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Hierarchical porous one-dimensional N-doped C framework comprising ultrafine Mo2C catalysts for stable Na/K–Se batteries: Experimental and theoretical investigations

多孔性 兴奋剂 催化作用 化学工程 材料科学 纳米技术 化学 复合材料 有机化学 工程类 光电子学
作者
Sung Woo Cho,Hyun Ho Choi,Thillai Govindaraja Senthamaraikannan,Dong‐Hee Lim,Gi Dae Park,Chungyeon Cho,Sang Mun Jeong,Rakesh Saroha,Jung Sang Cho
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:512: 162456-162456 被引量:4
标识
DOI:10.1016/j.cej.2025.162456
摘要

Herein, we designed one-dimensional (1D) highly porous and conductive N-doped carbonaceous framework (P–N–C) with ultrafine molybdenum carbide (Mo 2 C) catalysts and applied it as host for Se infiltration (Se@P–N–C@Mo 2 C). The final product demonstrates reversible insertion/de-insertion of Na/K-ion with high rate capability and stable cycling performance. • Porous and conductive N-doped carbonaceous framework (P–N–C) is prepared. • Well-integrated with ultrafine molybdenum carbide (Mo 2 C) catalysts. • Se infiltrated (Se@P–N–C@Mo 2 C) product utilized for sodium/potassium batteries. • Electrophilic coupling interaction between M o δ + and S e x 2 - . This study explores the integration of a highly porous and conductive N-doped carbonaceous framework (P–N–C) with ultrafine molybdenum carbide (Mo 2 C) catalysts and utilized it as an outstanding cathode host for Se infiltration (Se@P–N–C@Mo 2 C). The one-dimensional (1D) porous structure is obtained by typical electrospinning, followed by carbonization. The complete thermal decomposition of the elongated polystyrene phase generates 1D continuous macroporous tunnel-like channels, and subsequent potassium hydroxide (KOH) activation induces micropore formation. The macroporous channels facilitate easy electrolyte percolation, ensuring smooth and rapid electron/ion diffusion by decreasing the diffusion length and accommodating undesirable volume perturbations. The KOH-induced micropores enable the efficient infiltration of high Se amounts. Additionally, N-doping in the carbon species enhances the electronic conductivity of the nanostructure. The ultrafine Mo 2 C catalysts facilitate the efficient trapping and electrocatalytic conversion of Na/K–polyselenide species via an electrophilic coupling interaction between M o δ + and S e x 2 - in Mo 2 C and Na 2 Se x or K 2 Se x species, respectively, thereby enhancing active-material utilization. Consequently, the cell comprising the Se@P–N–C@Mo 2 C cathode exhibits high-rate capability (up to 10.0C) and long-term cycling stability at 0.5C and 1.0C (400 cycles each), when tested for Na-ion storage. Similarly, a high and stable discharge capacity, 235 mA h g −1 (87 % retention, 220 cycles), is observed at a C-rate of 1.0C in K-ion storage. As an anode in full-cell configuration, the Se@P–N–C@Mo 2 C electrode achieves reversible Na/K-ions insertion/de-insertion, highlighting its suitability for commercial applications.
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