High-Performance Solution-Processed Quantum Dot Infrared Photodetectors via Interface Engineering with MXenes

光电探测器 材料科学 量子点 响应度 MXenes公司 光电子学 红外线的 吸收(声学) 量子效率 桥接(联网) 量子阱红外探测器 光子学 量子 量子隧道 比探测率 接口(物质) 纳米技术 带隙 联轴节(管道) 领域(数学)
作者
Shafaat Hussain,Shengyi Yang,Ayesha Zia,Muhammad Qasim,Bingsuo Zou,Yurong Jiang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:18 (7): 11630-11640
标识
DOI:10.1021/acsami.5c25535
摘要

Infrared (IR) photodetectors are crucial for a range of applications, including night vision, optical communication, and environmental monitoring. However, their effectiveness is often hindered by low charge transport and interfacial losses in colloidal quantum dot (CQD)-based designs. MXenes, known for their high metallic conductivity, adjustable surface terminations, and excellent optical transparency, present a unique opportunity to improve interfaces for better optoelectronic performance. In this work, Ti 3 C 2 T x MXene via interface engineering for PbS CQD IR photodetectors, in which it functions as an electrode, transport layer, and interfacial modifier is systematically investigated. As a result, an ultrahigh responsivity of 1032.37 A/W with a specific detectivity of 1.12 × 10 13 Jones and an external quantum efficiency of 1.311 × 10 5 % are obtained from photodetector ITO/ZnO/Ti 3 C 2 T x /PbS/MoO 3 /Ti 3 C 2 T x under 1 μW/cm 2 980 nm illumination. Our finite difference time domain (FDTD) simulations further support and provide a physical basis for our experimental results, indicating that dual MXene incorporation significantly enhances optical field confinement and absorption within the PbS CQD layer. Thus, it illustrates that MXene-enabled interface engineering and optical coupling can establish an effective design paradigm for high-performance, solution-processed infrared photodetectors, effectively bridging the gap between quantum materials and practical optoelectronics.
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