用于电子和热应用的可持续、生态友好和导电聚合物纳米复合材料综述:现状与前景。

0 MATERIALS SCIENCE, MULTIDISCIPLINARY Discover nano Pub Date : 2024-02-19 DOI:10.1186/s11671-024-03965-2
Elnaz Tamjid, Parvin Najafi, Mohammad Amin Khalili, Negar Shokouhnejad, Mahsa Karimi, Nafise Sepahdoost
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引用次数: 0

摘要

生物可降解聚合物纳米复合材料(BPNCs)是一种先进材料,由于其优于传统聚合物,在过去 20 年里受到了广泛关注。BPNCs 生态友好、成本效益高、抗污染,而且可针对特定应用进行定制。然而,由于其物理和机械性能不尽人意,其应用受到了限制。为了改善这些性能,人们在天然聚合物基质中加入了纳米填料,以增强其机械耐久性、生物降解性、导电性、介电性和热性能。尽管过去几十年来 BPNCs 的开发取得了重大进展,但我们对其介电、导热和导电性能的了解还远远不够。本综述论文旨在全面介绍这些特性背后的基本原理、主要合成和表征方法,以及它们的功能和性能。此外,本文还讨论了纳米填料在强度、渗透性、热稳定性、生物降解性、热传输和导电性方面的作用。此外,本文还探讨了 BPNCs 在电子设备、热管理和食品包装方面的应用、挑战和机遇。最后,本文强调了 BPNCs 作为可生物降解和可生物分解功能材料取代传统塑料的好处。最后,在概述主要利益相关者和近期商业化产品的基础上,论述了当代工业进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Review of sustainable, eco-friendly, and conductive polymer nanocomposites for electronic and thermal applications: current status and future prospects.

Biodegradable polymer nanocomposites (BPNCs) are advanced materials that have gained significant attention over the past 20 years due to their advantages over conventional polymers. BPNCs are eco-friendly, cost-effective, contamination-resistant, and tailorable for specific applications. Nevertheless, their usage is limited due to their unsatisfactory physical and mechanical properties. To improve these properties, nanofillers are incorporated into natural polymer matrices, to enhance mechanical durability, biodegradability, electrical conductivity, dielectric, and thermal properties. Despite the significant advances in the development of BPNCs over the last decades, our understanding of their dielectric, thermal, and electrical conductivity is still far from complete. This review paper aims to provide comprehensive insights into the fundamental principles behind these properties, the main synthesis, and characterization methods, and their functionality and performance. Moreover, the role of nanofillers in strength, permeability, thermal stability, biodegradability, heat transport, and electrical conductivity is discussed. Additionally, the paper explores the applications, challenges, and opportunities of BPNCs for electronic devices, thermal management, and food packaging. Finally, this paper highlights the benefits of BPNCs as biodegradable and biodecomposable functional materials to replace traditional plastics. Finally, the contemporary industrial advances based on an overview of the main stakeholders and recently commercialized products are addressed.

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