Kim Daniel, Bowman Clark, Del Bonis-O'Donnell Jackson T, Matzavinos Anastasios, Stein Derek
Department of Physics, Brown University, Providence, Rhode Island 02912, USA.
Division of Applied Mathematics, Brown University, Providence, Rhode Island 02912, USA.
Phys Rev Lett. 2017 Jan 27;118(4):048002. doi: 10.1103/PhysRevLett.118.048002.
We investigate with experiments and computer simulations the nonequilibrium dynamics of DNA polymers crossing arrays of entropic barriers in nanofluidic devices in a pressure-driven flow. With increasing driving pressure, the effective diffusivity of DNA rises and then peaks at a value that is many times higher than the equilibrium diffusivity. This is an entropic manifestation of "giant acceleration of diffusion." The phenomenon is sensitive to the effective energy landscape; thus, it offers a unique probe of entropic barriers in a system driven away from equilibrium.
我们通过实验和计算机模拟研究了在压力驱动流中,DNA聚合物穿过纳米流体装置中熵垒阵列的非平衡动力学。随着驱动压力的增加,DNA的有效扩散率上升,然后在一个比平衡扩散率高出许多倍的值处达到峰值。这是“扩散的巨大加速”的一种熵表现。该现象对有效能量景观敏感;因此,它为远离平衡的系统中的熵垒提供了一种独特的探测手段。