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
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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