TY - JOUR
T1 - Multifunctional Polyphenol Derivatives Enable Tough, Durable Polyurethane Foam for Vibration and Noise Reduction
AU - Xu, Jin
AU - Su, Xing
AU - Xue, Dichang
AU - Sun, Yue
AU - Li, Xiaodong
AU - Wang, Ruibin
AU - Xu, Kangcheng
AU - Ma, Tenglong
AU - Bai, Zichen
AU - Zhang, Lichen
AU - Deng, Zitong
AU - Jiang, Hao
AU - Su, Zhengnan
AU - Zhu, Lixiang
AU - Zhang, Xudong
AU - Zhang, Xufeng
AU - Cao, Chuanbao
AU - Zou, Meishuai
N1 - Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/9/26
Y1 - 2025/9/26
N2 - Polyurethane foams (PUFs) have broad applications in vibrational damping and noise reduction. However, existing PUFs exhibit poor mechanical properties, are prone to failure under harsh conditions, and have a limited frequency range for vibration damping. In this study, we used a compound T-P5as a chain extender for PU molecules. Through chemical bond linkage and multiple hydrogen bonds, the material’s strength and toughness are enhanced, resulting in a tensile strength of 10 MPa for the PUFs and the ability to withstand puncture stress up to 40 MPa. Additionally, the design of multiple dynamic hydrogen bonds and a closed-cell structure effectively absorbs and dissipates energy over a wide frequency range, the T-P5-PUF exhibits good vibration attenuation and sound insulation, and the average sound absorption coefficient can exceed 0.30 with a thickness of only 2 mm. Furthermore, the material’s elasticity and durability have been validated under cyclic loading, UV exposure, high temperatures, and in liquid environments with high metal-ion content. This work not only demonstrates a simple strategy for enhancing the mechanical properties of polyurethane foam materials but also provides opportunities for the large-scale application of PUFs in harsh environments.
AB - Polyurethane foams (PUFs) have broad applications in vibrational damping and noise reduction. However, existing PUFs exhibit poor mechanical properties, are prone to failure under harsh conditions, and have a limited frequency range for vibration damping. In this study, we used a compound T-P5as a chain extender for PU molecules. Through chemical bond linkage and multiple hydrogen bonds, the material’s strength and toughness are enhanced, resulting in a tensile strength of 10 MPa for the PUFs and the ability to withstand puncture stress up to 40 MPa. Additionally, the design of multiple dynamic hydrogen bonds and a closed-cell structure effectively absorbs and dissipates energy over a wide frequency range, the T-P5-PUF exhibits good vibration attenuation and sound insulation, and the average sound absorption coefficient can exceed 0.30 with a thickness of only 2 mm. Furthermore, the material’s elasticity and durability have been validated under cyclic loading, UV exposure, high temperatures, and in liquid environments with high metal-ion content. This work not only demonstrates a simple strategy for enhancing the mechanical properties of polyurethane foam materials but also provides opportunities for the large-scale application of PUFs in harsh environments.
KW - elastic foam
KW - energy dissipation
KW - environmental adaptation
KW - mechanical toughness
KW - multiple dynamic bonds
UR - https://www.scopus.com/pages/publications/105017114344
U2 - 10.1021/acsapm.5c02618
DO - 10.1021/acsapm.5c02618
M3 - Article
AN - SCOPUS:105017114344
SN - 2637-6105
VL - 7
SP - 12657
EP - 12670
JO - ACS Applied Polymer Materials
JF - ACS Applied Polymer Materials
IS - 18
ER -