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Saddles, twists, and curls: shape transitions in freestanding nanoribbons

机译:马鞍,曲折,卷发:形状过渡独立式nanoribbons

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Efforts to modulate the electronic properties of atomically thin crystalline nanoribbons requires precise control over then-morphology. Here, we perform atomistic simulations on freestanding graphene nanoribbons (GNRs) to first identify the minimal shapes as a function of ribbon width, and then develop a core-edge framework based on classical plate theory to explore the effect of size and ribbon elasticity in more general systems. The elastic edge-edge interactions are central to stabilization of the flat phase in ultra-narrow ribbons, and their bifurcation to twisted and bent shapes at critical widths that vary inversely with edge stress. In the case of compressive edge stress, we uncover hitherto ignored saddle shapes that are energetically indistinguishable with twisted shapes in the vicinity of the bifurcation yet dominate the morphological space with increasing width. At much larger widths with negligible edge-edge interactions, rippling instabilities set in, i.e. edge ripples and midline dimples for compressive and tensile edge stresses, respectively. Simulations of tapering GNRs reveal the dynamics of these shape transitions. Our results capture the interplay between geometry and mechanics that sets the morphology of crystalline nanoribbons and also highlight the utility of the core-edge framework in developing a unified understanding of the interplay.
机译:努力调整的电子性质自动薄水晶nanoribbons要求精确控制then-morphology。在独立执行原子论的模拟石墨烯带的制作都(GNRs)首先识别最小的形状作为丝带宽度的函数和然后开发一个基于core-edge框架经典板理论探索的影响大小和丝带在更一般的弹性系统。中央平坦的稳定阶段超窄丝带,他们的分歧扭曲和弯曲的形状在关键宽度不同与边缘应力反向。压缩边缘应力,我们发现迄今为止忽视积极的马鞍形状无法区分与扭曲的形状附近的分歧主导形态空间增加宽度。更大的宽度与edge-edge可以忽略不计交互,荡漾不稳定,即。边缘涟漪和抗压中线酒窝分别和边缘拉伸应力。模拟逐渐减少GNRs揭示动态这些形状过渡。几何和力学之间的相互作用集水晶nanoribbons的形态同时也强调core-edge的效用框架开发一个统一的理解的相互作用。

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