Compositional engineering of Lignocellulose via selective delignification toward closed-pore-rich hard carbon for high-plateau-capacity sodium storage

Loading...
Thumbnail Image

Date

Journal Title

Journal ISSN

Volume Title

Publisher

American Chemical Society

Abstract

Hard carbon derived from lignocellulosic biomass is a promising anode candidate for sodium-ion batteries due to its low cost and renewability. However, its practical application is limited by insufficient low-voltage plateau capacity, which is closely related to the closed-pore structure. Herein, we report a green and scalable compositional engineering strategy based on alkaline sulfite pretreatment, an industrially mature pulping process, to convert waste wood into closed-pore-rich hard carbon anodes. By selectively cleaving β-O-4 linkages in lignin, this pretreatment increases the relative cellulose content and fundamentally alters the carbonization pathway, yielding a highly disordered turbostratic structure. The optimized hard carbon (HHC-20) exhibits a doubled closed-pore volume (from 0.073 to 0.178 cm3 g–1) and an expanded interlayer spacing (0.385 nm). Consequently, HHC-20 delivers a high reversible capacity of 347 mAh g–1 at 20 mA g–1, with an outstanding low-voltage plateau capacity of 205 mAh g–1 and an initial Coulombic efficiency of 89.1%. In situ spectroscopic characterizations reveal a sequential sodium storage mechanism involving surface adsorption, interlayer intercalation, and pore filling. This work offers a sustainable and commercially viable pathway for designing high-performance hard carbon anodes for sodium-ion batteries. © 2026 American Chemical Society

Description

Citation

Liao, Y., Wang, Q., Huang, Y., Zhong, L., Li, T., Zou, R., Dai, Z., Iwuoha, E., Ocakoglu, K., Feleni, U. and Ren, J., 2026. Compositional Engineering of Lignocellulose via Selective Delignification toward Closed-Pore-Rich Hard Carbon for High-Plateau-Capacity Sodium Storage. ACS Applied Energy Materials.