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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Two-Dimensional CH3NH3PbI3 with High Efficiency and Superior Carrier Mobility: A Theoretical Study
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Two-Dimensional CH3NH3PbI3 with High Efficiency and Superior Carrier Mobility: A Theoretical Study

机译:具有高效率和优越载流动性的二维CH3NH3PBI3:理论研究

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摘要

Two-dimensional (2D) halide perovskites have distinct tunable compositional and structural properties, which make 2D materials a good candidate to improve the characteristics of photovoltaic applications. We have explored strain-dependent structural, electronic, and optical properties of organic inorganic hybrid perovskite CH3NH3PbI3 monolayers using density functional calculations. Here, we have calculated carrier mobility of electrons and holes and the band gap of the CH3NH3PbI3 monolayer. The results suggest that with increasing tensile and compressive strains, the band gap increases up to 5% (in the case of tensile strain), whereas decreases toward instability, i.e., 9% (in the case of compressive strain). The carrier mobility of 2D CH3NH3PbI3 is approximately 16 times larger than that of the bulk form of CH3NH3PbI3. Furthermore, we have also investigated optical properties, which show good activity in the visible as well as in the high-ultraviolet region of the spectrum. In addition, the 2D CH3NH3PbI3 monolayer shows good transmittance (>80%) in a lower energy range as well as high absorption coefficient of 14.09 X 10(5) cm(-1) at 8.8 eV, which is up to 40% higher than that of the bulk form of CH3NH3PbI3; however, under both types of strains, the absorption coefficient is decreased in the 2D CH3NH3PbI3 monolayer. For photovoltaic applications, we have calculated the open-circuit voltage (V-oc), fill factor (FF), short-circuit current density (J(sc)), and power conversion efficiency (eta) of the 2D CH3NH3PbI3 monolayer. Our theoretical results suggest that the power conversion efficiency (eta) is 28%, which is higher than that of its bulk form and 5% less than the Shockley-Queisser limit (33%), suggesting that 2D CH3NH3PbI3 is a good candidate for the solar cell application.
机译:二维(2D)卤化物钙酸盐具有明显的可调谐组成和结构性能,使2D材料成为改善光伏应用的特性的良好候选者。我们使用密度函数计算探索了有机无机杂交钙钛矿CH3NH3PB13单层的应变依赖性结构,电子和光学性质。这里,我们已经计算了电子和孔的载流子和CH3NH3Pbi3单层的带隙。结果表明,随着拉伸和压缩菌株的增加,带隙的增加至5%(在拉伸菌株的情况下),而朝向不稳定性降低,即9%(在压缩菌株的情况下)。 2D CH3NH3PBI3的载流子迁移率大约比CH3NH 3 PBI3的堆积形式的16倍。此外,我们还研究了光学性质,其在光谱的高紫外区域中显示出良好的活性。此外,在较低的能量范围中的2D CH3NH3PbI3单层显示出良好的透光率(> 80%)以及14.09×10(5)厘米(-1)高的吸收系数在8.8电子伏特,这是高达40%高于CH3NH3PBI3的散装形式的形式;然而,在两种类型的菌株下,在2D CH 3 NH 3 PBI3单层中吸收系数降低。对于光伏应用,我们已经计算了2D CH3NH3PBI3单层的开路电压(V-OC),填充因子(FF),短路电流密度(J(SC))和电源转换效率(ETA)。我们的理论结果表明,电力转换效率(ETA)为28%,其散装形式高,而不是震撼销售器限制(33%),这表明2D CH3NH3PBI3是一个好候选者太阳能电池应用。

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