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Exfoliated MoS2 nanosheets loaded on bipolar exchange membranes interfaces as advanced catalysts for water dissociation

机译:exfoliated MOS2纳米片装载在双极交换膜界面上,作为水解解离的先进催化剂

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摘要

Over the last few decades, ion exchange membranes have evolved from a laboratory tool to industrial products with significant technical and commercial impacts. Electrodialysis with bipolar membranes (EDBM) is a technology that can produce acids and bases from the corresponding salt solutions. Bipolar membranes are key factors for splitting water at the interface of a cation and anion exchange layer in an electric field. The ideal bipolar membrane should have a low energy consumption, a high current efficiency and long-term stability. In order to investigate the catalytic effect of a monolayer of MoS, the bipolar membranes were prepared by introducing monolayer MoS2 to the interface of bipolar membranes. The resulting bipolar membrane was found to have lower potential drop, which clearly demonstrates the applicability of the MoS layer to act as catalyst. Enhanced acid production confirmed this prediction. Furthermore, a bipolar membrane prepared at 90°C had a low swelling ratio of about 7.5% while maintaining a high water uptake of 71.6%. From the calculation of current efficiency and energy consumption, the bipolar membrane with a monolayer of MoS has a higher current efficiency (45%) and a lower energy consumption (3.6 kW/h·kg) compared to a current efficiency of 24% and an energy consumption of 6.3 kW/h·kg for a bipolar membrane without MoS. This study proves the catalytic function of MoS, which lays a foundation for further research on catalytic bipolar exchange membranes.
机译:在过去的几十年中,离子交换膜已经从实验室工具演变为具有显着技术和商业影响的工业产品。具有双极膜(EDBM)的电渗析是一种可以从相应的盐溶液中产生酸和碱的技术。双极膜是在电场中阳离子和阴离子交换层界面分裂水的关键因素。理想的双极膜应具有低能耗,高电流效率和长期稳定性。为了研究MOS的单层MOS的催化作用,通过将单层MOS2引入双极膜的界面来制备双极膜。发现所得的双极膜具有较低的潜在下降,这清楚地证明了MOS层的适用性充当催化剂。增强的酸生产证实了这一预测。此外,在90℃下制备的双极膜具有约7.5%的低溶胀比,同时保持高水量的71.6%。根据电流效率和能量消耗的计算,与单层MO的双极膜具有更高的电流效率(45%)和较低的能量消耗(3.6 kW / h·kg),而与电流效率为24%和一个没有MOS的双极膜的能量消耗为6.3 kW / h·kg。本研究证明了MOS的催化功能,为进一步研究催化双极交换膜奠定了基础。

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