论文标题

蜂窝分层氧化物:结构,能源存储,运输,拓扑和相关见解

Honeycomb Layered Oxides: Structure, Energy Storage, Transport, Topology and Relevant Insights

论文作者

Kanyolo, Godwill Mbiti, Masese, Titus, Matsubara, Nami, Chen, Chih-Yao, Rizell, Josef, Forslund, Ola Kenji, Nocerino, Elisabetta, Papadopoulos, Konstantinos, Zubayer, Anton, Kato, Minami, Tada, Kohei, Kubota, Keigo, Senoh, Hiroshi, Huang, Zhen-Dong, Sassa, Yasmine, Mansson, Martin, Matsumoto, Hajime

论文摘要

纳米技术的出现刺激了具有出色的化学和物理功能的纳米结构材料的发现和开发,以解决能源,环境,电信和医疗保健中的问题。 In this quest, a class of two-dimensional layered materials consisting of alkali or coinage metal atoms sandwiched between slabs exclusively made of transition metal and chalcogen (or pnictogen) atoms arranged in a honeycomb fashion have emerged as materials exhibiting fascinatingly rich crystal chemistry, high-voltage electrochemistry, fast cation diffusion besides playing host to varied exotic electromagnetic and拓扑现象。目前,通过将利基作为高压材料的储能应用,这类蜂窝分层的氧化物是理想的教学典范,是纳米材料无数能力的理想典范,在材料科学,固态化学,电化学和凝聚态物理学方面,纳米材料的无数能力引起了极大的兴趣。在这篇综述中,我们描述了蜂窝层氧化物的相关化学和物理,并讨论了它们的可调电化学,超快速离子传导,电磁和拓扑的功能。此外,我们阐明了尚未探索的晶体化学空间,同时概述了在该组成空间内识别区域的有效方法,尤其是在有趣的电磁和拓扑特性的情况下,可以潜伏在上述碱中,以及造币金属蜂蜜分层的氧化物结构。最后,我们指出了可能的未来研究方向,尤其是在密切相关的蜂窝层中的氧化物材料中,kitaev-heisenberg-dzyaloshinskii-moriya与单晶和浮球理论的相互作用的前瞻性实现。

The advent of nanotechnology has hurtled the discovery and development of nanostructured materials with stellar chemical and physical functionalities in a bid to address issues in energy, environment, telecommunications and healthcare. In this quest, a class of two-dimensional layered materials consisting of alkali or coinage metal atoms sandwiched between slabs exclusively made of transition metal and chalcogen (or pnictogen) atoms arranged in a honeycomb fashion have emerged as materials exhibiting fascinatingly rich crystal chemistry, high-voltage electrochemistry, fast cation diffusion besides playing host to varied exotic electromagnetic and topological phenomena. Currently, with a niche application in energy storage as high-voltage materials, this class of honeycomb layered oxides serves as ideal pedagogical exemplars of the innumerable capabilities of nanomaterials drawing immense interest in multiple fields ranging from materials science, solid-state chemistry, electrochemistry and condensed matter physics. In this review, we delineate the relevant chemistry and physics of honeycomb layered oxides, and discuss their functionalities for tunable electrochemistry, superfast ionic conduction, electromagnetism and topology. Moreover, we elucidate the unexplored albeit vastly promising crystal chemistry space whilst outlining effective ways to identify regions within this compositional space, particularly where interesting electromagnetic and topological properties could be lurking within the aforementioned alkali and coinage-metal honeycomb layered oxide structures. We conclude by pointing towards possible future research directions, particularly the prospective realisation of Kitaev-Heisenberg-Dzyaloshinskii-Moriya interactions with single crystals and Floquet theory in closely-related honeycomb layered oxide materials.

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