DFT-Guided Design and Fabrication of Carbon-Nitride-Based Materials for Energy Storage Devices: A Review.

Nanomicro Lett

Centre for Clean Environment and Energy, School of Environment and Science, Griffith University, Gold Coast Campus, Gold Coast, QLD, 4222, Australia.

Published: October 2020

AI Article Synopsis

  • Carbon nitrides are a group of nitrogen-rich carbon materials that have various beneficial properties and applications in rechargeable batteries.
  • This review highlights their unique structures and the theoretical advantages, synthesis methods, and modifications of carbon nitride-based materials (CNBMs) specifically for use in batteries like lithium-ion, sodium-ion, and solid-state batteries.
  • The focus is on using theoretical and computational methods to guide the experimental development of CNBMs, and it also discusses the challenges and future directions for improving these materials in energy storage technologies.

Article Abstract

Carbon nitrides (including CN, CN, CN, CN, CN, and CN) are a unique family of nitrogen-rich carbon materials with multiple beneficial properties in crystalline structures, morphologies, and electronic configurations. In this review, we provide a comprehensive review on these materials properties, theoretical advantages, the synthesis and modification strategies of different carbon nitride-based materials (CNBMs) and their application in existing and emerging rechargeable battery systems, such as lithium-ion batteries, sodium and potassium-ion batteries, lithium sulfur batteries, lithium oxygen batteries, lithium metal batteries, zinc-ion batteries, and solid-state batteries. The central theme of this review is to apply the theoretical and computational design to guide the experimental synthesis of CNBMs for energy storage, i.e., facilitate the application of first-principle studies and density functional theory for electrode material design, synthesis, and characterization of different CNBMs for the aforementioned rechargeable batteries. At last, we conclude with the challenges, and prospects of CNBMs, and propose future perspectives and strategies for further advancement of CNBMs for rechargeable batteries.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8187489PMC
http://dx.doi.org/10.1007/s40820-020-00522-1DOI Listing

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