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用于定制表面性质的热塑性聚合物纳米纤维气凝胶模板上的原子层沉积

Atomic Layer Deposition onto Thermoplastic Polymeric Nanofibrous Aerogel Templates for Tailored Surface Properties.

作者信息

Lu Jianwei, Li Yi, Song Wei, Losego Mark D, Monikandan Rebhadevi, Jacob Karl I, Xiao Ru

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.

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.

出版信息

ACS Nano. 2020 Jul 28;14(7):7999-8011. doi: 10.1021/acsnano.9b09497. Epub 2020 Jul 14.

Abstract

Poly(vinyl alcohol--ethylene) (EVOH) nanofibrous aerogel (NFA) templates were fabricated through vacuum freeze-drying from EVOH nanofibrous suspensions. Aluminum oxide (AlO) layers were deposited onto highly porous templates to form organic-inorganic hybrid aerogels by the atomic layer deposition (ALD) technique. Chemical and physical measurements showed that mechanical properties were improved through ALD. In addition, the surface chemistry of ALD modified aerogels showed a fascinating cyclic change based on the number of ALD deposition cycles. A transition from hydrophilicity to hydrophobicity was observed after a few cycles of ALD coating; however, additional deposition cycles changed the wettability characteristics back to hydrophilicity. This hydrophilic-hydrophobic-hydrophilic variation is shown to be governed by a combination of geometrical and chemical surface properties. Furthermore, the deposited AlO could substantially improve aerogels strength and reduce permanent deformation after cyclic compression. The Young's modulus of aerogels increased from 5.54 to 33.27 kPa, and the maximum stress at 80% strain went up from 31.13 to 176.11 kPa, after 100 cycles of trimethyl-aluminum (TMA)/water ALD. Thermogravimetric analysis (TGA) results confirm that ALD can effectively improve the heat resistance characteristics of polymeric aerogel. The onset temperature and the residual mass increased with increasing numbers of ALD cycles. During pyrolysis, the nanofiber cores were decomposed, and the brittle pure AlO self-supporting nanotube aerogels with the continuous hollow nanotubular network were formed. A coating of continuous thickness AlO layer on individual nanofiber was achieved after 100 ALD cycles. In additional to mechanical strength and physical property changes, the ALD modified aerogel also shows a superhydrophobic and oleophilic surface chemistry, which could potentially be used to remove oils/organic solvents from water. The resultant aerogels exhibit excellent absorption capacity (31-73 g/g) for various liquids, and the material could be reused after distillation or squeezing. A successful scale-up of such materials could provide some insights into the design and development of thermoplastic polymeric NFAs with substantial industrial applications.

摘要

通过对乙烯-乙烯醇共聚物(EVOH)纳米纤维悬浮液进行真空冷冻干燥制备了聚(乙烯醇-乙烯)(EVOH)纳米纤维气凝胶(NFA)模板。通过原子层沉积(ALD)技术将氧化铝(AlO)层沉积到高度多孔的模板上,以形成有机-无机杂化气凝胶。化学和物理测量表明,通过ALD可改善机械性能。此外,基于ALD沉积循环的次数,ALD改性气凝胶的表面化学呈现出迷人的循环变化。在进行几次ALD涂层循环后,观察到从亲水性向疏水性的转变;然而,额外的沉积循环又将润湿性特征变回亲水性。这种亲水-疏水-亲水的变化表明是由几何和化学表面性质共同作用所致。此外,沉积的AlO可显著提高气凝胶强度,并减少循环压缩后的永久变形。经过100次三甲基铝(TMA)/水ALD循环后,气凝胶的杨氏模量从5.54 kPa增加到33.27 kPa,80%应变下的最大应力从31.13 kPa提高到176.11 kPa。热重分析(TGA)结果证实,ALD可有效改善聚合物气凝胶的耐热特性。起始温度和残余质量随ALD循环次数的增加而升高。在热解过程中,纳米纤维芯分解,形成了具有连续中空纳米管网络的脆性纯AlO自支撑纳米管气凝胶。经过100次ALD循环后,在单个纳米纤维上实现了连续厚度的AlO层涂层。除了机械强度和物理性能变化外,ALD改性气凝胶还表现出超疏水和亲油的表面化学性质,这可能潜在地用于从水中去除油/有机溶剂。所得气凝胶对各种液体表现出优异的吸收能力(31-73 g/g),并且该材料在蒸馏或挤压后可重复使用。成功扩大此类材料的规模可为具有大量工业应用的热塑性聚合物NFA的设计和开发提供一些见解。

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