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用于能量转换与存储应用的功能化碳电催化剂:综述

Functionalized carbon electrocatalysts in energy conversion and storage applications: A review.

作者信息

Dessie Yilkal, Tilahun Eneyew, Wondimu Tadele Hunde

机构信息

Department of Applied Chemistry, Adama Science and Technology University, Adama, Ethiopia.

Department of Materials Science and Engineering, Adama Science and Technology University, Adama, Ethiopia.

出版信息

Heliyon. 2024 Oct 15;10(20):e39395. doi: 10.1016/j.heliyon.2024.e39395. eCollection 2024 Oct 30.

Abstract

Energy crises, along with environmental tampering, are currently a big topic on the global scene. The most promising strategy in the current research trend is the creation of ecologically pleasant renewable green alternative energy sources. Since adequate access to green, ecologically acceptable energy sources promotes industrialization and the well-being of human society. Hence, in this review, the most recent carbon electrocatalysts electrode materials prepared from porous activated carbon (PAC) in electrochemical energy conversion and storage systems due to its long life cycle, porosity and high surface area nature as well as low-cost nature have been clearly discussed. This review aims to demonstrate that the increasing interest in the synthesis of PAC is accompanied by extensive research into their application in supercapacitors, where they continue to be the preferred electrode material. Their challenges and current progress of PAC electrodes are also discussed. The systematic methods of modifying PAC from biomass as well as some commercially available carbon materials have been thoroughly summarized in this review as an alternate high-surface area electrode for the effective generation of energy in many energy conversion and storage devices. The critical assessment is also extends to evaluate its recent advancements, trends in research progress, and future prospects.

摘要

能源危机以及环境破坏是当前全球热议的重大话题。当前研究趋势中最具前景的策略是创造生态友好型可再生绿色替代能源。因为充足的绿色、生态可接受的能源有助于推动工业化进程并促进人类社会福祉。因此,在本综述中,对近期由多孔活性炭(PAC)制备的碳电催化剂电极材料在电化学能量转换和存储系统中的应用进行了清晰讨论,这归因于其长生命周期、孔隙率、高比表面积特性以及低成本特性。本综述旨在表明,对PAC合成兴趣的增加伴随着对其在超级电容器中应用的广泛研究,在超级电容器领域它们仍然是首选电极材料。同时也讨论了PAC电极面临的挑战和当前进展。本综述全面总结了从生物质以及一些市售碳材料改性PAC的系统方法,作为一种替代的高比表面积电极,用于在许多能量转换和存储设备中有效产生能量。关键评估还扩展到对其最新进展、研究进展趋势和未来前景的评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a7c0/11530907/90232b73fefe/ga1.jpg

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