Literature DB >> 29373023

Understanding Conversion-Type Electrodes for Lithium Rechargeable Batteries.

Seung-Ho Yu1,2, Xinran Feng1, Na Zhang1, Jeesoo Seok1, Héctor D Abruña1.   

Abstract

The need/desire to lower the consumption of fossil fuels and its environmental consequences has reached unprecedented levels in recent years. A global effort has been undertaken to develop advanced renewable energy generation and especially energy storage technologies, as they would enable a dramatic increase in the effective and efficient use of renewable (and often intermittent) energy sources. The development of electrical energy storage (EES) technologies with high energy and power densities, long life, low cost, and safe use represents a challenge from both the fundamental science and technological application points of view. While the advent and broad deployment of lithium-ion batteries (LIBs) has dramatically changed the EES landscape, their performance metrics need to be greatly enhanced to keep pace with the ever-increasing demands imposed by modern consumer electronics and especially the emerging automotive markets. Current battery technologies are mostly based on the use of a transition metal oxide cathode (e.g., LiCoO2, LiFePO4, or LiNiMnCoO2) and a graphite anode, both of which depend on intercalation/insertion of lithium ions for operation. While the cathode material currently limits the battery capacity and overall energy density, there is a great deal of interest in the development of high-capacity cathode materials as well as anode materials. Conversion reaction materials have been identified/proposed as potentially high-energy-density alternatives to intercalation-based materials. However, conversion reaction materials react during lithiation to form entirely new products, often with dramatically changed structure and chemistry, by reaction mechanisms that are still not completely understood. This makes it difficult to clearly distinguish the limitations imposed by the mechanism and practical losses from initial particle morphology, synthetic approaches, and electrode preparations. Transition metal compounds such as transition metal oxides, sulfides, fluorides, phosphides, and nitrides can undergo conversion reactions yielding materials with high theoretical capacity (generally from 500 to 1500 mA h g-1). In particular, a number of transition metal oxides and sulfides have shown excellent electrochemical properties as high-capacity anode materials. In addition, some transition metal fluorides have shown great potential as cathode materials for Li rechargeable batteries. In this Account we present mechanistic studies, with emphasis on the use of operando methods, of selected examples of conversion-type materials as both potentially high-energy-density anodes and cathodes in EES applications. We also include examples of the conceptually similar conversion-type reactions involving chalcogens and halogens, with emphasis on the Li-S system. In this case we focus on the problems arising from the low electrical conductivities of elemental sulfur and Li2S and the "redox shuttle" phenomena of polysulfides. In addition to mechanistic insights from the use of operando methods, we also cover several key strategies in electrode materials design such as controlling the size, morphology, composition, and architecture.

Entities:  

Year:  2018        PMID: 29373023     DOI: 10.1021/acs.accounts.7b00487

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  8 in total

1.  A medium-entropy transition metal oxide cathode for high-capacity lithium metal batteries.

Authors:  Yi Pei; Qing Chen; Meiyu Wang; Pengjun Zhang; Qingyong Ren; Jingkai Qin; Penghao Xiao; Li Song; Yu Chen; Wen Yin; Xin Tong; Liang Zhen; Peng Wang; Cheng-Yan Xu
Journal:  Nat Commun       Date:  2022-10-18       Impact factor: 17.694

2.  Multi-electron transfer enabled by topotactic reaction in magnetite.

Authors:  Wei Zhang; Yan Li; Lijun Wu; Yandong Duan; Kim Kisslinger; Chunlin Chen; David C Bock; Feng Pan; Yimei Zhu; Amy C Marschilok; Esther S Takeuchi; Kenneth J Takeuchi; Feng Wang
Journal:  Nat Commun       Date:  2019-04-29       Impact factor: 14.919

Review 3.  Beyond Intercalation Chemistry for Rechargeable Mg Batteries: A Short Review and Perspective.

Authors:  Zhirong Zhao-Karger; Maximilian Fichtner
Journal:  Front Chem       Date:  2019-01-15       Impact factor: 5.221

4.  Effect of Continuous Capacity Rising Performed by FeS/Fe3 C/C Composite Electrodes for Lithium-Ion Batteries.

Authors:  Chengping Li; Angelina Sarapulova; Kristina Pfeifer; Sonia Dsoke
Journal:  ChemSusChem       Date:  2020-02-06       Impact factor: 8.928

5.  Effects of Atmospheric Gases on Li Metal Cyclability and Solid-Electrolyte Interphase Formation.

Authors:  Evelyna Wang; Sunita Dey; Tao Liu; Svetlana Menkin; Clare P Grey
Journal:  ACS Energy Lett       Date:  2020-03-10       Impact factor: 23.101

6.  Electrochemical evaluation of porous CaFe2O4 anode material prepared via solution combustion synthesis at increasing fuel-to-oxidizer ratios and calcination temperatures.

Authors:  Jacob Strimaitis; Samuel A Danquah; Clifford Denize; Sangram K Pradhan; Messaoud Bahoura
Journal:  Sci Rep       Date:  2022-02-23       Impact factor: 4.379

7.  Electrochemical performance of Li+ insertion/extraction in Ni-substituted ZnCo2O4 as an emerging highly efficient anode material.

Authors:  Abdul Ghaffar; Ghulam Ali; Sidra Zawar; Mariam Hasan; Ghulam M Mustafa; Shahid Atiq; Shahid M Ramay
Journal:  RSC Adv       Date:  2020-08-03       Impact factor: 4.036

8.  Flower-Like MoSe2/MoO2 Composite with High Capacity and Long-Term Stability for Lithium-Ion Battery.

Authors:  Qiuyan Hao; Guoliang Cui; Yan Zhao; Zhumabay Bakenov
Journal:  Nanomaterials (Basel)       Date:  2019-09-05       Impact factor: 5.076

  8 in total

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