Unmasking quantum effects in the surface thermodynamics of fluid nanodrops.

Sergio Contreras, A. Martínez-Borquez, Carlos Avendaño, A. Gil-Villegas, George Jackson
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Abstract

The focus of our study is an in-depth investigation of the quantum effects associated with the surface tension and other thermodynamic properties of nanoscopic liquid drops. The behavior of drops of quantum Lennard-Jones fluids is investigated with path-integral Monte Carlo simulations, and the test-area method is used to determine the surface tension of the spherical vapor-liquid interface. As the thermal de Broglie wavelength, λB, becomes more significant, the average density of the liquid drop decreases, with the drop becoming mechanically unstable at large wavelengths. As a consequence, the surface tension is found to decrease monotonically with λB, vanishing altogether for dominant quantum interactions. Quantum effects can be significant, leading to values that are notably lower than the classical thermodynamic limit, particularly for smaller drops. For planar interfaces (with infinite periodicity in the direction parallel to the interface), quantum effects are much less significant with the same values of λB but are, nevertheless, consequential for values representative of hydrogen or helium-4 at low temperatures corresponding to vapor-liquid coexistence. Large quantum effects are found for small drops of molecules with quantum interactions corresponding to water, ethane, methanol, and carbon dioxide, even at ambient conditions. The notable decrease in the density and tension has important consequences in reducing the Gibbs free-energy barrier of a nucleating cluster, enhancing the nucleation kinetics of liquid drops and of bubble formation. This implies that drops would form at a much greater rate than is predicted by classical nucleation theory.
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揭示流体纳米滴表面热力学中的量子效应。
我们的研究重点是深入研究与纳米液滴的表面张力和其他热力学性质相关的量子效应。通过路径积分蒙特卡罗模拟研究了量子伦纳德-琼斯流体液滴的行为,并使用测试区域法确定了球形汽液界面的表面张力。当热德布罗格利波长 λB 越大时,液滴的平均密度就会下降,在大波长下液滴会变得机械不稳定。因此,表面张力会随着 λB 的增大而单调减小,当量子相互作用占主导地位时,表面张力会完全消失。量子效应可能非常显著,导致其值明显低于经典热力学极限,特别是对于较小的液滴。对于平面界面(在平行于界面的方向上具有无限周期性),在相同的 λB 值下,量子效应的影响要小得多,但对于氢或氦-4 在气液共存的低温下的代表值来说,量子效应还是很重要的。对于与水、乙烷、甲醇和二氧化碳具有量子相互作用的小分子液滴,即使在环境条件下也会发现巨大的量子效应。密度和张力的明显降低对降低成核簇的吉布斯自由能垒、增强液滴成核动力学和气泡形成具有重要影响。这意味着液滴的形成速度远远高于经典成核理论的预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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