Preparation method of novel dodecagonal four-crown ether covalent organic framework material and application of chiral screening thereof

By preparing a novel twelve-crown tetraether covalent organic framework material CCOF-HTOD-1, the problems of instability and low efficiency of chiral sieving materials were solved, achieving efficient and selective chiral drug detection and supporting the recycling of materials.

CN119431701BActive Publication Date: 2026-01-27CHONGQING UNIV OF ARTS & SCI
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Patent Information

Application Number
CN202411645771.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-18
Publication Date
2026-01-27
Estimated Expiration
2044-11-18

AI Technical Summary

Technical Problem

Existing technologies have shown that chiral sieving materials are unstable and inefficient, while traditional fluorescent materials are complex and costly to use in chiral drug detection.

Method used

A novel twelve-crown tetraether covalent organic framework material, CCOF-HTOD-1, was prepared by chemical reaction at a specific ratio and temperature. The CCOF-HTOD-1 material with a uniform structure was obtained by washing with NaOH and organic solvent.

Benefits of technology

It achieves highly efficient and selective detection of chiral drugs, and the material is recyclable, with higher detection efficiency than traditional materials.

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Abstract

The application provides a synthesis method of a novel dodecakis crown four ether group-based covalent organic framework material based on chiral screening. L -PGL, D -PGL, L -PAL, D -TPL, L -TPL, D -TPL). The CCOF-HTOD-1 prepared by the application has the advantages of simple preparation method, large-scale preparation, uniform structure of the prepared novel dodecakis crown four ether covalent organic framework material, dispersion facilitation, excellent CD optical activity and the like, and the CCOF-HTOD-1 has the excellent performances of high detection efficiency, high selectivity and recyclability for different chiral drugs, and can solve the problems of difficult separation and low detection efficiency of common chiral drugs.
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Description

Technical Field

[0001] This invention relates to a method for preparing a novel twelve-crown tetraether covalent organic framework material with simple preparation and mild synthesis conditions, and its application in chiral sieving, belonging to the field of fluorescence detection. Background Technology

[0002] Chirality is a fundamental characteristic of life, playing a crucial role in various chemical and biological processes. Due to its numerous potential applications, testing the chirality of various drugs is essential. Commonly used testing and separation methods, such as asymmetric catalysis, chiral separation, and magnetic techniques, are costly and complex. Fluorescence sensing offers a more efficient and effective strategy for chiral sieving. This requires the preparation of chiral fluorescent materials. Currently, a common strategy for preparing chiral fluorescent materials is to utilize chiral modules to create chiral framework structures. The principle involves using optically active chiral monomers to compose chiral materials, and then converting the inherent chirality of the monomers into the chirality of the material through a chirality conservation process. Based on this principle, and according to the physicochemical properties of the target chiral drug, a feasible strategy is to chemically bond functional ligands (such as crown ethers) that can interact with the target chiral drug to a porous material to prepare a fluorescent probe.

[0003] Covalent organic frameworks (COFs) are a new class of crystalline polymers with tunable molecular composition, structure, and function, similar to metal-organic frameworks (MOFs). Compared to MOFs, fewer COFs have been developed, particularly crown ether-functionalized vinyl COFs for chiral sieving. Currently reported vinyl COFs not only exhibit high fluorescence properties but also demonstrate stability suitable for most chiral sieving scenarios. Therefore, preparing ligands with functionalized crown ether chemical bonds and their derived vinyl CCOFs for chiral sieving is both innovative and reasonable. Thus, we prepared a novel twelve-crown tetraether covalent organic framework for the chiral sieving of common chiral drugs, anticipating its high efficiency, selectivity, and recyclability in the detection of these drugs. Summary of the Invention

[0004] With the aim of chiral screening of different chiral drugs, and based on the methods and strategies described above, the object of this invention is to provide a method for synthesizing a novel twelve-crown tetraether covalent organic framework material, wherein the chiral drug is selected from... L -Phenylenol ( L -PGL) D -Phenylenol ( D -PGL) L -Phenylanol ( L -PAL),D -Phenylanol ( D -PAL), L -Tryptanol ( L -TPL), D -Tryptanol ( D -TPL). The material developed in this invention has the advantages of high efficiency, high selectivity and recyclability in the detection of chiral drugs, and can effectively solve the shortcomings of traditional chiral screening materials such as instability and low efficiency.

[0005] The technical solution of the present invention is as follows:

[0006] A novel CCOF-HTOD-1 material with a twelve-crown tetraether group was prepared according to the following method:

[0007] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD), benzoic anhydride, and benzoic acid were placed into the Schlenk reaction tube, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then heated in an oven for a period of time. After the reaction was completed, it was cooled, washed several times with a mixture of NaOH solution and methanol, then several times with DMF, and then several times with ethanol. It was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0008] The molar ratio of TMP to HTOD is 1:0.1-5;

[0009] The molar ratio of HTOD to benzoic anhydride is 1:0.1-10;

[0010] The molar ratio of benzoic anhydride to benzoic acid is 1:0.01-50;

[0011] The reaction temperature is 100℃-220℃;

[0012] The reaction time is 0.1-7 days.

[0013] The substantial advantages of this invention compared to existing technologies are:

[0014] (1) The preparation method is simple and can be carried out on a large scale;

[0015] (2) The novel twelve-crown tetraether covalent organic framework material obtained has a uniform structure, which is conducive to dispersion;

[0016] (3) CCOF-HTOD-1 has excellent CD optical activity and is suitable for chiral screening of chiral drugs;

[0017] (4) CCOF-HTOD-1 has the advantages of high detection efficiency, high selectivity and recyclability for hand-like drugs. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the synthesis of CCOF-HTOD-1 in this invention.

[0019] Figure 2 This is a schematic diagram of the BET operation of CCOF-HTOD-1 in Embodiment 1 of the present invention;

[0020] Figure 3 This is an XRD diagram of CCOF-HTOD-1 in Embodiment 1 of the present invention;

[0021] Figure 4 This is a schematic diagram of the chiral drug molecule structure detected by CCOF-HTOD-1 in Example 1 of the present invention;

[0022] Figure 5 This is a schematic diagram of the chiral drug detection performance of CCOF-HTOD-1 in Embodiment 1 of the present invention;

[0023] Figure 6 This is a schematic diagram of the selectivity of CCOF-HTOD-1 for chiral drugs in Comparative Example 1 of the present invention;

[0024] Figure 7 This is a schematic diagram of the CCOF-HTOD-1 for detecting the circulation of chiral drugs in Comparative Example 1 of the present invention. Detailed Implementation

[0025] The present invention will be described in detail below with reference to specific embodiments. However, the present invention is not limited to the following embodiments. Any variations or implementations that do not depart from the content and scope of the present invention should be included within the technical scope of the present invention.

[0026] Example 1: Preparation of CCOF-HTOD-1

[0027] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (0.5 mmol, 68.1 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (2 mmol, 452 mg), and benzoic acid (0.2 mmol, 24.6 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 180 °C for 4 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0028] Example 2: Preparation of CCOF-HTOD-1

[0029] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (1 mmol, 136.2 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (2 mmol, 452 mg), and benzoic acid (0.2 mmol, 24.6 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 180 °C for 4 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0030] Example 3: Preparation of CCOF-HTOD-1

[0031] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (0.5 mmol, 68.1 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (4 mmol, 904 mg), and benzoic acid (0.2 mmol, 24.6 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 180 °C for 4 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0032] Example 4: Preparation of CCOF-HTOD-1

[0033] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (0.5 mmol, 68.1 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (2 mmol, 452 mg), and benzoic acid (0.4 mmol, 49.2 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 180 °C for 4 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0034] Example 5: Preparation of CCOF-HTOD-1

[0035] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (0.5 mmol, 68.1 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (2 mmol, 452 mg), and benzoic acid (0.2 mmol, 24.6 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 150 °C for 4 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0036] Example 6: Preparation of CCOF-HTOD-1

[0037] In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine (TMP) (0.5 mmol, 68.1 mg), 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxetine-11,14-p-dibenzaldehyde (HTOD) (0.5 mmol, 140.1 mg), benzoic anhydride (2 mmol, 452 mg), and benzoic acid (0.2 mmol, 24.6 mg) were added, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then reacted in an oven at 180 °C for 2 days. After the reaction was completed, the mixture was cooled, washed three times with a mixture of NaOH and methanol, three times with DMF, and three times with ethanol. The mixture was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1.

[0038] Example 7: Performance Test of CCOF-HTOD-1 for Chiral Drug Detection

[0039] Weigh 10 mg of CCOF-HTOD-1 from Example 1, grind it, and add it to a vial containing 20 ml of water. After thorough stirring and sonication, take out 2 ml of the CCOF-HTOD-1 suspension and place it in a cuvette for fluorescence detection. Add chiral drugs ( ) to the CCOF-HTOD-1 suspension sequentially. L -PGL、 D -PGL、 L -PAL、 D -TPL、 L -TPL、 DA 1 mM (20 μL) chiral drug solution (-TPL) was added, and the fluorescence intensity of the CCOF-HTOD-1 suspension (2 ml) was measured immediately after each addition, for a total of 10 measurements. Throughout the fluorescence detection experiment, the mixed solution was stirred at a constant rate to maintain its homogeneity. The fluorescence detection experiment showed that the CCOF-HTOD-1... L Type chiral drugs ( L -PGL、 L -PAL、 L The quenching efficiencies of TPL reached 93%, 98% and 95%, respectively, which far exceeded the detection performance of other traditional fluorescent materials for chiral drugs.

[0040] Example 8: CCOF-HTOD-1 test for selectivity of chiral drugs

[0041] The CCOF-HTOD-1 sample from Example 1 was respectively subjected to... L Type chiral drugs ( L -PGL、 L -PAL、 L -TPL) of K sv Values ​​and pairs D Type chiral drugs ( D -PGL、 D -PAL、 D -TPL) of K sv The value is used as a ratio; taking PGL as an example, the calculation method is K. QR =K sv[L-PGL] / K sv[D-PGL] A higher value indicates better selectivity. The Ki values ​​obtained from the CCOF-HTOD-1 sample in Example 1 were used to measure the selectivity of PGL, PAL, and TPL. QR The values ​​were 3.56, 6.22 and 4.85, respectively, indicating that the CCOF-HTOD-1 sample has significant selectivity for the detection of PGL, PAL and TPL.

[0042] Example 9: Cyclic performance test of regenerated CCOF-HTOD-1 for chiral drugs

[0043] After conducting chiral drug detection experiments using CCOF-HTOD-1 from Example 1, the CCOF-HTOD-1 that had been tested for chiral drugs was taken, stirred with ethanol at room temperature for 12 hours, washed three times, and filtered. It was then vacuum-dried at 100°C, and the weight change of CCOF-HTOD-1 before and after chiral drug elution was measured. The eluted material was reused for chiral drug detection experiments, with at least 5 cycles.

[0044] CCOF-HTOD-1 pair LAfter five cycles of testing, the maximum detection performance of the chiral drug remains at over 99% of its original maximum detection performance.

[0045] Of course, the above specific embodiments are merely detailed explanations of the corresponding technical solutions of the present invention, and are not limited to the above implementation methods. Those skilled in the art can still make various changes or modifications based on the above embodiments. Not all implementation methods are listed here; any changes or modifications derived from the above principles or mechanisms are within the protection scope of the present invention.

Claims

1. The application of a novel CCOF-HTOD-1 material with a twelve-crown tetraether group in chiral drug detection, characterized in that: The novel COF material with a twelve-crown tetraether group was prepared according to the following method: In a 10 ml Schlenk reaction tube, 2,3,5,6-tetramethylpyrazine, 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxane-dodecene-11,14-p-dibenzaldehyde, benzoic anhydride, and benzoic acid were placed into the Schlenk reaction tube, thoroughly mixed, and subjected to nitrogen protection three times. The reaction system was then heated in an oven for a period of time. After the reaction was completed, it was cooled, washed several times with a mixture of NaOH solution and methanol, then several times with DMF, and then several times with ethanol. It was then dried under vacuum at 100 °C to obtain yellow CCOF-HTOD-1. The chiral drug is L-PGL, L-PAL, or L-TPL.

2. The application as described in claim 1, characterized in that: The molar ratio of 2,3,5,6-tetramethylpyrazine to 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxane-dodecene-11,14-p-dibenzaldehyde is 1:0.1-5.

3. The application as described in claim 1, characterized in that: The molar ratio of 2,3,5,6,8,9-hexahydrobenzo[B][1,4,7,10]tetraoxane-dodecene-11,14-p-dibenzaldehyde to benzoic anhydride is 1:0.1-10.

4. The application as described in claim 1, characterized in that: The molar ratio of benzoic anhydride to benzoic acid is 1:0.01-50.

5. The application as described in claim 1, characterized in that: The reaction temperature is 100℃-220℃.

6. The application as described in claim 1, characterized in that: The reaction time is 0.1-7 days.

7. The application as described in claim 1, characterized in that: The KQR values ​​of the CCOF-HTOD-1 sample for PGL, PAL and TPL were 3.56, 6.22 and 4.85, respectively.

8. The application as described in claim 1, characterized in that: The CCOF-HTOD-1 can maintain more than 99% of its original maximum detection performance for L-type chiral drugs after 5 cycles of testing.

Citation Information

Patent Citations

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  • Two-dimensional covalent organic framework material containing crown ether group as well as preparation method and application of two-dimensional covalent organic framework material

    CN118221895A