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Gas-like adhesion of two-dimensional materials onto solid surfaces

机译:二维材料在固体表面上的气态粘附

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摘要

The adhesion of two-dimensional (2D) materials onto other surfaces is usually considered a solid-solid mechanical contact. Here, we conduct both atomistic simulations and theoretical modeling to show that there in fact exists an energy conversion between heat and mechanical work in the attachment/detachment of two-dimensional materials on/off solid surfaces, indicating two-dimensional materials adhesion is a gas-like adsorption rather than a pure solid-solid mechanical adhesion. We reveal that the underlying mechanism of this intriguing gas-like adhesion is the configurational entropy difference between the freestanding and adhered states of the two-dimensional materials. Both the theoretical modeling and atomistic simulations predict that the adhesion induced entropy difference increases with increasing adhesion energy and decreasing equilibrium binding distance. Our findings provide a fundamental understanding of the adhesion of two-dimensional materials, which is important for designing two-dimensional materials based devices and may have general implications for nanoscale efficient actuators.
机译:二维(2D)材料在其他表面上的粘附通常被认为是固-固机械接触。在这里,我们进行了原子模拟和理论建模,结果表明,在二维材料在固体表面上的附着/分离中,实际上热量和机械功之间存在能量转换,表明二维材料的粘附是气体吸附而不是纯固-固机械粘合。我们揭示了这种有趣的气体状粘附的潜在机制是二维材料的独立状态和粘附状态之间的构型熵差。理论模型和原子模拟都预测粘附引起的熵差随粘附能量增加和平衡结合距离减小而增加。我们的发现为二维材料的粘附提供了基本的了解,这对于设计基于二维材料的设备非常重要,并且可能会对纳米级高效执行器产生普遍影响。

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