Emerging multi-functional delafossite materials: frontier advances and prospective breakthroughs in photoelectronic applications.

IF 10.7 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Zong-Yan Zhao
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引用次数: 0

Abstract

ABO2-type delafossites, distinguished by their layered crystalline framework, tunable quantum-enabled properties, and inherent sustainability, represent an emerging multifunctional material platform for next-generation photoelectronics. This review summarizes the frontier advances in delafossite materials science, establishing comprehensive correlations between the fundamental mechanisms and integrated applications of delafossites. The material system exhibits four unique advantages: structural versatility enabling precise composition-structure-property tailoring, exploitable quantum phenomena (ultrahigh conductivity, multiferroicity, and topological states) unlocking unprecedented functionalities, cross-scale functional integration across photoelectronic technology chains, and earth-abundant eco-compatibility aligning with global sustainability goals. Systematic examination encompasses full-spectrum applications-from foundational components (transparent electrodes and charge transport layers) and energy conversion systems (photovoltaics and solar fuels) to high-performance photodetectors, flexible electronics, and quantum photonic devices. Critical breakthrough strategies, including advanced material engineering (defect/interface control and entropy stabilization), computation-accelerated discovery of multinary systems, and quantum-bulk synergy via external-field coupling, are analyzed. Finally, key research gaps are identified with a proposed co-design roadmap integrating quantum mechanisms, non-equilibrium synthesis, and extreme-environment applications to accelerate the translation of delafossites from laboratory innovation to industrial photoelectronic ecosystems.

新兴多功能沉积材料:光电子应用的前沿进展和前景突破。
abo2型delafosites以其分层的晶体框架、可调的量子特性和固有的可持续性而著称,代表了下一代光电子技术的新兴多功能材料平台。本文综述了沉积岩材料科学的前沿进展,建立了沉积岩的基本机制与综合应用之间的全面联系。该材料系统表现出四个独特的优势:结构多功能性,实现精确的成分-结构-性能剪裁;可利用的量子现象(超高电导率、多铁性和拓扑状态),解锁前所未有的功能;跨光电子技术链的跨尺度功能集成;以及与全球可持续发展目标一致的地球丰富的生态兼容性。系统检查包括全光谱应用-从基础组件(透明电极和电荷传输层)和能量转换系统(光伏和太阳能燃料)到高性能光电探测器,柔性电子器件和量子光子器件。关键的突破策略,包括先进的材料工程(缺陷/界面控制和熵稳定),计算加速发现多系统,以及通过外场耦合的量子体协同作用,进行了分析。最后,通过整合量子机制、非平衡合成和极端环境应用的协同设计路线图,确定了关键的研究空白,以加速将delafossites从实验室创新转化为工业光电子生态系统。
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
Materials Horizons
Materials Horizons CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
18.90
自引率
2.30%
发文量
306
审稿时长
1.3 months
期刊介绍: Materials Horizons is a leading journal in materials science that focuses on publishing exceptionally high-quality and innovative research. The journal prioritizes original research that introduces new concepts or ways of thinking, rather than solely reporting technological advancements. However, groundbreaking articles featuring record-breaking material performance may also be published. To be considered for publication, the work must be of significant interest to our community-spanning readership. Starting from 2021, all articles published in Materials Horizons will be indexed in MEDLINE©. The journal publishes various types of articles, including Communications, Reviews, Opinion pieces, Focus articles, and Comments. It serves as a core journal for researchers from academia, government, and industry across all areas of materials research. Materials Horizons is a Transformative Journal and compliant with Plan S. It has an impact factor of 13.3 and is indexed in MEDLINE.
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