Department of Physics, Oregon State University, Corvallis, OR, 97331, USA.
Istituto Nanoscienze-CNR, Via Campi 213a, I-41125, Modena, Italy.
Sci Rep. 2017 Aug 18;7(1):8828. doi: 10.1038/s41598-017-09372-1.
Carbon nanotubes (CNTs) are a promising material for high-performance electronics beyond silicon. But unlike silicon, the nature of the transport band gap in CNTs is not fully understood. The transport gap in CNTs is predicted to be strongly driven by electron-electron (e-e) interactions and correlations, even at room temperature. Here, we use dielectric liquids to screen e-e interactions in individual suspended ultra-clean CNTs. Using multiple techniques, the transport gap is measured as dielectric screening is increased. Changing the dielectric environment from air to isopropanol, we observe a 25% reduction in the transport gap of semiconducting CNTs, and a 32% reduction in the band gap of narrow-gap CNTs. Additional measurements are reported in dielectric oils. Our results elucidate the nature of the transport gap in CNTs, and show that dielectric environment offers a mechanism for significant control over the transport band gap.
碳纳米管(CNTs)是超越硅的高性能电子产品有前途的材料。但与硅不同,CNTs 中传输带隙的性质还不完全清楚。即使在室温下,CNTs 中的传输带隙也预计会受到电子-电子(e-e)相互作用和相关性的强烈驱动。在这里,我们使用介电液体来屏蔽单个悬浮超洁净 CNT 中的 e-e 相互作用。使用多种技术,随着介电屏蔽的增加来测量传输带隙。将介电环境从空气变为异丙醇,我们观察到半导体 CNTs 的传输带隙减小了 25%,而窄带隙 CNTs 的能带隙减小了 32%。在介电油中报告了其他测量结果。我们的结果阐明了 CNTs 中传输带隙的性质,并表明介电环境为显着控制传输能带隙提供了一种机制。