Homogeneous triple-phase interfaces enabling one-pot route to metal compound/carbon composites

Herein, triple-phase interface was proposed for successfully realizing one-pot fabrication of metal compound/carbon composites (i.e., metal sulfides/carbon composites, metal selenides/carbon composites and metal phosphides/carbon composites). Compared to the traditional strategies, our synthetic app...

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Veröffentlicht in:Journal of colloid and interface science 2021-10, Vol.599, p.271-279
Hauptverfasser: Hu, Shuyu, Zhang, Weicai, Zheng, Mingtao, Hu, Hang, Xiao, Yong, Liu, Yingliang, Liang, Yeru
Format: Artikel
Sprache:eng
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Zusammenfassung:Herein, triple-phase interface was proposed for successfully realizing one-pot fabrication of metal compound/carbon composites (i.e., metal sulfides/carbon composites, metal selenides/carbon composites and metal phosphides/carbon composites). Compared to the traditional strategies, our synthetic approach provides several prominent merits, including reduced synthetic procedures, high accordance with requirements of energy-saving and environmental protection, and exceptional generality. [Display omitted] Metal compounds (e.g., metal phosphides/sulfides/selenides) coupled with carbon materials have recently drawn great attraction for boosting the electrochemical performances because of their appealing synergistic effect and valuable structural stability. Despite many examples for their synthesis exist, there is still a need for a simplistic and comprehensive approach to such metal compound/carbon (MC/C) composites. Herein, an effective, facile, yet versatile strategy to produce various types of MC/C composites is presented. Key to this strategy is construction of a homogeneous triple-phase interface, which is realized by utilization of a hybrid assembly integrated with carbon, metal and sulfide (or selenide, phosphide) precursors through coupling metal cations with anion groups of a functional polymer. Such an intimately binding carbon-metal-sulfide (or selenide, phosphide) interface structure enables the successful in situ generation of MC nanoparticles uniformly encapsulated into the carbon matrix just after a one-step carbonization treatment. The present synthetic strategy provides remarkable adjustability, predictability and generality to facilely fabricate a series of MC/C composites, offering sufficient freedom to explore their unique energy storage/conversation properties. As a proof of concept, the as-prepared SnS/C composite exhibits superior lithium ion and potassium ion storage capabilities when used as anode materials for alkali-metal ion batteries. The present work provides impressive insights into the design principles for MC/C composites that are the potential materials in targeted application fields, and opens up an efficacious avenue for their facile synthesis as well.
ISSN:0021-9797
1095-7103
DOI:10.1016/j.jcis.2021.04.054