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Room temperature response and enhanced hydrogen sensing in size selected Pd-C core-shell nanoparticles: Role of carbon shell and Pd-C interface

机译:选定尺寸的Pd-C核-壳纳米颗粒的室温响应和增强的氢感测:碳壳和Pd-C界面的作用

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In the present work, the effect of carbon shell around size selected palladium (Pd) nano particles on hydrogen (H-2) sensing has been studied by investigating the sensing response of Pd-C core-shell nanoparticles having a fixed core size and different shell thickness. The H-2 sensing response of sensors based on Pd and Pd-C nanoparticles deposited on SiO2 and graphene substrate has been measured over a temperature range of 25 degrees C-150 degrees C. It is observed that Pd-C nanoparticle sensor shows higher sensitivity with increase in shell thickness and faster response/recovery in comparison to that of Pd nanoparticle samples. Pd-C nanoparticles show room temperature H-2 sensitivity in contrast to Pd nanoparticles which respond only at higher temperatures. Role of carbon shell is also understood by investigating H-2 sensing properties of Pd and Pd-C nanoparticles on graphene substrates. These results show that higher catalytic activity and electronic interaction at Pd-C interface, a complete coverage and protection of Pd surface by carbon and presence of structural defects in nanoparticle core are important for room temperature and higher sensing response. 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在本工作中,通过研究具有固定核尺寸和不同核尺寸的Pd-C核-壳纳米颗粒的感测响应,研究了尺寸选定的钯(Pd)纳米颗粒周围的碳壳对氢(H-2)感测的影响。外壳厚度。在25°C至150°C的温度范围内测量了基于SiO2和石墨烯衬底上沉积的Pd和Pd-C纳米颗粒的传感器的H-2感测响应。观察到Pd-C纳米颗粒传感器显示出更高的灵敏度与Pd纳米颗粒样品相比,壳厚度增加,响应/回收速度更快。与仅在较高温度下响应的Pd纳米颗粒相比,Pd-C纳米颗粒显示出室温的H-2敏感性。通过研究石墨烯基板上的Pd和Pd-C纳米粒子的H-2感测特性,也可以理解碳壳的作用。这些结果表明,较高的催化活性和Pd-C界面的电子相互作用,碳对Pd表面的完全覆盖和保护以及纳米颗粒核中结构缺陷的存在对于室温和较高的传感响应至关重要。 2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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