季态过渡金属氧钙钛矿的合成、特性和应用综述

IF 5.9 3区 材料科学 Q2 CHEMISTRY, PHYSICAL FlatChem Pub Date : 2024-01-24 DOI:10.1016/j.flatc.2024.100619
Prabhukrupa C. Kumar, Subrata Senapati, Ramakanta Naik
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引用次数: 0

摘要

在发现石墨烯之后,二维层状材料一直是材料科学研究人员关注的焦点。在各种二维层状材料中,过渡金属氧钙钛矿(TMOCh)材料因其令人兴奋的特性和应用而占有独特的地位。关于这些材料的报道不胜枚举,但我们意识到,还缺少对这些材料的系统分类,以及它们的一般特性和应用。因此,在这篇综述中,我们试图提出一种系统的方法,以便更方便地研究这些材料。我们根据所使用的前驱体材料(即四价或四价以上)以及过渡金属、氧和瑀(S、Se 和 Te)将这些 TMOChs 分为三类,如含有 1.碱土金属、2.后过渡金属和 3.稀土金属的 TMOChs。在这里,我们考虑的是具有至少一种过渡金属、氧和钙原的固定成分,并与上述三类中的任何其他金属相结合的化合物。我们将详细讨论制备这些材料所采用的各种合成路线,以及它们的晶体结构、电子结构和 X 射线衍射 (XRD) 图样。综述的下一部分广泛讨论了这些材料表现出的不同特性,如光电、热电、磁性、热传输、非线性光学、半导体和电阻率。基于这些引人入胜的特性,TMOCh 材料在各个领域都有广泛的应用,本综述的应用部分将对此进行深入讨论。我们试图通过这篇综述,让读者对这些层状材料从合成到应用有一个全面的了解,并提供必要的说明、图和表作为支持。
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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A comprehensive review on synthesis, properties, and applications of quaternary transition metal oxychalcogenides

2D layered materials have been the center of attraction for material science researchers after the discovery of graphene. Among the various layered 2D materials, transition metal oxychalcogenide (TMOCh) materials possess a unique position due to their exciting properties and applications. Numerous reported articles are available on these materials, but we realized that a systematic classification of them, along with their general properties and applications, was missing. So, in this review, we attempted to present a systematic approach to study more about these materials conveniently. We have classified these TMOChs based on precursor materials used (i.e., quaternary or more than that) along with the transition metal, oxygen, and chalcogen (S, Se, and Te) into three categories such as TMOChs with 1. Alkaline earth metals, 2. Post transition metals, 3. Rare earth metals. Here, we consider the compounds with fixed compositions of at least one transition metal, oxygen, and chalcogen combined with any other metals from the above three categories. The detailed discussion of various synthesis routes adopted for preparing these materials is discussed thoroughly, along with their crystal structure, electronic structure, and X-ray diffraction (XRD) patterns. The next section of the review covers a broad discussion of different properties exhibited by these materials, like optoelectronic, thermoelectric, magnetic, thermal transport, nonlinear optical, semiconducting, and resistivity. Based on these fascinating properties, TMOCh materials have a wide range of applications in various fields, which are well discussed in the application segment of this review. We have tried to provide the reader with a complete understanding of these layered materials through this review, from their synthesis to applications, with the necessary description, figures, and tables to support it.

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来源期刊
FlatChem
FlatChem Multiple-
CiteScore
8.40
自引率
6.50%
发文量
104
审稿时长
26 days
期刊介绍: FlatChem - Chemistry of Flat Materials, a new voice in the community, publishes original and significant, cutting-edge research related to the chemistry of graphene and related 2D & layered materials. The overall aim of the journal is to combine the chemistry and applications of these materials, where the submission of communications, full papers, and concepts should contain chemistry in a materials context, which can be both experimental and/or theoretical. In addition to original research articles, FlatChem also offers reviews, minireviews, highlights and perspectives on the future of this research area with the scientific leaders in fields related to Flat Materials. Topics of interest include, but are not limited to, the following: -Design, synthesis, applications and investigation of graphene, graphene related materials and other 2D & layered materials (for example Silicene, Germanene, Phosphorene, MXenes, Boron nitride, Transition metal dichalcogenides) -Characterization of these materials using all forms of spectroscopy and microscopy techniques -Chemical modification or functionalization and dispersion of these materials, as well as interactions with other materials -Exploring the surface chemistry of these materials for applications in: Sensors or detectors in electrochemical/Lab on a Chip devices, Composite materials, Membranes, Environment technology, Catalysis for energy storage and conversion (for example fuel cells, supercapacitors, batteries, hydrogen storage), Biomedical technology (drug delivery, biosensing, bioimaging)
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