中文
Announcement
More
Progress in Chemistry DOI: 10.7536/PC230907   

Preparation and Application Progress of Inherent Flame-Retardant Polyurethane Foams

Zhicheng Fu*, Luping Feng, Wei Luo, Ting Wang, Jinni Deng, Wenli An, Mingjun Chen*   

  1. Department of Chemistry, School of Science, Xihua University, Chengdu, 610039
  • Received: Revised:
  • Contact: *e-mail: cmjchem@126.com;zcfu@mail.xhu.edu.cn
  • Supported by:
    National Natural Science Foundation of China (U22A20150 and 21975208), and the Central Guide Local Science and Technology Development Special Project of Sichuan Province (2023ZYD0030), and Open and Innovative Fund of Hubei Three Gorges Laboratory (2022LF2021).
Cited
Export

EndNote

Ris

BibTeX

Polyurethane foam, as one of the most important and widely used synthetic polymers since the 20th century, exhibits advantages such as low density, high strength, and excellent thermal insulation. It finds widespread applications in fields like aerospace noise reduction, railway track stabilization, and building insulation. However, its high flammability poses a serious threat to human life and property, limiting its further development. The addition or surface coating of flame retardants can indeed enhance the flame retardancy of polyurethane foam efficiently. However, these methods often result in the migration and precipitation of flame retardants, ultimately compromising its flame retardant properties and internal performance. Alternatively, the copolymerization of reactive flame retardant molecules into the polymer chain offers a more effective solution. This approach not only addresses the issues of flame retardant migration and precipitation but also minimizes the impact on the substrate's properties. As a result, it is highly favored by the industry and holds immense potential for future engineering applications. This review aims to provide a comprehensive overview of various methods for the preparation of intrinsic flame-retardant polyurethane foams over the past decade, focusing on the perspective of monomer molecular design and synthesis. This includes polyol modifications, isocyanate modifications, additive modifications, and other modifications. Furthermore, the review will delve into the challenges that remain to be addressed and offer insights into potential future directions for application development.

CLC Number: 

[1] Jingze Yu, Tengfeng Xie. In-situ Preparation Methods of Hydrogen Peroxide via Water Oxdation [J]. Progress in Chemistry, 2024, 36(2): 177-186.
[2] Dandan Wang, Zhaoxin Lin, Huijie Gu, Yunhui Li, Hongji Li, Jing Shao. Modification and Application of Bi2MoO6 in Photocatalytic Technology [J]. Progress in Chemistry, 2023, 35(4): 606-619.
[3] Zixuan Liao, Yuhui Wang, Jianping Zheng. Research Advance of Carbon-Dots Based Hydrophilic Room Temperature Phosphorescent Composites [J]. Progress in Chemistry, 2023, 35(2): 263-373.
[4] Zhao Lanqing, Hou Minjie, Zhang Da, Zhou Yingjie, Xie Zhipeng, Liang Feng. Poly(Ethylene Oxide)-Based Solid Polymer Electrolytes for Solid-State Sodium Ion Batteries [J]. Progress in Chemistry, 2023, 35(11): 1625-1637.
[5] Li Liqing, Zhong Xiumin, Zhang Lixu, Liu Kunming, Wang Quanbing, Ma Jie. Preparation of Double Network Hydrogels and their Mechanical Modification [J]. Progress in Chemistry, 2023, 35(11): 1674-1685.
[6] Xuan Li, Jiongpeng Huang, Yifan Zhang, Lei Shi. 1D Nanoribbons of 2D Materials [J]. Progress in Chemistry, 2023, 35(1): 88-104.
[7] Yuexiang Zhu, Weiyue Zhao, Chaozhong Li, Shijun Liao. Pt-Based Intermetallic Compounds and Their Applications in Cathodic Oxygen Reduction Reaction of Proton Exchange Membrane Fuel Cell [J]. Progress in Chemistry, 2022, 34(6): 1337-1347.
[8] Fangyuan Li, Junhao Li, Yujie Wu, Kaixiang Shi, Quanbing Liu, Hongjie Peng. Design and Preparation of Electrode Nanomaterials with “Yolk-Shell”Structure for Lithium/Sodium-Ion/Lithium-Sulfur Batteries [J]. Progress in Chemistry, 2022, 34(6): 1369-1383.
[9] Hao Sun, Chaopeng Wang, Jun Yin, Jian Zhu. Fabrication of Electrocatalytic Electrodes for Oxygen Evolution Reaction [J]. Progress in Chemistry, 2022, 34(3): 519-532.
[10] Caiwei Wang, Dongjie Yang, Xueqing Qiu, Wenli Zhang. Applications of Lignin-Derived Porous Carbons for Electrochemical Energy Storage [J]. Progress in Chemistry, 2022, 34(2): 285-300.
[11] Xiangkang Cao, Xiaoguang Sun, Guangyi Cai, Zehua Dong. Durable Superhydrophobic Surfaces: Theoretical Models, Preparation Strategies, and Evaluation Methods [J]. Progress in Chemistry, 2021, 33(9): 1525-1537.
[12] Zhen Zhang, Shuang Zhao, Guobing Chen, Kunfeng Li, Zhifang Fei, Zichun Yang. Preparation and Applications of Silicon Carbide Monolithic Aerogels [J]. Progress in Chemistry, 2021, 33(9): 1511-1524.
[13] Jinzhao Li, Zheng Li, Xupin Zhuang, Jixian Gong, Qiujin Li, Jianfei Zhang. Preparation of Cellulose Nanocrystallines and Their Applications in CompositeMaterials [J]. Progress in Chemistry, 2021, 33(8): 1293-1310.
[14] Lizhong Chen, Qiaobin Gong, Zhe Chen. Preparation and Application of Ultra-Thin Two Dimensional MOF Nanomaterials [J]. Progress in Chemistry, 2021, 33(8): 1280-1292.
[15] Xiaoxiao Xiang, Xiaowen Tian, Huie Liu, Shuang Chen, Yanan Zhu, Yuqin Bo. Controlled Preparation of Graphene-Based Aerogel Beads [J]. Progress in Chemistry, 2021, 33(7): 1092-1099.