Suntijitrungruang Ongart, Lakronwat Jidapa, Uthailiang Teerapat, Pongkitiwanichakul Peera, Boonchui S
Department of Physics, Faculty of Science, Kasetsart University, Bangkok, Thailand.
Center of Rubber and Polymer Materials in Agriculture and Industry (RPM), Faculty of Science, Kasetsart University, Bangkok, Thailand.
Front Chem. 2022 Oct 17;10:1036197. doi: 10.3389/fchem.2022.1036197. eCollection 2022.
Quantum dot (QD) gas sensors are one of the most useful nanotechnologies applied to protect people from unnecessary harm. This work theoretically explores the mechanism in QD gas sensors in order to advance the prudent design of relevant products. The theoretical model employed in this research is similar to the process in plants' photosynthesis, referred to as charge separation of light harvesting. In this work, we investigate the details of energy transport in QD gas sensors carried by electrons from the circuit. We demonstrate theoretically how the effects of temperature and gas detection affect electron transport. To analyze thoroughly, the potential energy referred to as the Schotthy barrier perturbed by gasses is considered. Moreover, the energy transfer efficiency (ETE) of QD gas sensors for oxidizing or reducing gas is shown in the simulation. The results imply that the electron transport between QDs (raising the current and lessening the current) depends on a parameter corresponding with the Schotthy barrier. In regard to thermal energy portrayed by phonon baths, a higher temperature shortens the time duration of energy transport in QDs, hence raising energy transfer efficiency and energy current. Our model can be applied to further QD gas sensors' design and manufacture.
量子点(QD)气体传感器是应用于保护人们免受不必要伤害的最有用的纳米技术之一。这项工作从理论上探索了量子点气体传感器的机制,以推动相关产品的审慎设计。本研究采用的理论模型类似于植物光合作用中的过程,即光捕获的电荷分离。在这项工作中,我们研究了由电路中的电子携带的量子点气体传感器中的能量传输细节。我们从理论上证明了温度和气体检测的影响如何影响电子传输。为了进行全面分析,考虑了被气体扰动的称为肖特基势垒的势能。此外,模拟中展示了量子点气体传感器对氧化或还原气体的能量转移效率(ETE)。结果表明,量子点之间的电子传输(增加电流和减少电流)取决于与肖特基势垒对应的一个参数。关于由声子浴描绘的热能,较高的温度缩短了量子点中能量传输的持续时间,从而提高了能量转移效率和能量电流。我们的模型可应用于进一步的量子点气体传感器的设计和制造。