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Refractive index modulation in metal oxides arising from chemically induced free carriers and its application in gas sensing

机译:由化学诱导的游离载体产生的金属氧化物中的折射率调制及其在气体传感中的应用

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Many semiconducting metal oxides exhibit electrical properties sensitive to surface chemical reactions and are therefore utilized to build highly sensitive gas detectors. Little attention has been paid, however, to correlated gas induced optical property changes. The few studies focused on this topic often show only weak optical gas responses for the investigated metal oxides in the observed wavelength ranges, even though strong electrical signals are expected. Here, to elucidate this apparent discrepancy, tungsten oxide is utilized as a model material. With a series of tungsten oxide photonic crystals the hydrogen induced strong refractive index dispersion of the oxide is reconstructed by analyzing its optical response. It is revealed that gas induced free carrier absorption is the dominant mechanism for the refractive index modulation. This modulation is strong in the near infrared but weak in the visible regime, which explains the relatively low optical responses observed so far. By utilizing photonic crystals with a near infrared optical band-gap, the optical response of the tungsten oxide/ hydrogen system presented here increases by one order of magnitude. Furthermore, the presented mechanism is suggested to be applicable for optical gas sensors based on other metal oxides as well, allowing targeting other gases than hydrogen.
机译:许多半导体金属氧化物表现出对表面化学反应敏感的电特性,因此用于构建高敏感的气体探测器。然而,对于相关的气体诱导光学性质变化,已经支付了很少的注意。少数关于该主题的研究通常仅显示所观察到的波长范围中所研究的金属氧化物的弱光学气体响应,即使预期强电信号。这里,为了阐明这种表观差异,氧化钨用作模型材料。通过一系列氧化钨光子晶体,通过分析其光学响应来重建氧化氢诱导的氧化物的强折射率分散。揭示了气体诱导的自由载体吸收是折射率调节的主要机理。这种调制在近红外线的近似红外线,可见的制度弱,这解释了到目前为止所观察到的相对较低的光学响应。通过利用具有近红外光带间隙的光子晶体,这里呈现的氧化钨/氢系统的光学响应逐渐增加。此外,建议所提出的机制适用于基于其他金属氧化物的光学气体传感器,也可以允许靶向其他气体而不是氢。

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