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用于复杂溶剂环境中灵敏检测的耐油导电氟硅橡胶泡沫纳米复合材料的合理设计

Rational Design of Oil-Resistant and Electrically Conductive Fluorosilicone Rubber Foam Nanocomposites for Sensitive Detectability in Complex Solvent Environments.

作者信息

Qu Yong-Xiang, Xia Qiao-Qi, Li Long-Tao, Cao Cheng-Fei, Zhang Guo-Dong, Castignolles Patrice, Bae Joonho, Song Pingan, Gao Jie-Feng, Tang Long-Cheng

机构信息

College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology of MoE, Hangzhou Normal University, Hangzhou 311121, China.

Sorbonne Université, CNRS, Institut Parisien de Chimie Moléculaire, Equipe Chimie des Polymères, 4 Place Jussieu, 75005 Paris, France.

出版信息

ACS Nano. 2024 Aug 20;18(33):22021-22033. doi: 10.1021/acsnano.4c04135. Epub 2024 Aug 5.

Abstract

Recent years have witnessed the explosive development of highly sensitive smart sensors based on conductive polymer foam materials. However, the design and development of multifunctional polymeric foam composites as smart sensors applied in complex solvent and oil environments remain a critical challenge. Herein, we design and synthesize vinyl-terminated polytrifluoropropylmethylsiloxane through anionic ring-opening polymerization to fabricate fluorosilicone rubber foam (FSiRF) materials with nanoscale wrinkled surfaces and reactive Si-H groups via a green and rapid chemical foaming strategy. Based on the strong adhesion between FSiRF materials and consecutive oxidized ketjen black (OKB) nano-network, multifunctional FSiRF nanocomposites were prepared by a dip-coating strategy followed by fluoroalkylsilane modification. The optimized F-OKB@FSiRF nanocomposites exhibit outstanding mechanical flexibility in wide-temperature range (100 cycle compressions from -20 to 200 °C), structure stability (no detached particles after being immersed into various aqueous solutions for up to 15 days), surface superhydrophobicity (water contact angle of 154° and sliding angle of ∼7°), and tunable electrical conductivity (from 10 to 10 S m). Additionally, benefiting from the combined actions of multiple lines of defense (low surface energy groups, physical barriers, and "shielding effect"), the F-OKB@FSiRF sensor presents excellent anti-swelling property and high sensitivity in monitoring both large-deformation and tiny vibrations generated by knocking the beaker, ultrasonic action, agitating, and sinking objects in weak-polar or nonpolar solvents. This work conceivably provides a chemical strategy for the fabrication of multifunctional polymeric foam nanocomposite materials as smart sensors for broad applications.

摘要

近年来,基于导电聚合物泡沫材料的高灵敏度智能传感器得到了迅猛发展。然而,设计和开发应用于复杂溶剂和油环境中的多功能聚合物泡沫复合材料智能传感器仍然是一项严峻挑战。在此,我们通过阴离子开环聚合设计并合成了乙烯基封端的聚三氟丙基甲基硅氧烷,采用绿色快速的化学发泡策略制备出具有纳米级皱纹表面和反应性Si-H基团的氟硅橡胶泡沫(FSiRF)材料。基于FSiRF材料与连续氧化的科琴黑(OKB)纳米网络之间的强附着力,通过浸涂策略随后进行氟代烷基硅烷改性制备了多功能FSiRF纳米复合材料。优化后的F-OKB@FSiRF纳米复合材料在宽温度范围(-20至200°C下100次循环压缩)内表现出出色的机械柔韧性、结构稳定性(浸入各种水溶液长达15天后无颗粒脱落)、表面超疏水性(水接触角为154°,滑动角约为7°)以及可调电导率(从10至10 S m)。此外,受益于多重防线(低表面能基团、物理屏障和“屏蔽效应”)的联合作用,F-OKB@FSiRF传感器在监测弱极性或非极性溶剂中敲击烧杯、超声作用、搅拌和下沉物体产生的大变形和微小振动时具有出色的抗溶胀性能和高灵敏度。这项工作为制备多功能聚合物泡沫纳米复合材料作为广泛应用的智能传感器提供了一种化学策略。

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