Literature DB >> 33576756

Honeycomb layered oxides: structure, energy storage, transport, topology and relevant insights.

Godwill Mbiti Kanyolo1, Titus Masese2, Nami Matsubara3, Chih-Yao Chen4, Josef Rizell5, Zhen-Dong Huang6, Yasmine Sassa5, Martin Månsson3, Hiroshi Senoh7, Hajime Matsumoto7.   

Abstract

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.

Entities:  

Year:  2021        PMID: 33576756     DOI: 10.1039/d0cs00320d

Source DB:  PubMed          Journal:  Chem Soc Rev        ISSN: 0306-0012            Impact factor:   54.564


  2 in total

1.  Cationic vacancies as defects in honeycomb lattices with modular symmetries.

Authors:  Godwill Mbiti Kanyolo; Titus Masese
Journal:  Sci Rep       Date:  2022-04-19       Impact factor: 4.996

2.  Mixed alkali-ion transport and storage in atomic-disordered honeycomb layered NaKNi2TeO6.

Authors:  Titus Masese; Yoshinobu Miyazaki; Josef Rizell; Godwill Mbiti Kanyolo; Chih-Yao Chen; Hiroki Ubukata; Keigo Kubota; Kartik Sau; Tamio Ikeshoji; Zhen-Dong Huang; Kazuki Yoshii; Teruo Takahashi; Miyu Ito; Hiroshi Senoh; Jinkwang Hwang; Abbas Alshehabi; Kazuhiko Matsumoto; Toshiyuki Matsunaga; Kotaro Fujii; Masatomo Yashima; Masahiro Shikano; Cédric Tassel; Hiroshi Kageyama; Yoshiharu Uchimoto; Rika Hagiwara; Tomohiro Saito
Journal:  Nat Commun       Date:  2021-08-02       Impact factor: 14.919

  2 in total

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