电致发光
材料科学
光电子学
电场
工程物理
量子效率
纳米技术
物理
量子力学
图层(电子)
作者
Yutian Yang,Xuhong An,Jiafu Yang,Qiang Fu,Zhiyong Wei,Zhenhua Ni,Liang Ma,Zhenliang Hu,Junpeng Lü
标识
DOI:10.1002/adom.202401685
摘要
Abstract The built‐in electric field (BIEF) is of utmost importance for 2D optoelectronic devices, which are typically realized in heterostructures created through interfacial engineering. However, the limitations of the sharp field distribution, inevitable energy band discontinuity, and inflexible construction of 2D heterostructures restrict their application. In this work, a large‐scale, continuous, and controllable BIEF using monolayer W x Mo 1− x S 2 alloys with tunable composition gradients is constructed. Density functional simulations demonstrate that a BIEF can be formed within the whole alloy due to the charge distribution resulting from the composition gradients. Accordingly, a monolayer W x Mo 1− x S 2 alloy with a controllable composition gradient via two‐step chemical vapor deposition and confirmed the continuous tunability of the band structure and the variation in the composition gradient within the alloy is synthesized. Using the BIEF, 2D light‐emitting diodes (LEDs) based on W x Mo 1− x S 2 alloys and achieve strong electroluminescence emission are constructed. A large BIEF facilitates charge carrier migration and recombination, and the external quantum efficiency (over 0.62%) is more than 5 times that of small BIEF LEDs. The study not only provides a novel approach for the on‐demand design of a BIEF but also provides an opportunity for potential applications in optoelectronic devices.
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