Advancing Electrical Engineering with Biomass-derived Carbon Materials: Applications, Innovations, and Future Directions.

IF 7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical record Pub Date : 2024-11-11 DOI:10.1002/tcr.202400144
Al Mojahid Afridi, Mahbuba Aktary, Syed Shaheen Shah, Sharif Iqbal Mitu Sheikh, Gazi Jahirul Islam, M Nasiruzzaman Shaikh, Md Abdul Aziz
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Abstract

The ongoing global shift towards sustainability in electrical engineering necessitates novel materials that offer both ecological and technical benefits. Biomass-derived carbon materials (BCMs) are emerging as cornerstones in this transition due to their sustainability, cost-effectiveness, and versatile properties. This review explores the expansive role of BCMs across various electrical engineering applications, emphasizing their transformative impact and potential in fostering a sustainable technological ecosystem. The fundamentals of BCMs are investigated, including their unique structures, diverse synthesis procedures, and significant electrical and electrochemical properties. A detailed examination of recent innovations in BCM applications for energy storage, such as batteries and supercapacitors, and their pivotal role in developing advanced electronic components like sensors, detectors, and electromagnetic interference shielding composites has been covered. BCMs offer superior electrical conductivities, tunable surface chemistries, and mechanical properties compared to traditional carbon sources. These can be further enhanced through innovative doping and functionalization techniques. Moreover, this review identifies challenges related to scalability and uniformity in properties and proposes future research directions to overcome these hurdles. By integrating insights from recent studies with a forward-looking perspective, this paper sets the stage for the next generation of electrical engineering solutions powered by biomass-derived materials, aligning technological advancement with environmental stewardship.

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利用源自生物质的碳材料推进电气工程:应用、创新和未来方向》。
全球电气工程正在向可持续发展方向转变,这就要求新型材料既能带来生态效益,又能带来技术优势。生物质衍生碳材料 (BCM) 凭借其可持续性、成本效益和多功能特性,正在成为这一转变的基石。本综述探讨了 BCMs 在各种电气工程应用中的广泛作用,强调了其在促进可持续技术生态系统方面的变革性影响和潜力。本综述研究了 BCMs 的基本原理,包括其独特的结构、多样化的合成程序以及重要的电气和电化学特性。详细介绍了电池和超级电容器等 BCM 在能源存储方面的最新创新应用,以及它们在开发传感器、探测器和电磁干扰屏蔽复合材料等先进电子元件中的关键作用。与传统碳源相比,BCM 具有优异的导电性、可调表面化学性质和机械性能。这些性能可通过创新的掺杂和功能化技术得到进一步增强。此外,本综述还指出了与可扩展性和性能一致性相关的挑战,并提出了克服这些障碍的未来研究方向。通过将最新研究成果与前瞻性视角相结合,本文为下一代由生物质衍生材料驱动的电气工程解决方案奠定了基础,使技术进步与环境管理保持一致。
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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来源期刊
Chemical record
Chemical record 化学-化学综合
CiteScore
11.00
自引率
3.00%
发文量
188
审稿时长
>12 weeks
期刊介绍: The Chemical Record (TCR) is a "highlights" journal publishing timely and critical overviews of new developments at the cutting edge of chemistry of interest to a wide audience of chemists (2013 journal impact factor: 5.577). The scope of published reviews includes all areas related to physical chemistry, analytical chemistry, inorganic chemistry, organic chemistry, polymer chemistry, materials chemistry, bioorganic chemistry, biochemistry, biotechnology and medicinal chemistry as well as interdisciplinary fields. TCR provides carefully selected highlight papers by leading researchers that introduce the author''s own experimental and theoretical results in a framework designed to establish perspectives with earlier and contemporary work and provide a critical review of the present state of the subject. The articles are intended to present concise evaluations of current trends in chemistry research to help chemists gain useful insights into fields outside their specialization and provide experts with summaries of recent key developments.
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