Emerging Two-Dimensional Nanomaterials for Electrocatalysis
Новые двумерные наноматериалы для электрокатализа
2018-03-19
SCID: 54.1/a3qu6r5e
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2D electrocatalystselectrocatalytic carbon cycleelectrocatalytic nitrogen cycleelectrocatalytic water cycletwo-dimensional (2D) nanomaterials
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Abstract (AI)
Over the past few decades, the design and development of advanced electrocatalysts for efficient energy conversion technologies have been subjects of extensive study. With the discovery of graphene, two-dimensional (2D) nanomaterials have emerged as some of the most promising candidates for heterogeneous electrocatalysts due to their unique physical, chemical, and electronic properties. Here, we review 2D-nanomaterial-based electrocatalysts for selected electrocatalytic processes. We first discuss the unique advances in 2D electrocatalysts based on different compositions and functions followed by specific design principles. Following this overview, we discuss various 2D electrocatalysts for electrocatalytic processes involved in the water cycle, carbon cycle, and nitrogen cycle from their fundamental conception to their functional application. We place a significant emphasis on different engineering strategies for 2D nanomaterials and the influence these strategies have on intrinsic material performance, such as electronic properties and adsorption energetics. Finally, we feature the opportunities and challenges ahead for 2D nanomaterials as efficient electrocatalysts. By considering theoretical calculations, surface characterization, and electrochemical tests, we describe the fundamental relationships between electronic structure, adsorption energy, and apparent activity for a wide variety of 2D electrocatalysts with the goal of providing a better understanding of these emerging nanomaterials at the atomic level.
Key Findings
1
Engineering strategies for 2D nanomaterials significantly influence electronic properties and adsorption energetics, affecting catalytic activity.
2
Opportunities and challenges for 2D nanomaterials across water, carbon, and nitrogen electrocatalytic cycles are identified from fundamental conception to application.
3
The paper connects theoretical calculations, surface characterization, and electrochemical tests to relate electronic structure, adsorption energy, and apparent activity.
4
The review summarizes design principles and composition/function advances for 2D electrocatalysts, linking engineering strategies to intrinsic performance.
5
Two-dimensional (2D) nanomaterials are promising heterogeneous electrocatalysts due to unique physical, chemical, and electronic properties.
Research Object
Two-dimensional (2D) nanomaterials used as heterogeneous electrocatalysts
Research Subject
Their electrocatalytic performance and underlying relationships among electronic structure, adsorption energetics, and apparent activity, including effects of composition, engineering strategies, and design principles for water, carbon, and nitrogen cycle reactions
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2018-03-19
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