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A high-performance trace level acetone sensor using an indispensable V4C3Tx MXene

机译:使用必不可少的V4C3Tx MXene的高性能痕量丙酮传感器

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The development of a stringent sensor to detect low levels of acetone, yielding the potential for the point-of-care clinical diagnosis of diabetes, is still a great challenge but is urgently required. Most studies have focused on Ti _(3) C _(2) T _( x ) , yet other types of MXenes with good performance are rare. Herein, an emerging kind of MXene, V _(4) C _(3) T _( x ) , has been prepared from V _(4) AlC _(3) via the selective etching of the Al layer using aqueous HF at room temperature (RT), and its performance as an acetone sensor is presented. A V _(4) C _(3) T _( x ) based acetone sensor delivers good performance, as demonstrated by its low working temperature of 25 °C, low detection limit of 1 ppm (lower than the 1.8 ppm diabetes diagnosis threshold), and high selectivity towards acetone in a mixed gas of acetone and water vapor, hopefully showing promise for application in the much faster and earlier diagnosis of diabetes. V _(4) C _(3) T _( x ) MXene is used for the first time in the field of acetone detection in this work, hopefully opening up a path for the investigation of applications of MXene in gas sensors, and such exciting findings distinguish V _(4) C _(3) T _( x ) as a comparable material to the well-known Ti _(3) C _(2) T _( x ) . In addition, we used DFT calculations to explore the mechanisms that result in the superior selectivity for acetone with respect to water vapor. Hopefully, the proposed mechanisms combining experimental results and theoretical study will shed light on the design and production of new high-performance acetone sensors.
机译:开发检测低水平丙酮含量的严格传感器,为糖尿病的即时临床诊断提供了可能,这仍然是一个巨大的挑战,但迫切需要。大多数研究都集中在Ti _(3)C _(2)T _(x)上,但其他类型的具有良好性能的MXene却很少见。在此,一种新兴的MXene,V_(4)C_(3)T_(x),是通过V_(4)AlC_(3)通过使用HF水溶液在130℃下选择性蚀刻Al层而制备的。介绍了室温(RT)及其作为丙酮传感器的性能。基于AV _(4)C _(3)T _(x)的丙酮传感器具有良好的性能,其低的工作温度25°C,低的检测限1 ppm(低于1.8 ppm的糖尿病诊断阈值)证明了这一点,以及在丙酮和水蒸气的混合气体中对丙酮的高选择性,有望显示出有望用于更快,更早地诊断糖尿病。 V _(4)C _(3)T _(x)MXene在这项工作中首次用于丙酮检测领域,有望为研究MXene在气体传感器中的应用开辟一条道路。令人兴奋的发现将V _(4)C _(3)T _(x)区分为与众所周知的Ti _(3)C _(2)T _(x)类似的材料。此外,我们使用DFT计算来探索导致丙酮相对于水蒸气具有优越选择性的机理。希望,将实验结果和理论研究相结合的拟议机制将为新型高性能丙酮传感器的设计和生产提供启发。

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