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具有牺牲保护层的聚丙烯腈纳米粒子的高氮含量的个体纳米多孔碳球。

Individual Nanoporous Carbon Spheres with High Nitrogen Content from Polyacrylonitrile Nanoparticles with Sacrificial Protective Layers.

机构信息

Department of Chemistry, Carnegie Mellon University , 4400 Fifth Avenue, Pittsburgh, Pennsylvania 15213, United States.

Department of Materials Science and Engineering, Carnegie Mellon University , 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Nov 1;9(43):37804-37812. doi: 10.1021/acsami.7b11910. Epub 2017 Oct 17.

Abstract

Functional nanoporous carbon spheres (NPC-S) are important for applications ranging from adsorption, catalysis, separation to energy storage, and biomedicine. The development of effective NPC-S materials has been hindered by the fusion of particles during the pyrolytic process that results in agglomerated materials with reduced activity. Herein, we present a process that enables the scalable synthesis of dispersed NPC-S materials by coating sacrificial protective layers around polyacrylonitrile nanoparticles (PAN NPs) to prevent interparticle cross-linking during carbonization. In a first step, PAN NPs are synthesized using miniemulsion polymerization, followed by grafting of 3-(triethoxysilyl)propyl methacrylate (TESPMA) to form well-defined core-shell structured PAN@PTESPMA nanospheres. The cross-linked PTESPMA brush layer suppresses cross-linking reactions during carbonization. Uniform NPC-S exhibiting diameters of ∼100 nm, with relatively high accessible surface area (∼424 m/g), and high nitrogen content (14.8 wt %) was obtained. When compared to a regular nanoporous carbon monolith (NPC-M), the nitrogen-doped NPC-S demonstrated better performance for CO capture with a higher CO/N selectivity, an increased efficiency in catalytic oxygen reduction reactions, as well as improved electrochemical capacitive behavior. This miniemulsion polymerization-based strategy for the preparation of functional PAN NPs provides a new, facile approach to prepare high-performance porous carbon spheres for diverse applications.

摘要

功能性纳米多孔碳球(NPC-S)在吸附、催化、分离到储能和生物医药等领域的应用中非常重要。由于在热解过程中颗粒融合,导致团聚材料活性降低,因此有效 NPC-S 材料的开发受到了阻碍。在此,我们提出了一种通过在聚丙烯腈纳米颗粒(PAN NPs)周围包覆牺牲保护层来防止碳化过程中颗粒间交联的方法,从而实现分散的 NPC-S 材料的规模化合成。在第一步中,使用细乳液聚合合成 PAN NPs,然后接枝 3-(三乙氧基硅基)丙基甲基丙烯酸酯(TESPMA),形成具有良好定义的核壳结构的 PAN@PTESPMA 纳米球。交联的 PTESPMA 刷层抑制碳化过程中的交联反应。得到了直径约为 100nm、具有较高比表面积(约 424m²/g)和较高氮含量(14.8wt%)的均匀 NPC-S。与常规的纳米多孔碳块(NPC-M)相比,氮掺杂的 NPC-S 在 CO 捕获方面表现出更好的性能,具有更高的 CO/N 选择性、更高的催化氧还原反应效率以及更好的电化学电容行为。这种基于细乳液聚合的制备功能性 PAN NPs 的策略为制备用于各种应用的高性能多孔碳球提供了一种新的、简便的方法。

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