in this system, suggesting that the asymmetric bias originates from interactions between dissolved chiral molecules and the ferromagnetic substrate, rather than from species formed early in the crystallization process.
[0051] The most common procedure for enantioseparating agglomerate pairs uses kinetic separation, in which a racemic solution is seeded with small crystals of one of the two enantiomers, allowing the formation of one enantiopure crystalline phase.
[10] This procedure limits the crystallization yield, typically below 10%, because as the crystallization yield increases, the solution becomes enriched with the opposite enantiomer, which eventually begins to crystallize, reducing the enantiopurity of the resulting material. Our method eliminates this limitation because crystallization of both enantiomers occurs simultaneously, and the ratio of enantiomers in solution remains constant throughout crystallization. For example, experiments with glutamic acid yielded a maximum crystal yield of 14% in one step (7% pure D-Glu, 7% pure L-Glu, enantiopurity >95%), nearly double the value typically achievable with single-batch crystallization based on kinetic separation. Increasing the surface area of the ferromagnetic substrate likely increases the number of crystals formed on the surface, leading to improved yields.
[0052] Another attractive feature of this method is that it does not require seeding with enantiopure crystals, as crystallization occurs preferentially on a ferromagnetic substrate.
[0053] One strategy to improve crystallization yield is to switch from a static crystallization setup to a continuous flow system and recycle crystals that do not adhere to the ferromagnetic substrate. Referring now to FIG. 7, a system 400 configured as a continuous recycle flow system is shown. This system 400, among other things, includes a vessel 120 containing two spaced-apart planar ferromagnetic surfaces 140A, 140B. The vessel 120 defines a cavity formed between the planar ferromagnetic surfaces into which a racemic mixture containing different enantiomers is received. Each ferromagnetic surface 140A, 140B interacts differently with each of the different enantiomers, thereby enabling enantioselective crystallization. The system 400 also includes a temperature controller 160 configured to maintain the racemic mother liquor at a higher temperature than the substrate, thereby promoting crystallization exclusively on the ferromagnetic surfaces. The system 400 also includes a cooling element 162 configured to cool each of the planar ferromagnetic surfaces. 7, crystals can be removed from the bottom of the system 400, not bound to the walls, and simultaneously returned to the vessel 120 to maximize the final crystallization yield. In this way, crystals grow only on the ferromagnetic surfaces 140A, 140B with a very high EE%, and the final yield depends on the substrate area available for crystallization.
Claims
1. 1. A system for flow crystallization comprising: a vessel having a bottom surface defining a first plane and at least one side surface defining a second plane substantially perpendicular to said first plane; and an arrangement of at least two planar magnetic surfaces within said vessel, said at least two planar magnetic surfaces being spaced apart along said first plane defined by said bottom surface; each planar magnetic surface extends substantially parallel to the second plane defined by the at least one side surface of the container, a magnetization vector of each planar magnetic surface is perpendicular to its respective planar magnetic surface, the arrangement of the at least two planar magnetic surfaces defines a cavity formed to include a space between the at least two planar magnetic surfaces, the cavity being configured to receive a racemic mixture containing different enantiomers and to provide a path for the racemic mixture to pass through; The magnetization vector of each of the at least two planar magnetic surfaces interacts differently with the interactions of different enantiomers in a racemic mixture flowing through the pathway, allowing each different enantiomer to be separately and enantioselectively crystallized on a different magnetic surface of the at least two planar magnetic surfaces.
2. 10. The system of claim 1, The system of claim 1, wherein each of the at least two planar magnetic surfaces has two planar magnetic surfaces with opposite magnetizations relative to each other.
3. 3. The system according to claim 1 or 2, and wherein for each of the at least two planar magnetic surfaces, a first planar magnetic surface is magnetized such that a north pole of the planar magnetic surface has a magnetization vector pointing toward the cavity, and a second planar magnetic surface is magnetized such that a south pole of the magnetic surface has a magnetization vector pointing toward the cavity.
4. In the system according to any one of claims 1 to 3, 1. A system comprising an inlet for inputting and an outlet for outputting a racemic mixture, the inlet and outlet being disposed in a plane perpendicular to a plane defined by at least one planar magnetic surface.
5. In the system according to any one of claims 1 to 4, a pump configured and operable to control the flow of the racemic mixture along the pathway.
6. In the system according to any one of claims 1 to 5, 10. A system comprising: at least one temperature controller configured and operable to control at least one of a temperature of the racemic mixture, a temperature of the at least one planar magnetic surface, or a combination thereof.
7. The system according to any one of claims 1 to 6, The system is characterized in that the cavity includes a separation structure configured to separate the cavity into two subchannels, the separation structure having another surface configured to attract enantiomers and enable crystallization of the enantiomers on the other magnetic surface.
8. The system according to any one of claims 1 to 7, The system wherein the planar magnetic surface comprises a magnetized ferromagnetic or paramagnetic substrate.
9. The system according to any one of claims 1 to 8, The system, wherein the planar magnetic surface has roughness and is structured to increase enantioselective crystallization of enantiomers.
10. 1. A method for flow crystallization comprising: providing a racemic mixture comprising different enantiomers; providing a path for the racemic mixture, the path comprising cavities including a space between two substantially parallel planar magnetic surfaces, the magnetization vector of each cavity being perpendicular to each of the two substantially parallel planar magnetic surfaces; flowing the racemic mixture along the path, whereby the magnetization vector of each of the two substantially parallel planar magnetic surfaces affects the interaction of different enantiomers in the racemic mixture differently, allowing crystallization of each different enantiomer on a different planar magnetic surface of the two substantially parallel planar magnetic surfaces.
11. 11. The method of claim 10, a step of controlling the flow of the racemic mixture along said pathway.
12. 12. The method according to claim 10 or 11, 10. A method comprising controlling the temperature of the racemic mixture and / or at least one of the two substantially parallel planar magnetic surfaces.
13. The method according to any one of claims 10 to 12, The method, wherein the step of continuously flowing the mixture through the pathway is performed continuously.
14. The method according to any one of claims 11 to 13, The method further comprising the step of dissolving crystals on the two substantially parallel planar magnetic surfaces.
15. 15. The method of claim 14, 10. The method of claim 9, wherein dissolving the crystals on the two substantially parallel planar magnetic surfaces comprises: flowing a solvent therethrough to allow interaction with one of the two substantially parallel planar magnetic surfaces; and redirecting the path of the solvent therethrough to allow interaction with the other of the two substantially parallel planar magnetic surfaces.
16. 16. The method of claim 14 or 15, the dissolving of crystals on the two substantially parallel planar magnetic surfaces comprises providing a separation structure configured to separate the path into two sub-channels, and dissolving the crystals on the separation structure.
Citation Information
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