2023 |
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![]() | Jeon, Seok Woo; Seo, Myungeun; Kim, Ki Sun; Lee, Jin Ho; Lee, Jeonghyeon 3차원 정렬된 나노구조 및 블록공중합체를 이용한 3차원 계층적 나노구조체 제조방법 Patent 10-2728741, 2023. Abstract | BibTeX | Tags: Block polymer Hierarchical pore structure Macroporous Mesoporous @patent{Lee2023, title = {3차원 정렬된 나노구조 및 블록공중합체를 이용한 3차원 계층적 나노구조체 제조방법}, author = {Seok Woo Jeon AND Myungeun Seo AND Ki Sun Kim AND Jin Ho Lee AND Jeonghyeon Lee}, url = {https://doi.org/10.8080/1020210080405}, year = {2023}, date = {2023-04-14}, number = {10-2728741}, location = {KR}, abstract = {개시된 3차원 계층적 나노구조체의 제조 방법은, 다공성 주형을 형성하는 단계, 상기 다공성 주형의 기공 내에 블록공중합 용액을 제공하는 단계, 상기 블록공중합 용액의 중합 반응을 진행하여, 상기 다공성 주형의 역상을 형상을 가지며 서로 다른 용해 특성을 갖는 지지블록과 희생블록을 포함하는 상분리된 3차원 구조체를 형성하는 단계, 상기 다공성 주형을 제거하는 단계 및 상기 상분리된 3차원 구조체의 희생블록을 제거하는 단계를 포함하는 3차원 계층적 나노구조체의 제조방법을 포함한다. 이에 따르면, 다양한 응용분야에서 필요로 하는 최적화된 형태와 크기의 나노구조를 제공할 수 있다. }, keywords = {Block polymer, Hierarchical pore structure, Macroporous, Mesoporous}, pubstate = {published}, tppubtype = {patent} } 개시된 3차원 계층적 나노구조체의 제조 방법은, 다공성 주형을 형성하는 단계, 상기 다공성 주형의 기공 내에 블록공중합 용액을 제공하는 단계, 상기 블록공중합 용액의 중합 반응을 진행하여, 상기 다공성 주형의 역상을 형상을 가지며 서로 다른 용해 특성을 갖는 지지블록과 희생블록을 포함하는 상분리된 3차원 구조체를 형성하는 단계, 상기 다공성 주형을 제거하는 단계 및 상기 상분리된 3차원 구조체의 희생블록을 제거하는 단계를 포함하는 3차원 계층적 나노구조체의 제조방법을 포함한다. 이에 따르면, 다양한 응용분야에서 필요로 하는 최적화된 형태와 크기의 나노구조를 제공할 수 있다. |
2021 |
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![]() | Seo, Myungeun; Park, Jongmin 11,180,626, 2021. Abstract | BibTeX | Tags: Block polymer Emulsion Hierarchical pore structure Macroporous Mesoporous PIMS Porous polymer RAFT polymerization @patent{Park2021, title = {Method of preparing hierarchically porous polymers and hierarchically porous polymers prepared thereby}, author = {Myungeun Seo AND Jongmin Park}, year = {2021}, date = {2021-11-23}, number = {11,180,626}, location = {US}, abstract = {The present invention relates to a method of preparing a hierarchically porous polymer and a hierarchically porous polymer prepared thereby. The method comprises the steps of: (a) polymerizing an external oil phase of a high internal phase emulsion (HIPE) consisting aqueous droplets to produce a cross-linked block copolymer; (b) obtaining a macroporous polymer with interconnected macropores by removing the aqueous droplets; and (c) treating the obtained porous polymer with a base, thereby obtaining a hierarchically porous polymer having three-dimensional mesopores formed in the macroporous walls. According to the method, the macropore size and mesopore size of the hierarchically porous polymer can all be controlled. The hierarchically porous polymer prepared by the method can easily separate polymers having different sizes, and thus is highly useful in the polymer separation field.}, keywords = {Block polymer, Emulsion, Hierarchical pore structure, Macroporous, Mesoporous, PIMS, Porous polymer, RAFT polymerization}, pubstate = {published}, tppubtype = {patent} } The present invention relates to a method of preparing a hierarchically porous polymer and a hierarchically porous polymer prepared thereby. The method comprises the steps of: (a) polymerizing an external oil phase of a high internal phase emulsion (HIPE) consisting aqueous droplets to produce a cross-linked block copolymer; (b) obtaining a macroporous polymer with interconnected macropores by removing the aqueous droplets; and (c) treating the obtained porous polymer with a base, thereby obtaining a hierarchically porous polymer having three-dimensional mesopores formed in the macroporous walls. According to the method, the macropore size and mesopore size of the hierarchically porous polymer can all be controlled. The hierarchically porous polymer prepared by the method can easily separate polymers having different sizes, and thus is highly useful in the polymer separation field. |
2020 |
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![]() | Seo, Myungeun; Park, Jongmin 10-2187683, 2020. BibTeX | Tags: Block polymer Emulsion Hierarchical pore structure Macroporous Mesoporous PIMS Porous polymer RAFT polymerization @patent{Seo2020d, title = {계층적 다공성 고분자의 제조방법 및 이로부터 제조된 계층적 다공성 고분자 (method of preparing hierarchically porous polymers and hierarchically porous polymers prepared thereby)}, author = {Myungeun Seo and Jongmin Park}, year = {2020}, date = {2020-12-01}, number = {10-2187683}, location = {KR}, keywords = {Block polymer, Emulsion, Hierarchical pore structure, Macroporous, Mesoporous, PIMS, Porous polymer, RAFT polymerization}, pubstate = {published}, tppubtype = {patent} } |
2018 |
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![]() | Park, Jongmin; Kim, KyuHan; Seo, Myungeun Chem. Commun., 54 , pp. 7908-7911, 2018. Abstract | BibTeX | Tags: Block polymer Emulsion Hierarchical pore structure Hyper-cross-linking Macroporous Mesoporous Microporous PIMS Porous polymer RAFT polymerization @article{Park2018, title = {Hyper-cross-linked polymer with controlled multiscale porosity via polymerization-induced microphase separation within high internal phase emulsion}, author = {Jongmin Park and KyuHan Kim and Myungeun Seo}, url = {https://pubs.rsc.org/en/content/articlelanding/2018/cc/c8cc03508c#!divAbstract}, year = {2018}, date = {2018-06-20}, journal = {Chem. Commun.}, volume = {54}, pages = {7908-7911}, abstract = {We report the preparation of hierarchically porous polymers containing fully interconnected and controlled micro-, meso-, and macropores, where a hyper-cross-linked microporous polymer skeleton forms a reticulating mesoporous wall that supports a highly porous macropore framework. These materials provide high specific surface area and >90% porosity, useful for rapid sorption of organic molecules.}, keywords = {Block polymer, Emulsion, Hierarchical pore structure, Hyper-cross-linking, Macroporous, Mesoporous, Microporous, PIMS, Porous polymer, RAFT polymerization}, pubstate = {published}, tppubtype = {article} } We report the preparation of hierarchically porous polymers containing fully interconnected and controlled micro-, meso-, and macropores, where a hyper-cross-linked microporous polymer skeleton forms a reticulating mesoporous wall that supports a highly porous macropore framework. These materials provide high specific surface area and >90% porosity, useful for rapid sorption of organic molecules. |
2017 |
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![]() | Park, Jongmin; Saba, Stacey A; Hillmyer, Marc A; Kang, Dong-Chang; Seo, Myungeun Effect of homopolymer in polymerization-induced microphase separation process Journal Article Polymer, 126 , pp. 338-351, 2017. Abstract | BibTeX | Tags: Blend Block polymer Hierarchical pore structure Macroporous Mesoporous PIMS Porous polymer RAFT polymerization @article{Park2017, title = {Effect of homopolymer in polymerization-induced microphase separation process}, author = {Jongmin Park and Stacey A. Saba and Marc A. Hillmyer and Dong-Chang Kang and Myungeun Seo}, url = {https://www.sciencedirect.com/science/article/abs/pii/S003238611730424X}, year = {2017}, date = {2017-09-22}, journal = {Polymer}, volume = {126}, pages = {338-351}, abstract = {We report on the phase separation behaviors of polymerization mixtures containing a polylactide macro-chain transfer agent (PLA-CTA), styrene, divinylbenzene, hydroxyl-terminated PLA (PLA-OH), and a molecular chain transfer agent which enable the ability to tune the pore size of a cross-linked polymer monolith in a facile manner. Cross-linked monoliths were produced from the mixtures via reversible addition-fragmentation chain transfer (RAFT) polymerization and converted into cross-linked porous polymers by selective removal of PLA while retaining the parent morphology. We demonstrate that pore sizes are tunable over a wide range of length scales from the meso- to macroporous regimes by adjusting the ratio of PLA-CTA to PLA-OH in the reaction mixture which causes the phase separation mechanism to change from polymerization-induced microphase separation to polymerization-induced phase separation. The possibility of increasing porosity and inducing simultaneous micro- and macrophase separation was also realized by adjustments in the molar mass of PLA which enabled the synthesis of hierarchically meso- and macroporous polymers.}, keywords = {Blend, Block polymer, Hierarchical pore structure, Macroporous, Mesoporous, PIMS, Porous polymer, RAFT polymerization}, pubstate = {published}, tppubtype = {article} } We report on the phase separation behaviors of polymerization mixtures containing a polylactide macro-chain transfer agent (PLA-CTA), styrene, divinylbenzene, hydroxyl-terminated PLA (PLA-OH), and a molecular chain transfer agent which enable the ability to tune the pore size of a cross-linked polymer monolith in a facile manner. Cross-linked monoliths were produced from the mixtures via reversible addition-fragmentation chain transfer (RAFT) polymerization and converted into cross-linked porous polymers by selective removal of PLA while retaining the parent morphology. We demonstrate that pore sizes are tunable over a wide range of length scales from the meso- to macroporous regimes by adjusting the ratio of PLA-CTA to PLA-OH in the reaction mixture which causes the phase separation mechanism to change from polymerization-induced microphase separation to polymerization-induced phase separation. The possibility of increasing porosity and inducing simultaneous micro- and macrophase separation was also realized by adjustments in the molar mass of PLA which enabled the synthesis of hierarchically meso- and macroporous polymers. |