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Multimodality of Structural, Electrical, and Gravimetric Responses of Intercalated MXenes to Water

机译:将插入的mxenes与水的结构,电气和重量响应的多模

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摘要

Understanding of structural, electrical, and gravimetric peculiarities of water vapor interaction with ion-intercalated MXenes led to design of a multimodal humidity sensor. Neutron scattering coupled to molecular dynamics and ab initio calculations showed that a small amount of hydration results in a significant increase in the spacing between MXene layers in the presence of K and Mg intercalants between the layers. Films of K- and Mg-intercalated MXenes exhibited relative humidity (RH) detection thresholds of 40.8% RH and showed monotonic RH response in the 0-85% RH range. We found that MXene gravimetric response to water is 10 times faster than their electrical response, suggesting that H2O induced swelling/contraction of channels between MXene sheets results in trapping of H2O molecules that act as charge-depleting dopants. The results demonstrate the use of MXenes as humidity sensors and infer potential impact of water on structural and electrical performance of MXene-based devices.
机译:理解与离子插入的MxENES的水蒸气相互作用的结构,电和重量特性导致多模型湿度传感器的设计。中子散射耦合到分子动力学和AB初始计算,表明少量的水合使得在k和Mg层之间的髓层之间的间距显着增加。 K-和Mg嵌入的MxEN的薄膜表现出40.8%RH的相对湿度(RH)检测阈值,并在0-85%RH范围内显示单调RH反应。我们发现对水的蒙胶重量响应速度快于它们的电气响应速度快10倍,表明蒙薄片之间的H2O诱导的通道的肿胀/收缩导致捕获作为电荷消耗掺杂剂的H2O分子。结果证明了MXENE作为湿度传感器,并推断出水对基于MXENE的装置的结构和电性能的潜在影响。

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