Review of MXenes as new nanomaterials for energy storage/delivery and selected environmental applications
Обзор MXene как новых наноматериалов для хранения и передачи энергии, а также отдельных экологических применений
2018-10-29
SCID: 54.1/xy26v53r
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MXene-based nanomaterialsMXenesenergy storage and conversionenvironmental applicationstwo-dimensional nanomaterials
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Abstract (AI)
Energy and environmental issues presently attract a great deal of scientific attention. Recently, two-dimensional MXenes and MXene-based nanomaterials have attracted increasing interest because of their unique properties (e.g., remarkable safety, a very large interlayer spacing, environmental flexibility, a large surface area, and thermal conductivity). In 2011, multilayered MXenes (Ti 3 C 2 T x , a new family of two-dimensional (2D) materials) produced by etching an A layer from a MAX phase of Ti 3 AlC 2 , were first described by researchers at Drexel University. The term “MXene” was coined to distinguish this new family of 2D materials from graphene, and applies to both the original MAX phases and MXenes fabricated from them. We present a comprehensive review of recent studies on energy and environmental applications of MXene and MXene-based nanomaterials, including energy conversion and storage, adsorption, membrane, photocatalysis, and antimicrobial. Future research needs are discussed briefly with current challenges that must be overcome before we completely understand the extraordinary properties of MXene and MXene-based nanomaterials.
Key Findings
1
Further research is needed to address current challenges before MXenes can be fully characterized and effectively deployed.
2
MXenes are two-dimensional nanomaterials with distinctive properties including high safety, large interlayer spacing, environmental flexibility, extensive surface area, and thermal conductivity.
3
MXenes show broad potential across energy and environmental technologies, but their extraordinary properties and practical applications remain insufficiently understood.
4
The MXene family originated from etching the A layer of Ti₃AlC₂ MAX phases to produce multilayered Ti₃C₂Tₓ, first reported in 2011.
5
The review covers MXene and MXene-based nanomaterials for energy conversion and storage, adsorption, membranes, photocatalysis, and antimicrobial applications.
Research Object
MXenes and MXene-based nanomaterials
Research Subject
Their properties and applications in energy conversion and storage and selected environmental processes, including adsorption, membrane separation, photocatalysis, and antimicrobial activity
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2018-10-29
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