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碳纳米点中的宽带负光电导响应

Broadband Negative Photoconductive Response in Carbon Nanodots.

作者信息

Qin Jin-Xu, Shen Cheng-Long, Li Lei, Liu Hang, Zhang Wu-You, Yang Xi-Gui, Shan Chong-Xin

机构信息

Henan Key Laboratory of Diamond Optoelectronic Material and Devices, Key Laboratory of Material physics, Ministry of Education, School of Physics and Laboratory of Zhongyuan Light, Zhengzhou University, Zhengzhou, 450052, China.

Institute of Quantum Materials and Physics, Henan Academy of Sciences, Zhengzhou, 450046, China.

出版信息

Adv Mater. 2024 Aug;36(32):e2404694. doi: 10.1002/adma.202404694. Epub 2024 Jun 16.

Abstract

Due to the broadband response and low selectivity of external light, negative photoconductivity (NPC) effect holds great potential applications in photoelectric devices. Herein, different photoresponsive carbon nanodots (CDs) are prepared from diverse precursors and the broadband response from the NPC CDs are utilized to achieve the optoelectronic logic gates and optical imaging for the first time. In detail, the mcu-CDs which are prepared by the microwave-assisted polymerization of citric acid and urea possess the large specific surface area and abundant hydrophilic groups as sites for the adsorption of HO molecules and thereby present a high conductivity in dark. Meanwhile, the low affinity of mcu-CDs to HO molecules permits the light-induced desorption of HO molecules by heat effect and thus endow the mcu-CDs with a low conductivity under illumination. The easy absorption and desorption of HO molecules contribute to the extraordinary NPC of mcu-CDs. With the broadband NPC response in CDs, the optoelectronic logic gates and flexible optical imaging system are established, achieving the applications of "NOR" or "NAND" logic operations and high-quality optical images. These findings unveil the unique optoelectronic properties of CDs, and have the potential to advance the applications of CDs in optoelectronic devices.

摘要

由于外部光的宽带响应和低选择性,负光电导(NPC)效应在光电器件中具有巨大的潜在应用价值。在此,通过不同的前驱体制备了不同的光响应性碳纳米点(CDs),并首次利用NPC CDs的宽带响应实现了光电逻辑门和光学成像。具体而言,通过柠檬酸和尿素的微波辅助聚合制备的mcu-CDs具有大的比表面积和丰富的亲水基团,作为HO分子吸附的位点,因此在黑暗中呈现高导电性。同时,mcu-CDs对HO分子的低亲和力使得HO分子通过热效应发生光致解吸,从而使mcu-CDs在光照下具有低导电性。HO分子的易吸收和解吸导致了mcu-CDs非凡的NPC特性。利用CDs中的宽带NPC响应,建立了光电逻辑门和柔性光学成像系统,实现了“或非”或“与非”逻辑运算以及高质量光学图像的应用。这些发现揭示了CDs独特的光电特性,并有可能推动CDs在光电器件中的应用。

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