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Untangling the physics of water transport in boron nitride nanotubes

机译:在硼分解水的物理传输氮化碳纳米管

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摘要

Carbon nanotubes (CNTs) have long been heralded as the material of choice for next-generation membranes. Some studies have suggested that boron nitride nanotubes (BNNTs) may offer higher transport of pure water than CNTs, while others conclude otherwise. In this work, we use a combination of simulations and experimental data to uncover the causes of this discrepancy and investigate the flow resistance through BNNT membranes in detail. By dividing the resistance of the nanotube membranes into their contributing components, we study the effects of pore end configuration, membrane length, and BNNT atom partial charges. Most molecular simulation studies of BNNT membranes use short membranes connected to high and low pressure reservoirs. Here we find that flow resistances in these short membranes are dominated by the resistance at the pore ends, which can obscure the understanding of water transport performance through the nanotubes and comparison between different nanotube materials. In contrast, it is the flow resistance inside the nanotubes that dominates microscale-thick laboratory membranes, and end resistances tend to be negligible. Judged by the nanotube flow resistance alone, we therefore find that CNTs are likely to consistently outperform BNNTs. Furthermore, we find a large role played by the choice of partial charges on the BN atoms in the flow resistance measurements in our molecular simulations. This paper highlights a way forward for comparing molecular simulations and experimental results.
机译:长期以来,碳纳米管被誉为新一代的首选材料膜。氮化硅纳米管(BNNTs)可能提供更高比碳纳米管运输纯净水,而其他人否则结束。模拟和实验数据的组合发现这个差异的原因调查通过BNNT流阻膜的细节。纳米管膜进入他们的贡献组件,我们研究孔隙的影响配置、膜长度和BNNT原子部分费用。研究BNNT膜使用短膜与高、低压力水库。我们发现在这些短流电阻膜阻力的主导孔隙结束,可以模糊的理解通过纳米管水传输性能和比较不同的纳米管材料。在纳米管中microscale-thick实验室膜,和结尾电阻往往是微不足道的。纳米管流阻,因此我们发现,碳纳米管可能会持续跑赢大盘BNNTs。选择的部分BN原子上的电荷在我们的流电阻测量分子模拟。选择比较分子模拟和实验结果。

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