Schmidt Marek E, Muruganathan Manoharan, Kanzaki Teruhisa, Iwasaki Takuya, Hammam Ahmed M M, Suzuki Shunei, Ogawa Shinichi, Mizuta Hiroshi
School of Materials Science, Japan Advanced Institute of Science and Technology, 1-1 Asahidai, Nomi, Ishikawa, 923-1292, Japan.
Physics Department, Faculty of Science, Minia University, 11432 Main Road-Shalaby Land, Minia, 61519, Egypt.
Small. 2019 Nov;15(46):e1903025. doi: 10.1002/smll.201903025. Epub 2019 Oct 1.
The predicted quasiparticle energy gap of more than 1 eV in sub-6 nm graphene nanoribbons (GNRs) is elusive, as it is strongly suppressed by the substrate dielectric screening. The number of techniques that can produce suspended high-quality and electrically contacted GNRs is small. The helium ion beam milling technique is capable of achieving sub-5 nm patterning; however, the functional device fabrication and the electrical characteristics are not yet reported. Here, the electrical transport measurement of suspended ≈6 nm wide mono- and bilayer GNR functional devices is reported, which are obtained through sub-nanometer resolution helium ion beam milling with controlled total helium ion budget. The transport gap opening of 0.16-0.8 eV is observed at room temperature. The measured transport gap of the different edge orientated GNRs is in good agreement with first-principles simulation results. The enhanced electron-electron interaction and reduced dielectric screening in the suspended quasi-1D GNRs and anti-ferromagnetic coupling between opposite edges in the zigzag GNRs substantiate the observed large transport gap.
亚6纳米石墨烯纳米带(GNRs)中预测的超过1电子伏特的准粒子能隙难以捉摸,因为它会受到衬底介电屏蔽的强烈抑制。能够制造出悬浮的高质量且电接触的GNRs的技术数量很少。氦离子束铣削技术能够实现亚5纳米的图案化;然而,尚未报道其功能器件制造及电学特性。在此,报道了通过具有可控总氦离子剂量的亚纳米分辨率氦离子束铣削获得的悬浮的约6纳米宽单层和双层GNR功能器件的电输运测量。在室温下观察到0.16 - 0.8电子伏特的输运能隙开启。不同边缘取向的GNRs的测量输运能隙与第一性原理模拟结果吻合良好。悬浮的准一维GNRs中增强的电子 - 电子相互作用和降低的介电屏蔽以及锯齿形GNRs中相对边缘之间的反铁磁耦合证实了所观察到的大输运能隙。