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Enhanced gas sensing in pristine carbon nanotubes under continuous ultraviolet light illumination

机译:连续紫外线照射下原始碳纳米管中的增强气体感测

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摘要

The advance of nanomaterials has opened new opportunities to develop ever more sensitive sensors owing to their high surface-to-volume ratio. However, it is challenging to achieve intrinsic sensitivities of nanomaterials for ultra-low level detections due to their vulnerability against contaminations. Here we show that despite considerable achievements in the last decade, continuous in situ cleaning of carbon nanotubes with ultraviolet light during gas sensing can still dramatically enhance their performance. For instance in nitric oxide detection, while sensitivity in air is improved two orders of magnitude, under controlled environment it reaches a detection limit of 590 parts-per-quadrillion (ppq) at room temperature. Furthermore, aiming for practical applications we illustrate how to address gas selectivity by introducing a gate bias. The concept of continuous in situ cleaning not only reveals the tremendous sensing potential of pristine carbon nanotubes but also more importantly it can be applied to other nanostructures.
机译:由于纳米材料的高表面体积比,纳米材料的进步为开发更加灵敏的传感器开辟了新的机遇。然而,由于纳米材料对污染物的脆弱性,实现用于超低水平检测的纳米材料的固有敏感性是具有挑战性的。在这里,我们表明,尽管在过去的十年中取得了巨大的成就,但是在气体传感过程中用紫外线连续原位清洁碳纳米管仍可以显着提高其性能。例如,在一氧化氮的检测中,虽然空气中的灵敏度提高了两个数量级,但在受控环境下,室温下的检测极限达到了590 ppm。此外,针对实际应用,我们说明了如何通过引入栅极偏压来解决气体选择性问题。连续原位清洗的概念不仅揭示了原始碳纳米管的巨大感测潜力,而且更重要的是它可以应用于其他纳米结构。

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