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嵌入核壳CoP/MoP@C纳米颗粒的3D N、P共掺杂石墨烯微球的喷雾干燥组装用于增强锂离子存储

Spray-dried assembly of 3D N,P-Co-doped graphene microspheres embedded with core-shell CoP/MoP@C nanoparticles for enhanced lithium-ion storage.

作者信息

Muhammad Ishaq, Jabeen Maher, Wang Peiran, He Yu-Shi, Liao Xiao-Zhen, Ma Zi-Feng

机构信息

Shanghai Electrochemical Energy Devices Research Centre, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Dalton Trans. 2021 Apr 7;50(13):4555-4566. doi: 10.1039/d1dt00210d. Epub 2021 Mar 17.

Abstract

The advancement of novel synthetic approaches for micro/nanostructural manipulation of transition metal phosphide (TMP) materials with precisely controlled engineering is crucial to realize their practical use in batteries. Here, we develop a novel spray-drying strategy to construct three-dimensional (3D) N,P co-doped graphene (G-NP) microspheres embedded with core-shell CoP@C and MoP@C nanoparticles (CoP@C⊂G-NP, MoP@⊂G-NP). This intentional design shows a close correlation between the microstructural G-NP and chemistry of the core-shell CoP@C/MoP@C nanoparticle system that contributes towards their anode performance in lithium-ion batteries (LIBs). The obtained structure features a conformal porous G-NP framework prepared via the co-doping of heteroatoms (N,P) that features a 3D conductive highway that allows rapid ion and electron passage and maintains the overall structural integrity of the material. The interior carbon shell can efficiently restrain volume evolution and prevent CoP/MoP nanoparticle aggregation, providing excellent mechanical stability. As a result, the CoP@C⊂G-NP and MoP@⊂G-NP composites deliver high specific capacities of 823.6 and 602.9 mA h g at a current density of 0.1 A g and exhibit excellent cycling stabilities of 438 and 301 mA h g after 500 and 800 cycles at 1 A g. The present work details a novel approach to fabricate core-shell TMPs@C⊂G-NP-based electrode materials for use in next-generation LIBs and can be expanded to other potential energy storage applications.

摘要

开发具有精确控制工程的过渡金属磷化物(TMP)材料的微/纳米结构操纵的新型合成方法对于实现其在电池中的实际应用至关重要。在此,我们开发了一种新型喷雾干燥策略,以构建嵌入核壳CoP@C和MoP@C纳米颗粒(CoP@C⊂G-NP,MoP@⊂G-NP)的三维(3D)N、P共掺杂石墨烯(G-NP)微球。这种有意设计显示了微观结构G-NP与核壳CoP@C/MoP@C纳米颗粒系统的化学性质之间的密切相关性,这有助于它们在锂离子电池(LIB)中的阳极性能。所获得的结构具有通过杂原子(N、P)共掺杂制备的保形多孔G-NP框架,其具有3D导电通道,允许离子和电子快速通过并保持材料的整体结构完整性。内部碳壳可以有效地抑制体积变化并防止CoP/MoP纳米颗粒聚集,提供出色的机械稳定性。结果,CoP@C⊂G-NP和MoP@⊂G-NP复合材料在0.1 A g的电流密度下具有823.6和602.9 mA h g的高比容量,并且在1 A g下经过500和800次循环后分别表现出438和301 mA h g的出色循环稳定性。本工作详细介绍了一种制备用于下一代LIB的核壳TMPs@C⊂G-NP基电极材料的新方法,并且可以扩展到其他潜在的能量存储应用。

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