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Updated: Aug 5, 2026

Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering
Published on: April 17, 2018
Atomic Editing of the First-Shell to Modulate the d-Electron State of Transition Metal Sites for Accelerated Redox
Yan Zhao1, Ziyun Shang2, Tianxiu Yan1
1School of Materials Science and Engineering, Zhongyuan Critical Metals Laboratory, Zhengzhou University, Zhengzhou, China.
Abstract:
Organometallic macrocyclic molecules have shown great potential to accelerate the reaction kinetics in Li-S batteries. However, it is still challenging to precisely tailor the microenvironment of metal sites and enhance its intrinsic reactivity. Herein, inspired by single-atom editing in organic chemistry, we prepared a series of isolobal nickel-based organometallic macrocyclic molecules (denoted as Ni-NxCy) to optimize the steric configuration and d-orbital states of Ni sites by tuning the first coordination shell at atom-level. In situ x-ray absorption spectroscopy revealed the dynamic evolution of nickel sites, while in situ Raman spectra demonstrated the accelerated sulfur conversion kinetics for Ni-N2C2 in Li-S batteries. Theoretical calculations confirmed that the geometric configuration of Ni-NxCy can be modulated by first-shell atoms, when the dxy and dx 2-y 2 orbitals of nickel can be activated for N2C2-coordinated Ni site. In addition, the up-shift of d-band center for Ni-N2C2 further facilitates its hybridization with sulfur species. Consequently, cells with Ni-N2C2 deliver 1277 mA h g-1 at 0.5 C, while showing a decay rate of 0.04% at 2 C. Furthermore, an Ah-level pouch cell with energy density of 393 W h kg-1 can be achieved based on the total mass of cell. This work provides mechanistic insights into the microenvironment regulation of single-metal-site and structure-activity relationships in Li-S batteries.
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