Wuliu Yishun, Dong Weiliang, Huang Guohua, Xie Hui, Yao Pingping, Tan Jiji, Mu Kexin, Zhang Zhili, Chen Yinan, Wang Mingliang, Tian Lei, Zhu Caizhen, Xu Jian
Institute of Low-Dimensional Materials Genome Initiative, College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, 518060, China.
Chengdu Institute of Organic Chemistry, Chinese Academy of Sciences, Chengdu, 610041, China.
Angew Chem Int Ed Engl. 2025 Feb 10;64(7):e202419446. doi: 10.1002/anie.202419446. Epub 2024 Nov 16.
Infrared (IR) transparent polymer materials prepared by inverse vulcanization, as a promising candidate to replace inorganic materials, are new materials for constructing key devices in IR optics. However, it is difficult to achieve a balance between infrared optical and thermal properties in polymers due to the intrinsic infrared absorption of organic materials. Herein, our strategy is to construct a high boiling point symmetrical molecular norbornadiene derivative cross-linking agent (DMMD) which can be inverse vulcanized with molten sulfur, and obtain Poly (S-r-DMMD) with different sulfur content by controlling the feed ratio of sulfur. With the rigid core and low IR activity in DMMD, the prepared polymers exhibit tunable thermal properties (T: 98.3-119.8 °C) and high IR transmittance (medium-wave infrared region (MWIR): 42.9-52.6 %; long-wave infrared region (LWIR): 1.5-5.29 %). In addition, Poly (S-r-DMMD) can be used to prepare large-size free-standing Fresnel lenses for IR imaging by simple hot-pressing, which provides flexibility in the design and production of IR fine lenses. This study provides a novel strategy for balancing the thermal and optical properties of IR transparent polymer materials, while providing relevant references for balancing the IR optical and thermal properties of polymer materials.
通过逆硫化制备的红外(IR)透明聚合物材料,作为替代无机材料的有前途的候选者,是用于构建红外光学关键器件的新材料。然而,由于有机材料固有的红外吸收,在聚合物中难以实现红外光学性能和热性能之间的平衡。在此,我们的策略是构建一种高沸点对称分子降冰片二烯衍生物交联剂(DMMD),其可与熔融硫进行逆硫化,并通过控制硫的进料比获得具有不同硫含量的聚(S-r-DMMD)。由于DMMD中具有刚性核心和低红外活性,所制备的聚合物表现出可调的热性能(T:98.3-119.8 °C)和高红外透过率(中波红外区域(MWIR):42.9-52.6 %;长波红外区域(LWIR):1.5-5.29 %)。此外,聚(S-r-DMMD)可通过简单的热压用于制备用于红外成像的大尺寸自立式菲涅耳透镜,这为红外精密透镜的设计和生产提供了灵活性。本研究为平衡红外透明聚合物材料的热性能和光学性能提供了一种新策略,同时为平衡聚合物材料的红外光学性能和热性能提供了相关参考。