A Novel Two-Dimensional Delta-Inp3 Monolayer With High Stability, Tunable Bandgap, High Carrier Mobility, And Gas Sensing Of No2

JOURNAL OF MATERIALS CHEMISTRY C(2019)

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摘要
Based on ab initio density functional theory calculations and by using the global optimization algorithm, we propose a novel two-dimensional (2D) InP3 allotrope (delta-InP3 monolayer), which has much lower formation energy and exfoliation energy than those of the earlier known beta-InP3 monolayers. The delta-InP3 monolayer has an indirect bandgap of 0.51 eV, which could be easily tunable by adjusting the strains along the a direction. Our calculations reveal that this new InP3 allotrope exhibits worthwhile anisotropy along with high electron carrier mobility. The electron mobility of the delta-InP3 monolayer can reach up to 2741 and 1751 cm(2) V-1 s(-1) along the a and b directions, respectively. The absorption coefficients for the delta-InP3 monolayer and bilayer are predicted up to the order of similar to 10(6) cm(-1) in the entire visible region. More interestingly, the calculated results show that the delta-InP3 monolayer is a promising N-based gas sensor (particularly for NO2 molecules), with high selectivity, sensitivity, and good reversibility.
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