4.6 Review

Emerging two-dimensional nanostructured manganese-based materials for electrochemical energy storage: recent advances, mechanisms, challenges, and prospects

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 10, Issue 40, Pages 21197-21250

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2ta05309h

Keywords

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Funding

  1. National Natural Science Foundation of China [21676036]
  2. Fundamental Research Funds for the Central Universities of Chongqing University [2019CDXYHG0013]
  3. Graduate Research and Innovation Foundation of Chongqing [CYB22043]
  4. Large-Scale Equipment Sharing Fund of Chongqing University [202103150115]

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This review provides a comprehensive overview of the application of 2D nanostructured Mn-based materials in electrochemical energy storage. It introduces different categories of Mn-based materials and summarizes their structures and applications, as well as recent advances in synthesis strategies and energy storage mechanisms. The relationship between 2D nanostructure and electrochemical properties is discussed, focusing on their applications in supercapacitors, alkali-ion batteries, and multivalent metal-ion batteries. Strategies to overcome the challenges of energy storage using 2D nanostructured Mn-based materials are also presented, along with insights for future development in this research direction.
By virtue of the prominent features of low cost, high surface area, wide potential window, high theoretical capacity and rich valence states, manganese (Mn)-based materials and their composites have attracted great interest as electrode materials for electrochemical energy storage (EES). Meanwhile, Mn-based materials with two-dimensional (2D) nanostructures have gained immense attention due to their larger specific surface area, which exposes active sites and increases the contact with the electrolyte. In the review, the several main categories of 2D nanostructured Mn-based materials including Mn-based oxides, hydroxides/layered double hydroxides (LDHs), sulfides, phosphides, and metal-organic frameworks (MOFs) are systematically introduced to offer a comprehensive overview about their structure and application for EES. Meanwhile, the recent advances in the investigation of their synthesis strategy, crystal structure, and electrochemical storage energy mechanism are summarized. Based on the relationship between the 2D nanostructure and electrochemical properties, their applications in supercapacitors (SCs), alkali (Li and Na)-ion batteries, and multivalent metal (Zn and Mg)-ion batteries (MIBs) are discussed in detail. Furthermore, this paper summarizes the representative strategies to overcome the bottlenecks of 2D nanostructured Mn-based materials for energy storage by introducing high conductivity materials, constructing advanced structures, and designing defect engineering. In addition, we discussed the challenges of 2D nanostructured Mn-based materials for SCs and MIBs and provided prospective insights for the future development of this research direction.

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