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Fabrication of Artificial Leaf to Develop Fluid Pump Driven by Surface Tension and Evaporation

机译:表面张力和蒸发驱动流体泵驱动的人工叶片的制备

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摘要

Plants transport water from roots to leaves via xylem through transpiration, which is an evaporation process that occurs at the leaves. During transpiration, suction pressure is generated by the porous structure of mesophyll cells in the leaves. Here, we fabricate artificial leaf consisting of micro and nano hierarchy structures similar to the mesophyll cells and veins of a leaf using cryo-gel method. We show that the microchannels in agarose gel greatly decrease the flow resistance in dye diffusion and permeability experiments. Capillary tube and silicone oil are used for measuring the suction pressure of the artificial leaf. We maintain low humidity (20%) condition for measuring suction pressure that is limited by Laplace pressure, which is smaller than the water potential of air followed by the Kelvin-Laplace relation. Suction pressure of the artificial leaf is maximized by changing physical conditions, e.g., pore size, wettability of the structure. We change the agarose gel’s concentration to decrease the pore size down to 200 nm and add the titanium nano particles to increase the wettability by changing contact angle from 63.6° to 49.4°. As a result, the measured suction pressure of the artificial leaf can be as large as 7.9 kPa.
机译:植物通过蒸腾作用通过木质部将水从根部传送到叶片,这是发生在叶片上的蒸发过程。在蒸腾过程中,叶片中的叶肉细胞的多孔结构会产生吸力。在这里,我们使用冷冻凝胶法制造了由类似于叶肉细胞和叶脉的微米和纳米层次结构组成的人工叶片。我们表明琼脂糖凝胶中的微通道大大降低了染料扩散和渗透性实验中的流动阻力。毛细管和硅油用于测量人造叶的抽吸压力。我们保持低湿度(20%)的条件来测量吸入压力,该压力受拉普拉斯压力的限制,该压力小于空气的水势,然后是开尔文-拉普拉斯关系。通过改变物理条件,例如孔径,结构的可湿性,使人造叶的吸气压力最大。我们将琼脂糖凝胶的浓度更改为将孔径减小至200 nm,并添加钛纳米颗粒以通过将接触角从63.6°更改为49.4°来增加可湿性。结果,测得的人造叶吸气压力可能高达7.9 kPa。

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