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Enhanced Transport into and out of Dead-End Pores

机译:增强了进出毛孔的传输

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Dead-end micro- and nanoscale channels are ubiquitous in nature and are found in geological and biological systems subject to frequent disruptions. Achieving fluid flows in them is not possible through conventional pressure-driven mechanisms. Here we show that chemically driven convective flows leading to transport in and out of dead-end pores can occur by the phenomenon of transient diffusioosmosis. The advective velocity depends on the presence of an in situ-generated transient ion gradient and the intrinsic charge on the pore wall. The flows can reach speeds of 50 mu m/s and cause extraction of otherwise-trapped materials. Our results illustrate that chemical energy, in the form of a transient salt gradient, can be transduced into mechanical motion with the pore wall acting as the pump. As discussed, the phenomena may underlie observed transport in many geological and biological systems involving tight or dead-end micro- and nanochannels.
机译:死胡同的微米级和纳米级通道本质上无处不在,并且在经常遭到破坏的地质和生物系统中发现。通过传统的压力驱动机制无法在其中实现流体流动。在这里,我们显示了瞬态扩散渗透现象可能发生化学驱动的对流,从而导致进出死角的孔。对流速度取决于原位产生的瞬态离子梯度和孔壁上固有电荷的存在。流速可以达到50μm/ s的速度,并导致原本被困住的物质被提取出来。我们的结果表明,以瞬态盐梯度形式的化学能可以转换为机械运动,而孔壁充当泵。如讨论的那样,该现象可能是在许多地质和生物系统中观察到的传输的基础,这些系统涉及紧密的或末端的微通道和纳米通道。

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