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Dimensionally Engineered Perovskite Heterostructure for Photovoltaic and Optoelectronic Applications

机译:光电和光电应用的尺寸工程钙钛矿异质结构

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摘要

Although 2D|3D has shown potential for application in multifunctional devices, the principle of operation for multifunction devices (SOLAR Cell-LED: SOLED) has not yet been revealed. However, most studies have reported that the devices have only one auspicious characteristic. Here in this study the SOLED devices are monitored and investigated in a 2D|3D heterostructure with a multidimensional perovskite. It is fond that a 2D|3D heterostructure with a multidimensional perovskite interface induces carrier transmission from the interface, increasing the density of electrons and holes, and increasing their recombination. An interface-engineered perovskite 2D|3D-heterojunction structure is employed to realize the multifunctional photonic device in on-chip, exhibiting overall power conversion efficiencies of photovoltaics up to 21.02% under AM1.5, and external quantum efficiency of the light-emitting diode up to 5.13%. This novel phenomenon is attributed to carrier transfer resulting in a high carrier density and enhanced carrier recombination at the 2D|3D interface.
机译:尽管2D | 3D已显示出在多功能设备中的应用潜力,但尚未揭示多功能设备(太阳能电池LED:SOLED)的工作原理。但是,大多数研究报告说该设备仅具有一种吉祥特征。在此研究中,SOLED器件是在具有多维钙钛矿的2D | 3D异质结构中进行监控和研究的。人们喜欢具有多维钙钛矿界面的2D | 3D异质结构诱导载流子从界面传输,增加了电子和空穴的密度,并增加了它们的复合。采用界面工程的钙钛矿2D | 3D-异质结结构在芯片上实现多功能光子器件,在AM1.5下显示光伏的整体功率转换效率高达21.02%,并且发光二极管的外部量子效率高达5.13%。这种新现象归因于载流子转移,导致高载流子密度和2D | 3D接口处增强的载流子复合。

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