2022 |
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![]() | Ahn, Nam Young; Lee, Jooyeon; Yeo, Wonjune; Park, Hyojin; Nam, Jiyun; Kim, Min; Seo, Myungeun Patchwork metal-organic frameworks by radical-mediated heterografting of star polymers for surface modification Journal Article Inorg. Chem., 61 (27), pp. 10365-10372, 2022, ISSN: 0020-1669. Abstract | BibTeX | Tags: CCS polymer MOF Polymer particle RAFT polymerization Surface @article{Seo2022d, title = {Patchwork metal-organic frameworks by radical-mediated heterografting of star polymers for surface modification}, author = {Nam Young Ahn AND Jooyeon Lee AND Wonjune Yeo AND Hyojin Park AND Jiyun Nam AND Min Kim AND Myungeun Seo}, url = {https://pubs.acs.org/doi/10.1021/acs.inorgchem.2c00906}, doi = {10.1021/acs.inorgchem.2c00906}, issn = {0020-1669}, year = {2022}, date = {2022-06-27}, journal = {Inorg. Chem.}, volume = {61}, number = {27}, pages = {10365-10372}, abstract = {We report a synthetic methodology for decorating a surface of metal–organic frameworks (MOFs) with polymers through postsynthetic modification. Well-defined polymers with reversibly deactivated radical species at their chain end were reacted with vinyl-functionalized MOFs in the presence of a radical initiator. The radical addition forms a C–C bond between the polymer end with the functional group at the MOF ligand. We used sterically bulky star polymers containing electron-deficient maleimide chain ends, which facilitated modification of the external surface, yielding polymer-grafted MOF composite particles. A patchy MOF particle can also be obtained by simultaneously grafting two polymers and jammed at the immiscible liquid–liquid interface. We further show that the selective removal of a sacrificial polymer would partially expose the surface of MOFs to external environment, which hinders the uptake of macromolecular guests above the critical hydrodynamic size. Overall, four polymer@MOF composites have successfully been achieved through the present postsynthetic patchworks on MOFs with star polymers and selective etching process.}, keywords = {CCS polymer, MOF, Polymer particle, RAFT polymerization, Surface}, pubstate = {published}, tppubtype = {article} } We report a synthetic methodology for decorating a surface of metal–organic frameworks (MOFs) with polymers through postsynthetic modification. Well-defined polymers with reversibly deactivated radical species at their chain end were reacted with vinyl-functionalized MOFs in the presence of a radical initiator. The radical addition forms a C–C bond between the polymer end with the functional group at the MOF ligand. We used sterically bulky star polymers containing electron-deficient maleimide chain ends, which facilitated modification of the external surface, yielding polymer-grafted MOF composite particles. A patchy MOF particle can also be obtained by simultaneously grafting two polymers and jammed at the immiscible liquid–liquid interface. We further show that the selective removal of a sacrificial polymer would partially expose the surface of MOFs to external environment, which hinders the uptake of macromolecular guests above the critical hydrodynamic size. Overall, four polymer@MOF composites have successfully been achieved through the present postsynthetic patchworks on MOFs with star polymers and selective etching process. |
2021 |
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![]() | Nam, Jiyun; Kwon, Sangwoo; Yu, Yong-Guen; Seo, Ho-Bin; Lee, Jae-Suk; Lee, Won Bo; Kim, YongJoo; Seo, Myungeun Folding of sequence-controlled graft copolymers to subdomain-defined single-chain nanoparticles Journal Article Macromolecules, 54 (18), pp. 8829-8838, 2021, ISBN: 0024-9297. Abstract | BibTeX | Tags: CCS polymer Cross-linking Graft copolymer Polymer particle Polymer synthesis ROMP Self-assembly @article{Seo2021b, title = {Folding of sequence-controlled graft copolymers to subdomain-defined single-chain nanoparticles}, author = {Jiyun Nam AND Sangwoo Kwon AND Yong-Guen Yu AND Ho-Bin Seo AND Jae-Suk Lee AND Won Bo Lee AND YongJoo Kim AND Myungeun Seo}, url = {https://pubs.acs.org/doi/full/10.1021/acs.macromol.1c01674}, doi = {10.1021/acs.macromol.1c01674}, isbn = {0024-9297}, year = {2021}, date = {2021-09-17}, journal = {Macromolecules}, volume = {54}, number = {18}, pages = {8829-8838}, abstract = {We developed a methodology, inspired by the folding of proteins, for the precision synthesis of hairy polymer nanoparticles. High-molar mass and narrowly dispersed graft copolymers were synthesized by graft-through ring opening metathesis polymerization, to incorporate a designated number of side chains and dimerizable cinnamic acid groups. Intrachain photodimerization collapsed the backbone and arrested it into a compact globular conformation, resulting in hairy nanoparticles topologically equivalent to a core cross-linked star polymer. The single-chain collapse process translates the molecular information written on the 1D graft copolymer into the 3D globular polymer nanoparticle, like protein folding. Unprecedented control over structural parameters was achieved, including the length, number, and composition of the side chains as well as cross-linking density. Different side chains formed distinct subdomains in the sterically congested nanoparticle state and further self-assembled into micellar aggregates in a selective solvent. Both experimental observations and computational simulations indicated that preorganization of the side chains in the block sequence produces subdomains which primarily follow the backbone length scale, while random sequences showed side chain-dependent scaling. Polymer nanoparticles with discrete multiple subdomains were produced by folding of the ternary block graft copolymers. Drastic differences in the self-assembly behavior of ABC- and ACB-sequenced nanoparticles indicate that the spatial organization of subdomains can be achieved by sequence control.}, keywords = {CCS polymer, Cross-linking, Graft copolymer, Polymer particle, Polymer synthesis, ROMP, Self-assembly}, pubstate = {published}, tppubtype = {article} } We developed a methodology, inspired by the folding of proteins, for the precision synthesis of hairy polymer nanoparticles. High-molar mass and narrowly dispersed graft copolymers were synthesized by graft-through ring opening metathesis polymerization, to incorporate a designated number of side chains and dimerizable cinnamic acid groups. Intrachain photodimerization collapsed the backbone and arrested it into a compact globular conformation, resulting in hairy nanoparticles topologically equivalent to a core cross-linked star polymer. The single-chain collapse process translates the molecular information written on the 1D graft copolymer into the 3D globular polymer nanoparticle, like protein folding. Unprecedented control over structural parameters was achieved, including the length, number, and composition of the side chains as well as cross-linking density. Different side chains formed distinct subdomains in the sterically congested nanoparticle state and further self-assembled into micellar aggregates in a selective solvent. Both experimental observations and computational simulations indicated that preorganization of the side chains in the block sequence produces subdomains which primarily follow the backbone length scale, while random sequences showed side chain-dependent scaling. Polymer nanoparticles with discrete multiple subdomains were produced by folding of the ternary block graft copolymers. Drastic differences in the self-assembly behavior of ABC- and ACB-sequenced nanoparticles indicate that the spatial organization of subdomains can be achieved by sequence control. |
2020 |
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![]() | Kim, Byung Kwon; Kim, Hae Young; Hoang, Thi Tuyet Nhung; Lee, Jung Eun; Kim, Sang Youl; Seo, Myungeun; Lee, Jinhee; Lee, Byongyong 10-2192043, 2020. Abstract | BibTeX | Tags: Electrochemistry LCST Polymer particle @patent{Kim2020, title = {온도감응성 고분자의 상전이 측정방법 및 온도감응성 고분자의 상전이 측정장치 (a method for measuring phase transition of temperature sensitive polymers and a device for measuring concentration)/ }, author = {Byung Kwon Kim AND Hae Young Kim AND Thi Tuyet Nhung Hoang AND Jung Eun Lee AND Sang Youl Kim AND Myungeun Seo AND Jinhee Lee AND Byongyong Lee}, year = {2020}, date = {2020-12-10}, number = {10-2192043}, location = {KR}, abstract = {본 발명은 온도감응성 고분자의 상전이 측정방법 및 온도감응성 고분자의 상전이 측정장치에 관한 것이다.}, keywords = {Electrochemistry, LCST, Polymer particle}, pubstate = {published}, tppubtype = {patent} } 본 발명은 온도감응성 고분자의 상전이 측정방법 및 온도감응성 고분자의 상전이 측정장치에 관한 것이다. |
![]() | Shin, Isaac; Seo, Myungeun Viscosifying a noncovalently joined polymer nanoparticle solution upon heating Journal Article Macromolecules, 53 (3), pp. 965–972, 2020. Abstract | BibTeX | Tags: Noncovalent interaction Polymer particle RAFT polymerization Viscosity @article{Shin2020, title = {Viscosifying a noncovalently joined polymer nanoparticle solution upon heating}, author = {Isaac Shin and Myungeun Seo}, year = {2020}, date = {2020-01-28}, journal = {Macromolecules}, volume = {53}, number = {3}, pages = {965–972}, abstract = {We report the synthesis of a series of statistical terpolymer poly[(methyl methacrylate)-co-lauryl methacrylate-co-2-((3,5-bis(4-carbamoyl-3-(trifluoromethyl)phenoxy)benzyloxy)carbonylamino)ethyl methacrylate] (P(MMA-co-LMA-co-BMA)) by reversible addition–fragmentation chain transfer polymerization and their aggregation behaviors in solution. In toluene, the solution behavior of terpolymer was controlled by the molar fractions of lauryl methacrylate (LMA) and benzamide-containing methacrylate (BMA) in the polymer, which increased solubility and promoted hydrogen bonding between the primary aromatic amides, respectively. Temperature-dependent 1H NMR spectroscopy also indicated gradual dissociation of the hydrogen bonds with increasing temperature. For the polymer containing 2.7 mol % of LMA and 2.7 mol % of BMA repeating units, we demonstrated that dissolving the polymer in tetrahydrofuran as a good solvent and switching the solvent with toluene produced polymer nanoparticles with diameters of several tens of nanometers, as observed by dynamic light scattering. Intramolecular hydrogen bonding was dominant and induced the noncovalent chain collapse. When the temperature of the particle dispersion in toluene at a concentration > 30 mg/mL was increased from RT to 50 °C, a significant increase in viscosity was observed. This behavior was not observed in a toluene solution of poly(methyl methacrylate), which showed decreased viscosity at a higher temperature. The viscosity increase was accompanied by a decrease in the particle size, and both were attributed to the dissociation of some intramolecular hydrogen bonds within the particles, which can increase the number of individual chains in toluene and result in more intermolecular interactions.}, keywords = {Noncovalent interaction, Polymer particle, RAFT polymerization, Viscosity}, pubstate = {published}, tppubtype = {article} } We report the synthesis of a series of statistical terpolymer poly[(methyl methacrylate)-co-lauryl methacrylate-co-2-((3,5-bis(4-carbamoyl-3-(trifluoromethyl)phenoxy)benzyloxy)carbonylamino)ethyl methacrylate] (P(MMA-co-LMA-co-BMA)) by reversible addition–fragmentation chain transfer polymerization and their aggregation behaviors in solution. In toluene, the solution behavior of terpolymer was controlled by the molar fractions of lauryl methacrylate (LMA) and benzamide-containing methacrylate (BMA) in the polymer, which increased solubility and promoted hydrogen bonding between the primary aromatic amides, respectively. Temperature-dependent 1H NMR spectroscopy also indicated gradual dissociation of the hydrogen bonds with increasing temperature. For the polymer containing 2.7 mol % of LMA and 2.7 mol % of BMA repeating units, we demonstrated that dissolving the polymer in tetrahydrofuran as a good solvent and switching the solvent with toluene produced polymer nanoparticles with diameters of several tens of nanometers, as observed by dynamic light scattering. Intramolecular hydrogen bonding was dominant and induced the noncovalent chain collapse. When the temperature of the particle dispersion in toluene at a concentration > 30 mg/mL was increased from RT to 50 °C, a significant increase in viscosity was observed. This behavior was not observed in a toluene solution of poly(methyl methacrylate), which showed decreased viscosity at a higher temperature. The viscosity increase was accompanied by a decrease in the particle size, and both were attributed to the dissociation of some intramolecular hydrogen bonds within the particles, which can increase the number of individual chains in toluene and result in more intermolecular interactions. |
2019 |
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![]() | Ahn, Nam Young; Seo, Myungeun Synthetic route-dependent intramolecular segregation in heteroarm core cross-linked star polymers as Janus-like nanoobjects Journal Article Polym. Chem., 11 , pp. 449-460, 2019, (Invited Paper to a Special Issue “Emerging Investigators 2020”). Abstract | BibTeX | Tags: Alternating copolymerization CCS polymer Polymer particle RAFT polymerization Self-assembly @article{Ahn2019, title = {Synthetic route-dependent intramolecular segregation in heteroarm core cross-linked star polymers as Janus-like nanoobjects}, author = {Nam Young Ahn and Myungeun Seo}, year = {2019}, date = {2019-10-09}, journal = {Polym. Chem.}, volume = {11}, pages = {449-460}, abstract = {Heteroarm core cross-linked star (CCS) polymers consist of two different polymer chains covalently joined to a cross-linked core. We investigated their self-assembly behavior to understand whether intramolecular segregation can be induced during synthesis, to produce spatial domains enriched with each polymer, and whether they would exhibit well-defined microphase separation morphologies as a result. Heteroarm CCS polymers containing polylactide (PLA) and polystyrene (PS) arms were synthesized by reversible addition–fragmentation chain transfer copolymerization of styrene and 1,2-bis(maleimidoethane) in the presence of a PLA-macro chain transfer agent (PLA-CTA), followed by chain extension with styrene (the in–out route). Dynamic light scattering, transmission electron microscopy, and small angle X-ray scattering analyses were employed to examine the self-assembly behavior in toluene and acetonitrile, as a relatively neutral and a PLA-selective solvent, respectively. Above a critical PS molar mass, lamellar-like and spherical morphologies were observed, formed by microphase separation into discrete PLA and PS domains. The increase in order with increasing PS molar mass was consistent with the segregation strength-dependent microphase separation behavior. In contrast, when the CCS polymer was synthesized by simultaneously joining PLA and PS chains (the multi macroinitiatior route) it produced rather ill-defined self-assemblies, suggesting that styrene chain extension via the in–out process is important to achieve intramolecular segregation. Using the more PLA-selective acetonitrile as a polymerization solvent indeed produced more well-defined supermicelles with PS cores and PLA coronas, confirming that intramolecular segregation can be driven by the incompatibility of the growing PS to the intramolecular environment, including PLA and the solvent.}, note = {Invited Paper to a Special Issue “Emerging Investigators 2020”}, keywords = {Alternating copolymerization, CCS polymer, Polymer particle, RAFT polymerization, Self-assembly}, pubstate = {published}, tppubtype = {article} } Heteroarm core cross-linked star (CCS) polymers consist of two different polymer chains covalently joined to a cross-linked core. We investigated their self-assembly behavior to understand whether intramolecular segregation can be induced during synthesis, to produce spatial domains enriched with each polymer, and whether they would exhibit well-defined microphase separation morphologies as a result. Heteroarm CCS polymers containing polylactide (PLA) and polystyrene (PS) arms were synthesized by reversible addition–fragmentation chain transfer copolymerization of styrene and 1,2-bis(maleimidoethane) in the presence of a PLA-macro chain transfer agent (PLA-CTA), followed by chain extension with styrene (the in–out route). Dynamic light scattering, transmission electron microscopy, and small angle X-ray scattering analyses were employed to examine the self-assembly behavior in toluene and acetonitrile, as a relatively neutral and a PLA-selective solvent, respectively. Above a critical PS molar mass, lamellar-like and spherical morphologies were observed, formed by microphase separation into discrete PLA and PS domains. The increase in order with increasing PS molar mass was consistent with the segregation strength-dependent microphase separation behavior. In contrast, when the CCS polymer was synthesized by simultaneously joining PLA and PS chains (the multi macroinitiatior route) it produced rather ill-defined self-assemblies, suggesting that styrene chain extension via the in–out process is important to achieve intramolecular segregation. Using the more PLA-selective acetonitrile as a polymerization solvent indeed produced more well-defined supermicelles with PS cores and PLA coronas, confirming that intramolecular segregation can be driven by the incompatibility of the growing PS to the intramolecular environment, including PLA and the solvent. |
2018 |
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![]() | Hoang, Nhung T T; Lee, Jinhee; Lee, Byungyong; Kim, Hae-Young; Lee, Jungeun; Nguyen, Truc Ly; Seo, Myungeun; Kim, Sang Youl; Kim, Byung-Kwon Observing phase transition of a temperature-responsive polymer using electrochemical collisions on an ultramicroelectrode Journal Article Anal. Chem., 90 , pp. 7261-7266, 2018. Abstract | BibTeX | Tags: CGCP Electrochemistry LCST Poly(arylene ether) Polymer particle @article{Hoang2018, title = {Observing phase transition of a temperature-responsive polymer using electrochemical collisions on an ultramicroelectrode}, author = {Nhung T. T. Hoang and Jinhee Lee and Byungyong Lee and Hae-Young Kim and Jungeun Lee and Truc Ly Nguyen and Myungeun Seo and Sang Youl Kim and Byung-Kwon Kim}, url = {https://pubs.acs.org/doi/10.1021/acs.analchem.8b00437}, year = {2018}, date = {2018-05-31}, journal = {Anal. Chem.}, volume = {90}, pages = {7261-7266}, abstract = {Herein, a study on a new lower critical solution temperature (LCST) polymer in an organic solvent by an electrochemical technique has been reported. The phase-transition behavior of poly(arylene ether sulfone) (PAES) was examined on 1,2-dimethoxyethane (DME). At a temperature above the LCST point, polymer molecules aggregated to create polymer droplets. These droplets subsequently collided with an ultramicroelectrode (UME), resulting in a new form of staircase current decrease. The experimental collision frequency and collision signal were analyzed in relation to the concentration of the polymer. In addition, the degree of polymer aggregation associated with temperature change was also observed.}, keywords = {CGCP, Electrochemistry, LCST, Poly(arylene ether), Polymer particle}, pubstate = {published}, tppubtype = {article} } Herein, a study on a new lower critical solution temperature (LCST) polymer in an organic solvent by an electrochemical technique has been reported. The phase-transition behavior of poly(arylene ether sulfone) (PAES) was examined on 1,2-dimethoxyethane (DME). At a temperature above the LCST point, polymer molecules aggregated to create polymer droplets. These droplets subsequently collided with an ultramicroelectrode (UME), resulting in a new form of staircase current decrease. The experimental collision frequency and collision signal were analyzed in relation to the concentration of the polymer. In addition, the degree of polymer aggregation associated with temperature change was also observed. |