Zhang Tongrui, Zeng Shulong, Jiang Hao, Li Zeshan, Bai Dongyu, Li Yijun, Li Jianjun
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, China.
Chongqing Key Laboratory of Materials Surface & Interface Science, School of Materials Science and Engineering, Chongqing University of Arts and Sciences, Chongqing 402160, China.
ACS Appl Mater Interfaces. 2021 Mar 10;13(9):11332-11343. doi: 10.1021/acsami.1c00880. Epub 2021 Feb 24.
Renewable biobased aerogels display a promising potential to fulfill the surging demand in various industrial sectors. However, its inherent low mechanical robustness, flammability, and lack of functionality are still huge obstacles in its practical application. Herein, a novel integrated leather solid waste (LSW)/poly(vinyl alcohol) (PVA)/polyaniline (PANI) aerogel with high mechanical robustness, flame retardancy, and electromagnetic interference (EMI) shielding performance was successfully prepared. Amino carboxyl groups in LSW could be effectively exposed by solid-state shear milling (S M) technology to form strong hydrogen-bond interactions with the PVA molecular chains. This led to a change in the compressive strength and the temperature of the initial dimensional change to 15.6 MPa and 112.7 °C at a thickness of 2.5 cm, respectively. Moreover, LSW contains a large number of N elements, which ensures a nitrogen-based flame-retardant mechanism and increase in the limit oxygen index value of LSW/PVA aerogel to 32.0% at a thickness of 2.5 mm. Notably, by the cyclic coating method, a conductive PANI layer could be polymerized on the surface of LSW/PVA aerogel, which led to the construction of a sandwich structure with impressive EMI shielding capability. The EMI shielding effectiveness (SE) reached more than 40 dB, and the specific shielding effectiveness (SSE) reached 73.0 dB cm g. The inherent dipoles in collagen fibers and the conductive PANI synergistically produced an internal multiple reflection and absorption mechanism. The comprehensive performance of LSW/PVA/PANI aerogel not only demonstrates a new strategy to recycle LSW in a more value-added way but also sheds some more light on the development of biomass aerogels with high-performance, environmentally friendly, and cost-effective properties.
可再生生物基气凝胶在满足各工业部门不断增长的需求方面显示出巨大潜力。然而,其固有的低机械强度、易燃性以及缺乏功能性仍是其实际应用中的巨大障碍。在此,成功制备了一种具有高机械强度、阻燃性和电磁干扰(EMI)屏蔽性能的新型一体化皮革固体废物(LSW)/聚乙烯醇(PVA)/聚苯胺(PANI)气凝胶。通过固态剪切研磨(SM)技术可有效暴露LSW中的氨基羧基,使其与PVA分子链形成强氢键相互作用。这导致在2.5厘米厚度时,抗压强度和初始尺寸变化温度分别变为15.6兆帕和112.7℃。此外,LSW含有大量N元素,确保了氮基阻燃机理,并使LSW/PVA气凝胶在2.5毫米厚度时的极限氧指数值提高到32.0%。值得注意的是,通过循环涂覆法,可在LSW/PVA气凝胶表面聚合导电PANI层,从而构建出具有出色EMI屏蔽能力的三明治结构。EMI屏蔽效能(SE)超过40分贝,比屏蔽效能(SSE)达到73.0分贝·厘米/克。胶原纤维中的固有偶极与导电PANI协同产生内部多重反射和吸收机制。LSW/PVA/PANI气凝胶的综合性能不仅展示了一种以更具附加值的方式回收LSW的新策略,也为高性能、环保且经济高效的生物质气凝胶的发展提供了更多思路。