2024 |
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![]() | Seo, Myungeun; Park, Jongmin; Park, Eunsook; Lee, Haeshin 접착제 조성물 및 이의 제조 방법 (adhesive composition and method for preparing same) Patent 10-2728741, 2024. Abstract | BibTeX | Tags: Adhesive Block polymer Micelles Phase separation Thermoresponsive polymers @patent{Lee2024, title = {접착제 조성물 및 이의 제조 방법 (adhesive composition and method for preparing same)}, author = {Myungeun Seo AND Jongmin Park AND Eunsook Park AND Haeshin Lee}, year = {2024}, date = {2024-11-06}, number = {10-2728741}, location = {KR}, abstract = {본 발명은 접착제 조성물 및 이의 제조 방법에 관한 것으로, 보다 상세하게는, 생분해성이 높고 생체 친화적이면서도 우수한 기계적 물성을 가지는 접착제 조성물 및 이의 제조 방법에 관한 것이다.}, keywords = {Adhesive, Block polymer, Micelles, Phase separation, Thermoresponsive polymers}, pubstate = {published}, tppubtype = {patent} } 본 발명은 접착제 조성물 및 이의 제조 방법에 관한 것으로, 보다 상세하게는, 생분해성이 높고 생체 친화적이면서도 우수한 기계적 물성을 가지는 접착제 조성물 및 이의 제조 방법에 관한 것이다. |
2022 |
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![]() | Park, Jongmin; Park, Eunsook; Choi, Siyoung Q; Wu, Jingxian; Park, Jihye; Lee, Hyeonju; Kim, Hyungjun; Lee, Haeshin; Seo, Myungeun Biodegradable block copolymer–tannic acid glue Journal Article JACS Au, 2 (9), pp. 1978–1988, 2022, ISSN: 2691-3704. Abstract | BibTeX | Tags: Adhesive Block polymer Micelles Phase separation Thermoresponsive polymers @article{Seo2022e, title = {Biodegradable block copolymer–tannic acid glue}, author = {Jongmin Park AND Eunsook Park AND Siyoung Q. Choi AND Jingxian Wu AND Jihye Park AND Hyeonju Lee AND Hyungjun Kim AND Haeshin Lee AND Myungeun Seo}, url = {https://pubs.acs.org/doi/10.1021/jacsau.2c00241}, doi = {10.1021/jacsau.2c00241}, issn = {2691-3704}, year = {2022}, date = {2022-08-22}, journal = {JACS Au}, volume = {2}, number = {9}, pages = {1978–1988}, abstract = {Bioadhesives are becoming an essential and important ingredient in medical science. Despite numerous reports, developing adhesive materials that combine strong adhesion, biocompatibility, and biodegradation remains a challenging task. Here, we present a biocompatible yet biodegradable block copolymer-based waterborne superglue that leads to an application of follicle-free hair transplantation. Our design strategy bridges self-assembled, temperature-sensitive block copolymer nanostructures with tannic acid as a sticky and biodegradable polyphenolic compound. The formulation further uniquely offers step-by-step increases in adhesion strength via heating–cooling cycles. Combining the modular design with the thermal treating process enhances the mechanical properties up to 5 orders of magnitude compared to the homopolymer formulation. This study opens a new direction in bioadhesive formulation strategies utilizing block copolymer nanotechnology for systematic and synergistic control of the material’s properties.}, keywords = {Adhesive, Block polymer, Micelles, Phase separation, Thermoresponsive polymers}, pubstate = {published}, tppubtype = {article} } Bioadhesives are becoming an essential and important ingredient in medical science. Despite numerous reports, developing adhesive materials that combine strong adhesion, biocompatibility, and biodegradation remains a challenging task. Here, we present a biocompatible yet biodegradable block copolymer-based waterborne superglue that leads to an application of follicle-free hair transplantation. Our design strategy bridges self-assembled, temperature-sensitive block copolymer nanostructures with tannic acid as a sticky and biodegradable polyphenolic compound. The formulation further uniquely offers step-by-step increases in adhesion strength via heating–cooling cycles. Combining the modular design with the thermal treating process enhances the mechanical properties up to 5 orders of magnitude compared to the homopolymer formulation. This study opens a new direction in bioadhesive formulation strategies utilizing block copolymer nanotechnology for systematic and synergistic control of the material’s properties. |
2020 |
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![]() | Lee, Daiheon; Hwang, Honggu; Kim, Jun-Sung; Park, Jongmin; Youn, Donghwan; Kim, Duhwan; Hahn, Jungseok; Seo, Myungeun; Lee, Haeshin VATA: a poly(vinyl alcohol)- and tannic acid-based nontoxic underwater adhesive Journal Article ACS Appl. Mater. Interfaces, 12 (18), pp. 20933–20941, 2020. Abstract | BibTeX | Tags: Adhesive Noncovalent interaction Tannic acid @article{Lee2020d, title = {VATA: a poly(vinyl alcohol)- and tannic acid-based nontoxic underwater adhesive}, author = {Daiheon Lee and Honggu Hwang and Jun-Sung Kim and Jongmin Park and Donghwan Youn and Duhwan Kim and Jungseok Hahn and Myungeun Seo and Haeshin Lee}, year = {2020}, date = {2020-03-31}, journal = {ACS Appl. Mater. Interfaces}, volume = {12}, number = {18}, pages = {20933–20941}, abstract = {Few studies aiming to develop a glue with an underwater reusable adhesive property have been reported because combining the two properties of reusable adhesion and underwater adhesion into a single glue formulation is a challenging issue. Herein, preparation of a simple mixture of poly(vinyl alcohol) (PVA) and a well-known phenolic compound, namely, tannic acid (TA), results in an underwater glue exhibiting reusable adhesion. We named the adhesive VATA (PVA + TA). Using VATA, two stainless steel objects (0.77 kg each) are able to be instantly attached. In addition to the high adhesive strength, surface-applied VATA in water retains its adhesive capability even after 24 h. In contrast, cyanoacrylate applied under the same water condition rapidly loses its adhesive power. Another advantage is that VATA’s adhesion is reusable. Bonded objects can be forcibly detached, and then the detached ones can be reattached by the residual VATA. VATA maintains nearly 100% of its initial adhesive force, even after 10 repetitions of attach–detach cycles. VATA bonds various materials ranging from metals and polymers to ceramics. Particularly, we first attempt to test the toxicity of the underwater adhesives using an invertebrate nematode, Caenorhabditis elegans and gold fish (vertebrate) due to potential release to the environment.}, keywords = {Adhesive, Noncovalent interaction, Tannic acid}, pubstate = {published}, tppubtype = {article} } Few studies aiming to develop a glue with an underwater reusable adhesive property have been reported because combining the two properties of reusable adhesion and underwater adhesion into a single glue formulation is a challenging issue. Herein, preparation of a simple mixture of poly(vinyl alcohol) (PVA) and a well-known phenolic compound, namely, tannic acid (TA), results in an underwater glue exhibiting reusable adhesion. We named the adhesive VATA (PVA + TA). Using VATA, two stainless steel objects (0.77 kg each) are able to be instantly attached. In addition to the high adhesive strength, surface-applied VATA in water retains its adhesive capability even after 24 h. In contrast, cyanoacrylate applied under the same water condition rapidly loses its adhesive power. Another advantage is that VATA’s adhesion is reusable. Bonded objects can be forcibly detached, and then the detached ones can be reattached by the residual VATA. VATA maintains nearly 100% of its initial adhesive force, even after 10 repetitions of attach–detach cycles. VATA bonds various materials ranging from metals and polymers to ceramics. Particularly, we first attempt to test the toxicity of the underwater adhesives using an invertebrate nematode, Caenorhabditis elegans and gold fish (vertebrate) due to potential release to the environment. |