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刺激响应性纤维素纳米材料及其在智能领域的应用

Stimuli-responsive cellulose nanomaterials for smart applications.

机构信息

Biofuels Institute, School of the Environment, Jiangsu University, Zhenjiang 212013, China; Key Laboratory of Pulp and Paper Science & Technology of Ministry of Education/ State Key Laboratory of Bio-based Materials and Green Papermaking, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.

Biofuels Institute, School of the Environment, Jiangsu University, Zhenjiang 212013, China.

出版信息

Carbohydr Polym. 2020 May 1;235:115933. doi: 10.1016/j.carbpol.2020.115933. Epub 2020 Feb 2.

Abstract

Stimuli-responsive cellulose nanomaterials (CNMs), which change their physicochemical properties in response to specific stimuli have recently been in the spotlight. A great deal of effort has been dedicated to developing stimuli-responsive CNMs in the past two decades. However, the majority of stimuli-responsive CNMs were achieved via the introduction of stimuli-responsive moieties rather than taking advantage of their inherent switchable hydrogen bonds, electrostatic interactions, and molecular polarization in CNMs. In this review, recent advances and future perspectives of stimuli-responsive CNMs that exploiting the inherent switchable hydrogen bonds, reversible electrostatic interactions, and tunable polarization are highlighted. The principles for designing and assembling such smart CNMs are summarized. Stimuli-responsive CNMs that are sensitive to the changes in humidity, chemical molecules, pH, pressure, and electricity represent tremendous opportunities for making advances in sensors, actuators, biomedical applications due to their sensitivity, specificity, and stability. Additionally, major challenges and future perspectives of stimuli-responsive CNMs are reported.

摘要

刺激响应型纤维素纳米材料(CNMs)能够对特定刺激做出响应,从而改变其物理化学性质,近年来备受关注。在过去的二十年中,人们投入了大量的精力来开发刺激响应型 CNMs。然而,大多数刺激响应型 CNMs 是通过引入刺激响应性基团来实现的,而不是利用 CNMs 中固有的可切换氢键、静电相互作用和分子极化。在这篇综述中,重点介绍了利用固有可切换氢键、可逆静电相互作用和可调谐极化来开发刺激响应型 CNMs 的最新进展和未来展望。总结了设计和组装这种智能 CNMs 的原理。对湿度、化学分子、pH 值、压力和电变化敏感的刺激响应型 CNMs 由于其敏感性、特异性和稳定性,为传感器、执行器和生物医学应用的发展提供了巨大的机会。此外,还报道了刺激响应型 CNMs 的主要挑战和未来展望。

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