Special Issue
  • Boronic Ester Crosslinked Gels for High Strain Rate Stress Wave Attenuation
  • Gyeongmin Park*, Dongwon You*, Jimin An*, Sejin Choi**†, Suwon Bae***†, Jaejun Lee*†

  • * Department of Polymer Science and Engineering, Pusan National University
    ** Department of Organic Material Science and Engineering, Pusan National University
    *** School of Mechanical Engineering, Pusan National University

  • This article is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

References
  • 1. Peters, A.B., Zhang, D., Chen, S., Ott, C., Oses, C., Curtarolo, S., McCue, I., Pollock, T.M., and Eswarappa Prameela, S., “Materials n for Hypersonics,” Nature Communications, Vol. 15, No. 1, 2024, pp. 3328.
  •  
  • 2. Eswarappa Prameela, S., Pollock, T.M., Raabe, D., Meyers, M.A., Aitkaliyeva, A., Chintersingh, K.-L., Cordero, Z.C., and GraBrady, L., “Materials for Extreme Environments,” Nature Reviews Materials, Vol. 8, No. 2, 2023, pp. 81-88.
  •  
  • 3. Weppner, J., Linsenmeyer, M., and Ide, W., “Military Blast-Related Traumatic Brain Injury,” Current Physical Medicine and Rehaion Reports, Vol. 7, No. 4, 2019, pp. 323-332.
  •  
  • 4. Ekström, J., Rempling, R., and Plos, M., “Spalling in Concrete Subjected to Shock Wave Blast,” Engineering Structures, Vol. 122, pp. 72-82.
  •  
  • 5. Yao, K., Liu, Z., Li, T., Guo, B., and Zhuang, Z., “Mesoscale Structure-based Investigation of Polyurea Dynamic Modulus and -wave Dissipation,” Polymer, Vol. 202, 2020, pp. 122741.
  •  
  • 6. Gyeongmin, P., Seungrae, C., Hyejin, K., and Jaejun, L., “Design of Polymer Composites for Effective Shockwave Attenuation”, osites Research, Vol. 37, No. 1, 2024, pp. 21-31.
  •  
  • 7. Ding, L., Wang, Y., Lin, J., Ma, M., Hu, J., Qiu, X., Wu, C., and Feng, C., “Recent Advances in Polyurea Elastomers and Their Apons in Blast Protection: A Review,” Journal of Materials Science, Vol. 59, No. 32, 2024, pp. 14893-14923.
  •  
  • 8. Lee, J., Park, G., Lee, D., Shin, J., Ahn, C.-H., Lee, J., and Kim, T.A., “Principles for Designing Sustainable and High-strain Rate Wave Dissipating Materials,” Materials Horizons, Vol. 11, 2024, pp. 5220-5229.
  •  
  • 9. Lee, J., Jing, B.B., Porath, L.E., Sottos, N.R., and Evans, C.M., “Shock Wave Energy Dissipation in Catalyst-Free Poly(dimethylsiloxane) Vitrimers,” Macromolecules, Vol. 53, No. 12, 2020, pp. 4741-4747.
  •  
  • 10. Vega, D.A., Lance, P., Zorzi, E., Register, R.A., and Gómez, L.R., “Shock Compression of Semiflexible Polymers,” Soft Matter, Vol. 19, No. 32, 2023, pp. 6131-6139.
  •  
  • 11. Veysset, D., Sun, Y., Lem, J., Kooi, S.E., Maznev, A.A., Cole, S.T., Mrozek, R.A., Lenhart, J.L., and Nelson, K.A., “High-Strain-Rate Behavior of a Viscoelastic Gel Under High-Velocity Microparticle Impact,” Experimental Mechanics, Vol. 60, No. 9, 2020, pp. 1179-1186.
  •  
  • 12. Song, Y., Kim, M.G., Yi, H.G., and Lee, D., “Nonlinear Rheological Properties of Endothelial Cell Laden-cellulose Nanofibrils Hydrogels,” Composites Research, Vol. 35, No. 3, 2022, pp. 153-160.
  •  
  • 13. Accardo, J.V., and Kalow, J.A., “Reversibly Tuning Hydrogel Stiffness Through Photocontrolled Dynamic Covalent Crosslinks,” Chemical Science, Vol. 9, No. 27, 2018, pp. 5987-5993.
  •  
  • 14. Huang, J., Xu, Y., Qi, S., Zhou, J., Shi, W., Zhao, T., and Liu, M., “Ultrahigh Energy-dissipation Elastomers by Precisely Tailoring the Relaxation of Confined Polymer Fluids,” Nature Communications, Vol. 12, No. 1, 2021, pp. 3610.
  •  
  • 15. Bao, B., Zeng, Q., Li, K., Wen, J., Zhang, Y., Zheng, Y., Zhou, R., Shi, C., Chen, T., Xiao, C., Chen, B., Wang, T., Yu, K., Sun, Y., Lin, Q., He, Y., Tu, S., and Zhu, L., “Rapid Fabrication of Physically Robust Hydrogels,” Nature Materials, Vol. 22, No. 10, 2023, pp. 1253-1260.
  •  
  • 16. Liu, J., Lin, S., Liu, X., Qin, Z., Yang, Y., Zang, J., and Zhao, X., “Fatigue-resistant Adhesion of Hydrogels,” Nature Communications, Vol. 11, No. 1, 2020, pp. 1071.
  •  
  • 17. Xu, Z., Lu, J., Lu, D., Li, Y., Lei, H., Chen, B., Li, W., Xue, B., Cao, Y., and Wang, W., “Rapidly Damping Hydrogels Engineered Through Molecular Friction,” Nature Communications, Vol. 15, No. 1, 2024, pp. 4895.
  •  
  • 18. Zych, A., Tellers, J., Bertolacci, L., Ceseracciu, L., Marini, L., Mancini, G., and Athanassiou, A., “Biobased, Biodegradable, Self-Healing Boronic Ester Vitrimers from Epoxidized Soybean Oil Acrylate,” ACS Applied Polymer Materials, Vol. 3, No. 2, 2021, pp. 1135-1144.
  •  

This Article

Correspondence to

  • Sejin Choi**, Suwon Bae***, Jaejun Lee*
  • * Department of Polymer Science and Engineering, Pusan National University
    ** Department of Organic Material Science and Engineering, Pusan National University
    *** School of Mechanical Engineering, Pusan National University

  • E-mail: sejin@pusan.ac.kr, suwon.bae@pusan.ac.kr, jlee-pse