School of Engineering, Zhejiang A&F University, Hangzhou 311300, China.
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Nano Lett. 2021 Jan 13;21(1):397-404. doi: 10.1021/acs.nanolett.0c03738. Epub 2020 Dec 10.
Structural materials with excellent mechanical properties are vitally important for architectural application. However, the traditional structural materials with complex manufacturing processes cannot effectively regulate heat flow, causing a large impact on global energy consumption. Here, we processed a high-performance and inexpensive cooling structural material by bottom-up assembling delignified biomass cellulose fiber and inorganic microspheres into a 3D network bulk followed by a hot-pressing process; we constructed a cooling lignocellulosic bulk that exhibits strong mechanical strength more than eight times that of the pure wood fiber bulk and greater specific strength than the majority of structural materials. The cellulose acts as a photonic solar reflector and thermal emitter, enabling a material that can accomplish 24-h continuous cooling with an average dT of 6 and 8 °C during day and night, respectively. Combined with excellent fire-retardant and outdoor antibacterial performance, it will pave the way for the design of high-performance cooling structural materials.
具有优异力学性能的结构材料对于建筑应用至关重要。然而,传统的结构材料制造工艺复杂,不能有效调控热流,对全球能源消耗造成了巨大影响。在这里,我们通过自下而上的方法将去木质化生物质纤维素纤维和无机微球组装成 3D 网络块状物,然后进行热压处理,制备了一种高性能且廉价的冷却结构材料;我们构建了一种冷却木质纤维素块状物,其机械强度比纯木纤维块状物高 8 倍以上,比大多数结构材料的比强度更高。纤维素作为光子太阳能反射器和热发射器,使材料能够在白天和夜间分别以平均 dT 为 6 和 8°C 实现 24 小时连续冷却。结合优异的阻燃和户外抗菌性能,它将为高性能冷却结构材料的设计铺平道路。