论文标题
蒸发驱动的电动能转换:批判性审查,参数分析和观点
Evaporation-driven electrokinetic energy conversion: critical review, parametric analysis and perspectives
论文作者
论文摘要
在过去的几年中,蒸发的能源收获已成为一个热门话题。研究人员已经推测了几种可能的机制。电动能转化是最低的假设。长期以来已经建立了流动电流和流势的压力驱动电动现象的基础。多孔介质蒸发的规律也是众所周知的。但是,尚未认真探索这两类现象的耦合。在此关键综述中,我们将重组并结合这两个领域的可用知识,以产生(Nano)多孔材料蒸发期间电动发电的连贯图片。为了进行说明,我们将考虑几种配置,即单纳米孔,纳米孔阵列,具有电动转换元件面积减少的系统以及带有薄纳米多孔膜的侧蒸发的设备。对于后者(实际上是唯一在实验中研究的),我们将制定一个简单的模型,描述系统性能与诸如纳米孔层长度,宽度和厚度以及孔隙尺寸,孔隙面水平,有效ZETA-Potital和电力电导率等主参数的相关性。与文献中可用的实验数据相比,这些相关性将在定性上进行定性。我们将看到,实验数据并不总是与模型预测一致,这可能是由于简化模型假设所致,而且还因为机制与经典电动能量转换不同。特别是,这涉及蒸发驱动的离子流电流转化为外部电路中电子电流的机制。我们还将制定未来的实验和理论研究方向,以帮助阐明这些问题。
Energy harvesting from evaporation has become a hot topic in the last couple of years. Researchers have speculated on several possible mechanisms. Electrokinetic energy conversion is the least hypothetical one. The basics of pressure-driven electrokinetic phenomena of streaming current and streaming potential have long been established. The regularities of evaporation from porous media are also well known. However, coupling of these two classes of phenomena has not, yet, been seriously explored. In this critical review, we will recapitalize and combine the available knowledge from these two fields to produce a coherent picture of electrokinetic electricity generation during evaporation from (nano)porous materials. For illustration, we will consider several configurations, namely, single nanopores, arrays of nanopores, systems with reduced area of electrokinetic-conversion elements and devices with side evaporation from thin nanoporous films. For the latter (practically the only one studied experimentally), we will formulate a simple model describing correlations of system performance with such principal parameters as the nanoporous-layer length, width and thickness as well as the pore size, pore-surface hydrophilicity, effective zeta-potential and electric conductivity in nanopores. These correlations will be qualitatively compared with experimental data available in the literature. We will see that experimental data not always are in agreement with the model predictions, which may be due to simplifying model assumptions but also because the mechanisms are different from the classical electrokinetic energy conversion. In particular, this concerns the mechanisms of conversion of evaporation-driven ion streaming currents into electron currents in external circuits. We will also formulate directions of future experimental and theoretical studies that could help clarify these issues.