Literature DB >> 29889493

Mesoscale Battery Science: The Behavior of Electrode Particles Caught on a Multispectral X-ray Camera.

Chenxi Wei1,2, Sihao Xia1,3, Hai Huang1,4, Yuwei Mao1,5, Piero Pianetta1, Yijin Liu1.   

Abstract

Functional materials and devices are usually morphologically complex and chemically heterogeneous. Their structures are often designed to be hierarchical because of the desired functionalities, which usually require many different components to work together in a coherent manner. The lithium ion battery, as an energy storage device, is a very typical example of this kind of structure. In a lithium ion battery, the cathode, anode, and separator are soaked in a liquid electrolyte, facilitating the back and forward shuttling of the lithium ions for energy storage and release. The desired performance of a lithium ion battery has many different aspects that need to be engineered and balanced depending on the targeted applications. In most cases, the cathode material has become the limiting factor for further improvements and, thus, has attracted intense attention from the research community. While the improvement in the overall performance of the lithium ion battery is the ultimate goal of the research in this field, understanding the relationship between the microscopic properties and the macroscopic behaviors of the materials/devices can inform the design of better battery chemistries for practical applications. As a result, it is of great fundamental and practical importance to investigate the electrode materials using experimental probes that can provide good chemical sensitivity and sufficient spatial resolution, ideally, under operating conditions. With this motivation, our group has been focusing on the development of the nanoscale full-field X-ray spectro-microscopy, which has now become a well-recognized tool for imaging battery electrode materials at the particle level. With nanoscale spatial resolution, this technique can effectively and efficiently tackle the intrinsically complicated mesoscale chemistry. It allows us to monitor the particles' morphological and chemical evolution upon battery operation, providing valuable insights that can be incorporated into the design of new battery chemistries. In this Account, we review a series of our recent studies of battery electrode materials using nanoscale full-field X-ray spectro-microscopy. The materials that are the subjects of our studies, including layer-structured and spinel-structured oxide cathodes, are technically very important as they not only play an important role in today's devices but also possess promising potential for future developments. We discuss how the subparticle level compositional and state-of-charge heterogeneity can be visualized and linked to the bulk performance through systematic quantification of the imaging data. Subsequently, we highlight recent ex situ and in situ observations of the cathode particles' response to different reaction conditions, including the spontaneously adjusted reaction pathways and the morphological changes for the mechanical strain release. The important role of surface chemistry in the system is also discussed. While the microscopic investigation at the particle level provides useful insights, the degree to which this represents the overall properties of the battery is always a question for further generalizing the conclusions. In order to address this concern, we finally discuss a high throughput experimental approach, in which a large number of cathode particles are scanned. We discuss a case study that demonstrates the identification and analysis of functionally important minority phases in an operating battery cell through big data mining methods. With an emphasis on the data/information mining aspect of the nanoscale X-ray spectro-microscopic study of battery cathode particles, we anticipate that this Account will attract more research to this field.

Entities:  

Year:  2018        PMID: 29889493     DOI: 10.1021/acs.accounts.8b00123

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


  7 in total

1.  Quantifying redox heterogeneity in single-crystalline LiCoO2 cathode particles.

Authors:  Chenxi Wei; Yanshuai Hong; Yangchao Tian; Xiqian Yu; Yijin Liu; Piero Pianetta
Journal:  J Synchrotron Radiat       Date:  2020-03-13       Impact factor: 2.616

Review 2.  Artificial Intelligence Applied to Battery Research: Hype or Reality?

Authors:  Teo Lombardo; Marc Duquesnoy; Hassna El-Bouysidy; Fabian Årén; Alfonso Gallo-Bueno; Peter Bjørn Jørgensen; Arghya Bhowmik; Arnaud Demortière; Elixabete Ayerbe; Francisco Alcaide; Marine Reynaud; Javier Carrasco; Alexis Grimaud; Chao Zhang; Tejs Vegge; Patrik Johansson; Alejandro A Franco
Journal:  Chem Rev       Date:  2021-09-16       Impact factor: 72.087

3.  Machine-learning-revealed statistics of the particle-carbon/binder detachment in lithium-ion battery cathodes.

Authors:  Zhisen Jiang; Jizhou Li; Yang Yang; Linqin Mu; Chenxi Wei; Xiqian Yu; Piero Pianetta; Kejie Zhao; Peter Cloetens; Feng Lin; Yijin Liu
Journal:  Nat Commun       Date:  2020-05-08       Impact factor: 14.919

4.  Depth-dependent valence stratification driven by oxygen redox in lithium-rich layered oxide.

Authors:  Jin Zhang; Qinchao Wang; Shaofeng Li; Zhisen Jiang; Sha Tan; Xuelong Wang; Kai Zhang; Qingxi Yuan; Sang-Jun Lee; Charles J Titus; Kent D Irwin; Dennis Nordlund; Jun-Sik Lee; Piero Pianetta; Xiqian Yu; Xianghui Xiao; Xiao-Qing Yang; Enyuan Hu; Yijin Liu
Journal:  Nat Commun       Date:  2020-12-11       Impact factor: 14.919

5.  Thermal-healing of lattice defects for high-energy single-crystalline battery cathodes.

Authors:  Shaofeng Li; Guannan Qian; Xiaomei He; Xiaojing Huang; Sang-Jun Lee; Zhisen Jiang; Yang Yang; Wei-Na Wang; Dechao Meng; Chang Yu; Jun-Sik Lee; Yong S Chu; Zi-Feng Ma; Piero Pianetta; Jieshan Qiu; Linsen Li; Kejie Zhao; Yijin Liu
Journal:  Nat Commun       Date:  2022-02-04       Impact factor: 14.919

6.  Effect of the grain arrangements on the thermal stability of polycrystalline nickel-rich lithium-based battery cathodes.

Authors:  Dong Hou; Zhengrui Xu; Zhijie Yang; Chunguang Kuai; Zhijia Du; Cheng-Jun Sun; Yang Ren; Jue Liu; Xianghui Xiao; Feng Lin
Journal:  Nat Commun       Date:  2022-06-15       Impact factor: 17.694

7.  Lithiation Mechanism in High-Entropy Oxides as Anode Materials for Li-Ion Batteries: An Operando XAS Study.

Authors:  P Ghigna; L Airoldi; M Fracchia; D Callegari; U Anselmi-Tamburini; P D'Angelo; N Pianta; R Ruffo; G Cibin; Danilo Oliveira de Souza; E Quartarone
Journal:  ACS Appl Mater Interfaces       Date:  2020-10-30       Impact factor: 9.229

  7 in total

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