Wyss Kevin M, Chen Weiyin, Beckham Jacob L, Savas Paul E, Tour James M
Department of Chemistry, Rice University, 6100 Main Street, Houston, Texas 77005, United States.
Smalley-Curl Institute, NanoCarbon Center, Welch Institute for Advanced Materials, Department of Materials Science and NanoEngineering, Rice University, 6100 Main Street, Houston, Texas 77005, United States.
ACS Nano. 2022 May 24;16(5):7804-7815. doi: 10.1021/acsnano.2c00379. Epub 2022 Apr 26.
High surface area varieties of graphene have captured significant attention, allowing for improved performance in a variety of applications. However, there are challenges facing the use of graphene in these applications since it is expensive and difficult to synthesize in bulk. Here, we leverage the capabilities of flash Joule heating to synthesize holey and wrinkled flash graphene (HWFG) in seconds from mixed plastic waste feedstocks, using salt decomposition to produce and stabilize pore formation during the reaction. Surface areas as high as 874 m g are obtained, with characteristics of micro-, meso-, and macroporosities. Raman spectroscopy confirms the wrinkled and turbostratic nature of the HWFG. We demonstrate HWFG applications in its use as a metal-free hydrogen evolution reaction electrocatalyst, with excellent stability, competitive overpotential, and Tafel slope; in a Li-metal battery anode allowing for stable and high discharge rates; and in a material with high gas adsorption. This represents an upcycle of mixed plastic waste, thereby affording a valuable route to address this pressing environmental pollutant concern.
高比表面积的石墨烯品种引起了广泛关注,使其在各种应用中的性能得到改善。然而,在这些应用中使用石墨烯面临着挑战,因为它价格昂贵且难以大量合成。在这里,我们利用快速焦耳加热的能力,在几秒钟内从混合塑料废料中合成出多孔且有褶皱的快速石墨烯(HWFG),利用盐分解在反应过程中产生并稳定孔隙形成。获得了高达874 m²/g的比表面积,具有微孔、介孔和大孔的特征。拉曼光谱证实了HWFG的褶皱和乱层结构性质。我们展示了HWFG作为无金属析氢反应电催化剂的应用,具有出色的稳定性、有竞争力的过电位和塔菲尔斜率;在锂金属电池阳极中可实现稳定且高的放电速率;以及在具有高气体吸附性能的材料中的应用。这代表了混合塑料废料的升级回收,从而提供了一条解决这一紧迫环境污染物问题的宝贵途径。