daohang fenxiangbox searchbox qikanlogonew daohangnew searchboxnew navrightzone footerzone paper

3D Quantification of Elemental Gradients within Heterostructured Particles of Battery Cathodes AITranslate

University of Illinois Chicago; Argonne National Laboratory; University of Illinois Chicago; University of Illinois Chicago; Argonne National Laboratory; University of Illinois Chicago; University of Illinois Chicago
AITranslate
Publisher: ACS
Share Citation Information Add to Favorites

    Scan to share on WeChat or Moments

Use WeChat scan.
Share with WeChat friends or Moments

Abstract AITranslate

Heterogenous architectures with elemental gradients tailored within particles have been pursued to combat the instabilities limiting Ni-rich cathode materials for lithium-ion batteries. The growth of different compositional layers is accomplished during the synthesis of hydroxide precursors. However, the extent to which these concentration gradients are modified during high-temperature reactions is difficult to establish in their intact, spherical form. Here, we show the entire three-dimensional structure of a secondary particle can be resolved nondestructively with differential X-ray absorption spectroscopy (XAS) through transmission X-ray microscopy (TXM). The relationship between particle location and elemental content was fully quantified, with high statistical significance, for heterostructures possessing different compositional gradients in the precursors with 90:5:5 Ni:Mn:Co core compositions. Reduced elemental heterogeneity was observed after high-temperature synthesis, but gradients remained. The methodology presented should be used to guide synthesis while assuring that gains in electrochemical performance are linked to precise elemental distributions at the nanoscale.

KeyWords AITranslate

No data

Basic Information:

DOI:https://doi.org/10.1021/acsenergylett.2c02619

Chinese Library Classification Number:

Citation Information:

Heterogenous architectures with elemental gradients tailored within particles have been pursued to combat the instabilities limiting Ni-rich cathode materials for lithium-ion batteries. The growth of different compositional layers is accomplished during the synthesis of hydroxide precursors. However, the extent to which these concentration gradients are modified during high-temperature reactions is difficult to establish in their intact, spherical form. Here, we show the entire three-dimensional structure of a secondary particle can be resolved nondestructively with differential X-ray absorption spectroscopy (XAS) through transmission X-ray microscopy (TXM). The relationship between particle location and elemental content was fully quantified, with high statistical significance, for heterostructures possessing different compositional gradients in the precursors with 90:5:5 Ni:Mn:Co core compositions. Reduced elemental heterogeneity was observed after high-temperature synthesis, but gradients remained. The methodology presented should be used to guide synthesis while assuring that gains in electrochemical performance are linked to precise elemental distributions at the nanoscale.

quote

GB/T 7714-2015 [1] Eva Allen, Youngho Shin, William Judge, et al. ACS Energy Letters, 2023(8). DOI:10.1021/acsenergylett.2c02619.
MLA [1] Eva Allen, et al., ACS Energy Letters, no. 8, 2023, https://doi.org/10.1021/acsenergylett.2c02619.
APA [1] Eva Allen, Youngho Shin, William Judge, Mark Wolfman, Vincent De Andrade, Stephanie M. Cologna, & Jordi Cabana. (2023). ACS Energy Letters(8). https://doi.org/10.1021/acsenergylett.2c02619
IEEE [1] Eva Allen, Youngho Shin, William Judge, Mark Wolfman, Vincent De Andrade, Stephanie M. Cologna, and Jordi Cabana, ACS Energy Letters, no. 8, 2023, doi: 10.1021/acsenergylett.2c02619.