Sen Suvodeep, Palabathuni Manoj, Ryan Kevin M, Singh Shalini
Department of Chemical Sciences and Bernal Institute, University of Limerick, V94 T9PX Limerick, Ireland.
ACS Energy Lett. 2024 Jul 5;9(8):3694-3718. doi: 10.1021/acsenergylett.4c01129. eCollection 2024 Aug 9.
High-entropy materials (HEMs) are typically crystalline, phase-pure and configurationally disordered materials that contain at least five elements evenly blended into a solid-solution framework. The discovery of high-entropy alloys (HEAs) and high-entropy oxides (HEOs) disrupted traditional notions in materials science, providing avenues for the exploration of new materials, property optimization, and the pursuit of advanced applications. While there has been significant research on HEAs, the creative breakthroughs in HEOs are still being revealed. This focus review aims at developing a structured framework for expressing the concept of HEM, with special emphasis on the crystal structure and functional properties of HEOs. Insights into the recent synthetic advances, that foster prospective outcomes and their current applications in electrocatalysis, and battery, are comprehensively discussed. Further, it sheds light on the existing constraints in HEOs, highlights the adoption of theoretical and experimental tools to tackle challenges, while delineates potential directions for exploration in energy application.
高熵材料(HEMs)通常是晶体、单相纯且构型无序的材料,包含至少五种元素均匀混合到固溶体框架中。高熵合金(HEAs)和高熵氧化物(HEOs)的发现打破了材料科学中的传统观念,为探索新材料、优化性能以及追求先进应用提供了途径。虽然对HEAs已有大量研究,但HEOs的创新性突破仍在不断展现。本重点综述旨在构建一个结构化框架来阐述HEM的概念,特别强调HEOs的晶体结构和功能特性。全面讨论了近期合成进展的见解,这些进展促进了预期成果及其在电催化和电池方面的当前应用。此外,它揭示了HEOs中存在的限制,强调采用理论和实验工具应对挑战,同时勾勒了能源应用中潜在的探索方向。