Das Shubhasikha, Chowdhury Shamik, Tiwary Chandra Sekhar
School of Environmental Science and Engineering, Indian Institute of Technology Kharagpur, West Bengal 721302, India.
Department of Metallurgical and Materials Engineering, Indian Institute of Technology Kharagpur, West Bengal 721302, India.
Nanoscale. 2024 May 2;16(17):8256-8272. doi: 10.1039/d4nr00474d.
High entropy materials (HEMs), epitomized by high entropy alloys (HEAs), have sparked immense interest for a range of clean energy and environmental applications due to their remarkable structural versatility and adjustable characteristics. In the face of environmental challenges, HEMs have emerged as valuable tools for addressing issues ranging from wastewater remediation to energy conversion and storage. This review provides a comprehensive exploration of HEMs, spotlighting their catalytic capabilities in diverse redox reactions, such as carbon dioxide reduction to value-added products, degradation of organic pollutants, oxygen reduction, hydrogen evolution, and ammonia decomposition using electrocatalytic and photocatalytic pathways. Additionally, the review highlights HEMs as novel electrode nanomaterials, with the potential to enhance the performance of batteries and supercapacitors. Their unique features, including high capacitance, electrical conductivity, and thermal stability, make them valuable components for meeting crucial energy demands. Furthermore, the review examines challenges and opportunities in advancing HEMs, emphasizing the importance of understanding the underlying mechanisms governing their catalytic and electrochemical behaviors. Essential considerations for optimizing the HEM performance in catalysis and energy storage are outlined to guide future research. Moreover, to provide a comprehensive understanding of the current research landscape, a meticulous bibliometric analysis is presented, offering insights into the trends, focal points, and emerging directions within the realm of HEMs, particularly in addressing environmental concerns.
以高熵合金(HEAs)为代表的高熵材料(HEMs),因其卓越的结构多样性和可调节特性,在一系列清洁能源和环境应用中引发了极大的兴趣。面对环境挑战,高熵材料已成为解决从废水处理到能量转换与存储等一系列问题的宝贵工具。本综述全面探讨了高熵材料,重点介绍了它们在各种氧化还原反应中的催化能力,例如通过电催化和光催化途径将二氧化碳还原为增值产品、降解有机污染物、氧还原、析氢以及氨分解。此外,该综述强调了高熵材料作为新型电极纳米材料,具有提升电池和超级电容器性能的潜力。它们独特的特性,包括高电容、电导率和热稳定性,使其成为满足关键能源需求的有价值组件。此外,该综述审视了推进高熵材料发展过程中的挑战与机遇,强调了理解其催化和电化学行为背后潜在机制的重要性。概述了优化高熵材料在催化和能量存储方面性能的基本考量因素,以指导未来的研究。此外,为全面了解当前的研究态势,还进行了细致的文献计量分析,深入洞察了高熵材料领域的趋势、重点和新兴方向,特别是在解决环境问题方面。