Parente Michael Jack, Sitharaman Balaji
Millennial Scientific, Stony Brook, New York 11790, United States.
ACS Omega. 2023 Sep 5;8(37):34034-34043. doi: 10.1021/acsomega.3c05042. eCollection 2023 Sep 19.
We report a microfluidic-based droplet generation platform for synthesizing micron-sized porous carbon microspheres. The setup employs carbon materials such as graphite, carbon nanotubes, graphene, fullerenes, and carbon black as starting materials. Custom composition, structure, and function are achieved through combinations of carbon materials, cross-linkers, and additives along with variations in process parameters. Carbon materials can be assembled into spheres with a mean diameter of units to hundreds of μm with relatively tight size distribution (<25% RSD). Pore structure and size (tens to hundreds of angstrom) can be modulated by incorporating porogen/coporogen dilutants during synthesis. The microbeads have excellent mechanical stability with an elastic modulus of hundreds of MPa. They can sustain high dynamic fluid flow pressures of up to 9000 psi. This work lays the foundation for synthesizing novel tailorable and customizable carbon microbeads. It opens avenues for applying these novel materials for composite and additive manufacturing, energy, life science, and biomedical applications.
我们报道了一种基于微流体的液滴生成平台,用于合成微米级多孔碳微球。该装置采用石墨、碳纳米管、石墨烯、富勒烯和炭黑等碳材料作为起始原料。通过碳材料、交联剂和添加剂的组合以及工艺参数的变化,实现了定制的组成、结构和功能。碳材料可以组装成平均直径为几微米到数百微米的球体,尺寸分布相对紧密(<25% RSD)。在合成过程中加入致孔剂/共致孔剂稀释剂,可以调节孔结构和尺寸(几十到几百埃)。微珠具有优异的机械稳定性,弹性模量可达数百兆帕。它们能够承受高达9000 psi的高动态流体流动压力。这项工作为合成新型可定制和可定制的碳微珠奠定了基础。它为将这些新型材料应用于复合材料和增材制造、能源、生命科学和生物医学应用开辟了道路。