Stanford Michael G, Bets Ksenia V, Luong Duy X, Advincula Paul A, Chen Weiyin, Li John Tianci, Wang Zhe, McHugh Emily A, Algozeeb Wala A, Yakobson Boris I, Tour James M
ACS Nano. 2020 Oct 27;14(10):13691-13699. doi: 10.1021/acsnano.0c05900. Epub 2020 Sep 16.
Flash Joule heating (FJH) can convert almost any carbon-based precursor into bulk quantities of graphene. This work explores the morphologies and properties of flash graphene (FG) generated from carbon black. It is shown that FG is partially comprised of sheets of turbostratic FG (tFG) that have a rotational mismatch between neighboring layers. The remainder of the FG is wrinkled graphene sheets that resemble nongraphitizing carbon. To generate high quality tFG sheets, a FJH duration of 30-100 ms is employed. Beyond 100 ms, the turbostratic sheets have time to AB-stack and form bulk graphite. Atomistic simulations reveal that generic thermal annealing yields predominantly wrinkled graphene which displays minimal to no alignment of graphitic planes, as opposed to the high-quality tFG that might be formed under the direct influence of current conducted through the material. The tFG was easily exfoliated via shear, hence the FJH process has the potential for bulk production of tFG without the need for pre-exfoliation using chemicals or high energy mechanical shear.
快速焦耳加热(FJH)可以将几乎任何碳基前驱体转化为大量的石墨烯。这项工作探索了由炭黑生成的快速石墨烯(FG)的形态和性质。结果表明,FG部分由具有相邻层间旋转错配的乱层FG(tFG)片组成。FG的其余部分是类似非石墨化碳的褶皱石墨烯片。为了生成高质量的tFG片,采用30 - 100毫秒的FJH持续时间。超过100毫秒,乱层片有时间进行AB堆叠并形成块状石墨。原子模拟表明,一般的热退火主要产生褶皱石墨烯,其石墨平面的排列极少甚至没有,这与在通过材料传导的电流直接影响下可能形成的高质量tFG相反。tFG通过剪切很容易剥离,因此FJH工艺有潜力大量生产tFG,而无需使用化学方法或高能机械剪切进行预剥离。