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Hydrogen sensing via anomalous optical absorption of palladium-based metamaterials

机译:通过钯基超材料的异常光吸收进行氢感测

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A palladium (Pd)-based optical metamaterial has been designed, fabricated and characterized for its application in hydrogen sensing. The metamaterial can replace Pd thin films in optical transmission schemes for sensing with performances far superior to those of conventional sensors. This artificial material consists of a palladium-alumina metamaterial fabricated using inexpensive and industrial-friendly bottom-up techniques. During the exposure to hydrogen, the system exhibits anomalous optical absorption when compared to the well-known response of Pd thin films, this phenomenon being the key factor for the sensor sensitivity. The exposure to hydrogen produces a large variation in the light transmission through the metamembrane (more than 30% with 4% in volume hydrogen-nitrogen gas mixture at room temperature and atmospheric pressure), thus avoiding the need for sophisticated optical detection systems. An optical homogenization model is proposed to explain the metamaterial response. These results contribute to the development of reliable and low-cost hydrogen sensors with potential applications in the hydrogen economy and industrial processes to name a few, and also open the door to optically study the hydrogen diffusion processes in Pd nanostructures.
机译:已经设计,制造并表征了基于钯(Pd)的光学超材料,并将其应用于氢感测。超材料可以在光学传输方案中替代Pd薄膜,以进行传感,其性能远远优于传统传感器。这种人造材料由使用便宜且工业友好的自下而上技术制造的钯-氧化铝超材料组成。在暴露于氢的过程中,与Pd薄膜的众所周知的响应相比,该系统表现出异常的光学吸收,这种现象是传感器灵敏度的关键因素。暴露在氢气中会产生穿过跨膜的光传输变化很大(在室温和大气压下,超过30%的氢-氮气混合物体积为4%),因此无需复杂的光学检测系统。提出了一种光学均质化模型来解释超材料的响应。这些结果有助于开发可靠的低成本氢传感器,在氢经济和工业过程中具有潜在的应用,仅举几例,也为光学研究Pd纳米结构中氢的扩散过程打开了大门。

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