JP

Jiu Pang

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2 records found

Journal article (2019) - Fanfan Niu, Miao Cai, Jiu Pang, Xiaoling Li, Daoguo Yang, G. Zhang
We have investigated the electronic and optical properties of monolayer SnP3 adsorbed by small gas molecules by using first-principle calculations based on density functional theory. Six initial adsorption sites were selected to explore the most sensitive site to investigate the optimal adsorption positions of CH4, H2O, NH3, NO, NO2, and SO2 adsorbed on the monolayer SnP3. Aiming at the optimal adsorption configurations, the adsorption energy, adsorption distance, and charge densities are computed to investigate the adsorption types. Our results reveal that monolayer SnP3 is sensitive to NO and SO2 via strong physical adsorption, and NO2 via chemical adsorption, thereby forming a new bond between O and P atoms. Analysis of the optical property shows that the adsorption of NO, NO2, and SO2 can remarkably influence the dielectric function and adsorption coefficient of monolayer SnP3. Our theoretical studies indicate that monolayer SnP3 is a good gas-sensitive material used for NO, NO2, and SO2 detection. ...

Adsorption of small gas molecules on GeP3 monolayer

Journal article (2019) - Fanfan Niu, Miao Cai, Jiu Pang, Xiaoling Li, Guoqi Zhang, Daoguo Yang
Using first-principles calculation, we have studied the adsorption effect of small gas molecules (H2O, CO2, CH4, SO2, H2S, and NH3) on GeP3 monolayer. To determine the most stable adsorption site, five adsorption sites (center, Ge, P, bridge GeP, and bridge PP) were considered in the paper. Through calculations of adsorption energy, adsorption distance, and charge transfer, we preliminarily determined that H2O, CO2, and CH4 were physically adsorbed on GeP3 via weak van der Waals force. However, SO2, H2S, and NH3 were chemically adsorbed on GeP3 with new covalent bonds formed, as concluded by calculations of electron localization function and charge density difference. Gas molecule adsorption can cause significant changes in the band gap of single-layer GeP3, indicating that pristine GeP3 monolayer is sensitive to these gases. In addition, the adsorption energy of the H2O, CO2, and CH4 adsorbed on GeP3 can be tuned effectively by employing an external electric field. Our theoretical studies reveal that GeP3 monolayer is a promising gas-sensitive material used in nanometer devices.                                                                                                     ...