Related Experiment Video
Updated: Jun 4, 2026

Focused Ion Beam Fabrication of LiPON-based Solid-state Lithium-ion Nanobatteries for In Situ Testing
Published on: March 7, 2018
Accelerating Charge-Transfer Kinetics via Triggering Electron Spin Polarization in Open-Hollow MoS2 Nanospheres for
Kunxiong Zheng1,2, Hengyuan Hu1,2, Zhiyu Zou1,2
1Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, China.
Abstract:
The development of ultrafast-charging MoS2 anodes is fundamentally constrained by sluggish charge-transfer kinetics. This study addresses this limitation by triggering electron spin polarization through atomic-scale Co doping within open-hollow MoS2 nanospheres. Structurally, the open-hollow design minimizes ion diffusion distances and accommodates volume changes of MoS2, providing a robust foundation for rapid ion flux. Electronically, Co incorporation enhances S 3p-Mo 4d-Co 3d orbital hybridization, triggering a marked electron spin polarization that reduces kinetic barriers for insertion and conversion reactions. Post-conversion stage, in situ generated metallic Co nanoparticles (Co0) act as dynamic mediators for spin-polarized electron transfer. Specifically, the injection of spin-polarized electrons into Co° creates a spin-polarized surface capacitance, boosting charge storage at the Co0/Li2S interfaces. Conversely, the release of these electrons promotes a Co0-catalyzed construction of solid electrolyte interphase, prioritizing conductive LiF species while suppressing Li2CO3, facilitating ion transport at the electrode-electrolyte interfaces. Consequently, the MoS2-based anode exhibits an impressive ultrafast-charging capability of 30 C (1044.1 mAh g-1) and maintains stability over 10 000 cycles at 15 C with a final capacity of 874.7 mAh g-1. This work demonstrates that triggering electron spin polarization represents a transformative approach to overcoming kinetic barriers in next-generation ultrafast-charging batteries.

