Willian G. Lowrie Department of Chemical and Biomolecular Engineering, The Ohio State University, Columbus, OH, 43210, USA.
Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA, 91125, USA.
Nat Commun. 2023 Apr 8;14(1):1982. doi: 10.1038/s41467-023-37436-6.
Harvesting largely ignored and wasted electromagnetic (EM) energy released by electronic devices and converting it into direct current (DC) electricity is an attractive strategy not only to reduce EM pollution but also address the ever-increasing energy crisis. Here we report the synthesis of nanoparticle-templated graphene with monodisperse and staggered circular nanopores enabling an EM-heat-DC conversion pathway. We experimentally and theoretically demonstrate that this staggered nanoporous structure alters graphene's electronic and phononic properties by synergistically manipulating its intralayer nanostructures and interlayer interactions. The staggered circular nanoporous graphene exhibits an anomalous combination of properties, which lead to an efficient absorption and conversion of EM waves into heat and in turn an output of DC electricity through the thermoelectric effect. Overall, our results advance the fundamental understanding of the structure-property relationships of ordered nanoporous graphene, providing an effective strategy to reduce EM pollution and generate electric energy.
从电子设备中收集大量被忽视和浪费的电磁 (EM) 能量,并将其转换为直流电 (DC) 是一种很有吸引力的策略,不仅可以减少 EM 污染,还可以解决日益严重的能源危机。在这里,我们报告了一种基于纳米颗粒模板的具有单分散和交错圆形纳米孔的石墨烯的合成,从而实现了 EM-热-DC 的转换途径。我们通过实验和理论证明,这种交错纳米多孔结构通过协同调控其层内纳米结构和层间相互作用来改变石墨烯的电子和声子特性。交错的圆形纳米多孔石墨烯表现出异常的组合特性,这导致 EM 波的高效吸收和转换为热能,并通过塞贝克效应产生 DC 电能。总的来说,我们的结果推进了有序纳米多孔石墨烯的结构-性能关系的基础理解,为减少 EM 污染和产生电能提供了一种有效的策略。