Zhifei Mao, Jun Jin, Rui Wang, Yansheng Gong, Ruigang Wang, Huanwen Wang
Potassium-ion batteries (KIBs) have emerged as promising candidates for grid-scale energy storage due to abundant K resources and reversible K+ de-/intercalation in graphite (KC8, 279 mAh g-1). However, practical application is hindered by severe volume expansion (≈60% for K+ vs. ≈10% for Li+), which induces stress accumulation, structural degradation, and capacity fading. Here, we develop a few-layer quasi-graphite (QGr) via structural reconstruction of graphite to regulate its mechanical stability and kinetics. The resulting QGr architecture integrates ordered domains with mechanically compliant graphene interfaces, creating a rigid-flexible synergy that alleviates intercalation-induced stress and lowers the kinetic barrier for K+ intercalation. As a result, the QGr anode delivers a reversible capacity of 279.2 mAh g-1 at 0.1 A g-1 and maintains stable cycling over 1200 cycles. Notably, QGr exhibits a pronounced low-voltage plateau of 246.1 mAh g-1 below 0.5 V. Combined in situ Raman spectroscopy and kinetic analysis demonstrates that K+-storage in QGr is dominated by an intercalation mechanism. This work demonstrates that rational structural engineering of graphite can simultaneously regulate structural stability and ion transport kinetics, providing a promising strategy for designing high-energy KIBs.