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Rational Design of Preintercalated Electrodes for Rechargeable Batteries AITranslate

University of Surrey; University of Surrey; University of Surrey; Wuhan University of Technology
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Publisher: ACS
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Abstract AITranslate

Rational design of the morphology and complementary compounding of electrode materials have contributed substantially to improving battery performance, yet the capabilities of conventional electrode materials have remained limited in some key parameters including energy and power density, cycling stability, etc. because of their intrinsic properties, especially the restricted thermodynamics of reactions and the inherent slow diffusion dynamics induced by the crystal structures. In contrast, preintercalation of ions or molecules into the crystal structure with/without further lattice reconstruction could provide fundamental optimizations to overcome these intrinsic limitations. In this Perspective, we discuss the essential optimization mechanisms of preintercalation in improving electronic conductivity and ionic diffusion, inhibiting “lattice breathing” and screening the carrier charge. We also summarize the current challenges in preintercalation and offer insights on future opportunities for the rational design of preintercalation electrodes in next-generation rechargeable batteries.

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DOI:https://doi.org/10.1021/acsenergylett.8b02555

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Citation Information:

Rational design of the morphology and complementary compounding of electrode materials have contributed substantially to improving battery performance, yet the capabilities of conventional electrode materials have remained limited in some key parameters including energy and power density, cycling stability, etc. because of their intrinsic properties, especially the restricted thermodynamics of reactions and the inherent slow diffusion dynamics induced by the crystal structures. In contrast, preintercalation of ions or molecules into the crystal structure with/without further lattice reconstruction could provide fundamental optimizations to overcome these intrinsic limitations. In this Perspective, we discuss the essential optimization mechanisms of preintercalation in improving electronic conductivity and ionic diffusion, inhibiting “lattice breathing” and screening the carrier charge. We also summarize the current challenges in preintercalation and offer insights on future opportunities for the rational design of preintercalation electrodes in next-generation rechargeable batteries.

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GB/T 7714-2015 [1] Xuhui Yao, Yunlong Zhao, Fernando A. Castro, et al. ACS Energy Letters, 2019(4). DOI:10.1021/acsenergylett.8b02555.
MLA [1] Xuhui Yao, et al., ACS Energy Letters, no. 4, 2019, https://doi.org/10.1021/acsenergylett.8b02555.
APA [1] Xuhui Yao, Yunlong Zhao, Fernando A. Castro, & Liqiang Mai. (2019). ACS Energy Letters(4). https://doi.org/10.1021/acsenergylett.8b02555
IEEE [1] Xuhui Yao, Yunlong Zhao, Fernando A. Castro, and Liqiang Mai, ACS Energy Letters, no. 4, 2019, doi: 10.1021/acsenergylett.8b02555.