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Structurally Driven Enhancement of Resonant Tunneling and Nanomechanical Properties in Diamond-like Carbon Superlattices

机译:类金刚石超晶格中共振隧穿和纳米力学性能的结构驱动增强

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摘要

We report nitrogen-induced enhanced electron tunnel transport and improved nanomechanical properties in band gap-modulated nitrogen doped DLC (N-DLC) quantum superlattice (QSL) structures. The electrical characteristics of such superlattice devices revealed negative differential resistance (NDR) behavior. The interpretation of these measurements is supported by 1D tight binding calculations of disordered superlattice structures (chains), which include bond alternation in sp(3)-hybridized regions. Tandem theoretical and experimental analysis shows improved tunnel transport, which can be ascribed to nitrogen-driven structural modification of the N-DLC QSL structures, especially the increased se clustering that provides additional conduction paths throughout the network. The introduction of nitrogen also improved the nanomechanical properties, resulting in enhanced elastic recovery, hardness, and elastic modulus, which is unusual but is most likely due to the onset of cross-linking of the network. Moreover, the materials' stress of N-DLC QSL structures was reduced with the nitrogen doping. In general, the combination of enhanced electron tunnel transport and nanomechanical properties in N-DLC QSL structures/devices can open a platform for the development of a new class of cost-effective and mechanically robust advanced electronic devices for a wide range of applications.
机译:我们报告了氮诱导的带隙调制氮掺杂DLC(N-DLC)量子超晶格(QSL)结构中增强的电子隧道传输和改进的纳米力学性能。这种超晶格器件的电气特性显示出负微分电阻(NDR)行为。这些测量结果的解释得到无序超晶格结构(链)的一维紧密结合计算的支持,其中包括sp(3)杂交区域中的键交替。串联理论和实验分析显示出改善的隧道传输,这可以归因于N-DLC QSL结构的氮驱动结构修饰,尤其是增加的se团簇,在整个网络中提供了额外的传导路径。氮的引入还改善了纳米机械性能,从而提高了弹性回复率,硬度和弹性模量,这是不寻常的,但很可能是由于网络交联的开始。此外,氮掺杂降低了N-DLC QSL结构的材料应力。通常,N-DLC QSL结构/器件中增强的电子隧道传输和纳米机械性能的结合可以为开发适用于各种应用的新型经济高效且机械坚固的先进电子器件打开平台。

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