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Salinity-Gradient Power Generation with Ionized Wood Membranes

机译:盐度梯度电离木膜发电

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Reverse electrodialysis (RED) is known as an efficient way of converting the salinity gradient between river water and sea water into energy. However, the high cost and complex fabrication of the necessary ion exchange membranes greatly prohibit the development of the RED process. For the first time, an ionized wood membrane is demonstrated for this application, benefiting from the advantages of natural wood, which is abundant, low cost, sustainable, and easy to scale. The wood membrane maintains the aligned nanochannels of the cellulose nanofibers derived from the natural wood. The surface of the nanochannels can be functionalized to positively or negatively charged by in situ modifying the hydroxyl groups on the cellulose chains to quaternary ammonium or carboxyl groups, respectively. These charged aligned nanochannels serve as nanofluidic passages for selective ion transport with opposite polarity through the wood membrane, resulting in efficient charge separation and generating an electrochemical potential difference. The all-wood RED device with 100 cells using a scalable stacking geometry generates an output voltage as high as 9.8 V at open circuit from a system of synthetic river water and sea water.
机译:反向电渗析(RED)是将河水和海水之间的盐度梯度转换为能量的有效方法。然而,必需的离子交换膜的高成本和复杂的制造极大地阻碍了RED工艺的发展。首次展示了一种离子化木质膜用于该应用的过程,它受益于天然木材的优势,天然木材丰富,成本低,可持续且易于扩展。木膜保持了源自天然木材的纤维素纳米纤维的排列的纳米通道。通过将纤维素链上的羟基分别原位修饰为季铵或羧基,可以将纳米通道的表面官能化为带正电或负电。这些带电的排列好的纳米通道充当纳米流体通道,用于通过木质膜以相反的极性进行选择性离子迁移,从而导致有效的电荷分离并产生电化学电势差。具有可伸缩堆叠几何结构的100电池的全木RED设备在开路时从合成河水和海水系统产生的输出电压高达9.8V。

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