材料科学
光热治疗
石墨烯
纳米技术
混合材料
热塑性聚氨酯
图层(电子)
芯(光纤)
热塑性塑料
氧化物
智能材料
Crystal(编程语言)
纳米复合材料
热的
纳米材料
智能聚合物
混合动力系统
工作(物理)
聚合物
可扩展性
表征(材料科学)
纳米结构
作者
Linfeng Lan,L Wang,Chenguang Wang,Hongyu Zhang
出处
期刊:Nano-micro Letters
[Springer Science+Business Media]
日期:2026-01-05
卷期号:18 (1): 160-160
被引量:1
标识
DOI:10.1007/s40820-025-01996-7
摘要
The growing demand for personalized health care, smart wearables, and advanced environmental monitoring has spurred the development of multifunctional materials that combine flexibility, environmental adaptability, and diverse functionalities. However, conventional materials often failed to integrate these attributes simultaneously, hindering their applicability in next-generation technologies. Here, we present an organic-inorganic hybrid crystalline material with a unique sandwich-like architecture, in which a flexible organic crystal core is encased by reduced graphene oxide (rGO) and thermoplastic polyurethane (TPU). This strategic integration endows the material with fluorescence, cryogenic flexibility, and electrical conductivity, while also enabling dual sensing and actuation capabilities. The rGO layer facilitates real-time humidity (25-90% RH) and temperature (25-180 °C) sensing through environmental interactions, whereas the differential thermal expansion between TPU and the flexible crystal core drives efficient photothermal actuation at - 150 °C for advanced thermal regulation. The hybrid material exhibits stable performance under extreme conditions, making it a promising candidate for biomedical monitoring, flexible electronics, and energy applications. This work establishes hybrid crystalline materials as versatile and scalable platforms for addressing complex technological demands, paving the way for their application in next-generation multifunctional devices.
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