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Investigation of the optical and sensing characteristics of nanoparticle arrays for high temperature applications

机译:高温应用中纳米颗粒阵列的光学和传感特性研究

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Monitoring polluting gases such as CO and NO_x emitted from gas turbines in power plants and aircraft is important, in order to both reduce the effects of such gases on the environment as well as to optimize the performance of the respective power system. Fuel cost savings as well as a reduced environmental impact can be realized if air traffic utilized next generation jet turbines with an emission/performance control sensing system. These monitoring systems must be sensitive and selective to gases as well as be reliable and stable under harsh environmental conditions where the operation temperatures are in excess of 500 ℃ within a highly reactive environment. In this work, plasmonics based chemical sensors with nanocomposites of a combination of gold nano particles and Yttria Stabilized Zirconia (YSZ) has enabled the sensitive (PPM) and stable detection (100s of hrs.) of H_2, NO_2 and CO at temperatures of 500 ℃. Selectivity remains a challenging parameter to optimize and a layer by layer sputter deposition approach has been recently demonstrated to modify the resulting sensing properties through a change in the morphology of the deposited films. It is expected that further enhancements would be realized through control of the shape and geometry of the catalytically active Au nanoparticles. This level of control has been realized through the use of electron beam lithography to fabricate nanocomposite arrays. Sensing results towards the detection of H_2 will be highlighted with specific concerns related to optimization of these nanorod arrays detailed.
机译:监测发电厂和飞机中的燃气轮机排放的污染气体(例如CO和NO_x)非常重要,以便既减少此类气体对环境的影响,又优化各个动力系统的性能。如果空中交通使用具有排放/性能控制传感系统的下一代喷气式涡轮机,则可以实现燃油成本的节省以及对环境的减少。这些监测系统必须对气体敏感并且对气体具有选择性,并且必须在高反应性环境中的苛刻环境条件下(操作温度超过500℃)可靠且稳定。在这项工作中,基于等离子体的化学传感器结合了金纳米颗粒和氧化钇稳定氧化锆(YSZ)的纳米复合材料,能够在500°C的温度下对H_2,NO_2和CO进行灵敏(PPM)和稳定检测(100 hrs.。) ℃。选择性仍然是要优化的极具挑战性的参数,最近已证明逐层溅射沉积方法可以通过改变沉积膜的形态来改变所得的传感性能。期望通过控制催化活性的Au纳米颗粒的形状和几何形状将实现进一步的增强。通过使用电子束光刻技术来制造纳米复合材料阵列,已经实现了这种控制水平。将针对与H_2的检测相关的传感结果进行重点介绍,并与这些纳米棒阵列的优化有关。

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