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超弹性和超疏水纳米纤维组装的多孔气凝胶用于有效分离油水乳液。

Superelastic and superhydrophobic nanofiber-assembled cellular aerogels for effective separation of oil/water emulsions.

机构信息

‡State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.

§Nanomaterials Research Center, Modern Textile Institute, Donghua University, Shanghai 200051, China.

出版信息

ACS Nano. 2015 Apr 28;9(4):3791-9. doi: 10.1021/nn506633b. Epub 2015 Apr 14.

Abstract

Many applications proposed for functional nanofibers require their assembly into a monolithic cellular structure. The ability to maintain structural integrity upon large deformation is essential to ensure a macroscopic cellular material that functions reliably. However, it remains a great challenge to achieve high elasticity in three-dimensional (3D) nanofibrous networks. Here, we report a strategy to create fibrous, isotropically bonded elastic reconstructed (FIBER) aerogels with a hierarchical cellular structure and superelasticity by combining electrospun nanofibers and the freeze-shaping technique. Our approach allows the intrinsically lamellar deposited electrospun nanofibers to assemble into elastic bulk aerogels with tunable porous structure and wettability on a large scale. The resulting FIBER aerogels exhibit the integrated properties of ultralow density (<30 mg cm(-3)), rapid recovery from 80% compression strain, superhydrophobic-superoleophilic wettability, and high pore tortuosity. More interestingly, the FIBER aerogels can effectively separate surfactant-stabilized water-in-oil emulsions, solely using gravity, with high flux (maximum of 8140 ± 220 L m(-2) h(-1)) and high separation efficiency, which match well with the requirements for treating the real emulsions. The synthesis of FIBER aerogels also provides a versatile platform for exploring the applications of nanofibers in a self-supporting, structurally adaptive, and 3D macroscopic form.

摘要

许多应用于功能性纳米纤维的提议都需要将其组装成一个整体的多孔结构。在大变形下保持结构完整性的能力对于确保可靠运行的宏观多孔材料至关重要。然而,在三维(3D)纳米纤维网络中实现高弹性仍然是一个巨大的挑战。在这里,我们报告了一种通过结合静电纺丝纳米纤维和冷冻成型技术来创建具有各向同性结合弹性重构(FIBER)气凝胶的纤维状、各向同性结合弹性重构(FIBER)气凝胶的策略,该气凝胶具有分层细胞结构和超弹性。我们的方法允许固有层状沉积的静电纺纳米纤维组装成具有可调多孔结构和大尺度润湿性的弹性块状气凝胶。所得到的 FIBER 气凝胶表现出超低密度(<30mgcm(-3))、从 80%压缩应变快速恢复、超疏水-超亲油性润湿性和高孔曲折度的综合特性。更有趣的是,FIBER 气凝胶可以仅使用重力有效地分离表面活性剂稳定的油包水乳液,具有高通量(最高 8140±220Lm(-2)h(-1))和高分离效率,这与处理实际乳液的要求相匹配。FIBER 气凝胶的合成也为探索纳米纤维在自支撑、结构自适应和 3D 宏观形式中的应用提供了一个多功能平台。

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