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通过触觉界面气泡印刷实现量子点的图案化与荧光调谐。

Patterning and fluorescence tuning of quantum dots with haptic-interfaced bubble printing.

作者信息

Rajeeva Bharath Bangalore, Alabandi Majd A, Lin Linhan, Perillo Evan P, Dunn Andrew K, Zheng Yuebing

机构信息

Materials Science and Engineering Program, Department of Mechanical Engineering, The University of Texas at Austin, Austin, Texas 78712, USA.

Department of Biomedical Engineering, The University of Texas at Austin, Austin, Texas 78712, USA.

出版信息

J Mater Chem C Mater. 2017 Jun 21;5(23):5693-5699. doi: 10.1039/c7tc00454k. Epub 2017 Apr 17.

Abstract

Semiconductor quantum dots (QDs) are attractive for a wide range of applications such as displays, light-emitting devices, and sensors due to their properties such as tunable fluorescence wavelength, high brightness, and narrow bandwidth. Most of the applications require precise patterning of QDs with targeted properties on solid-state substrates. Herein, we have developed a haptic-interfaced bubble printing (HIBP) technique to enable high-resolution (510 nm) high-throughput (>10 μm s) patterning of QDs with strong emission tunability and to significantly enhance the accessibility of the technique a smartphone device. The scalability and versatility of the HIBP are demonstrated in our arbitrary patterning of QDs on plasmonic substrates. A detailed study of plasmonic and photothermal interactions is performed programmed stage movements to realize tunability of the emission wavelength and lifetime. Finally, the influence of the hand movement on the properties of the printed QDs in terms of emission wavelength tuning from yellow to blue is established. This work provides a single-step macroscale platform to manipulate nanoscale properties at high resolution and high throughput.

摘要

半导体量子点(QDs)因其具有诸如可调谐荧光波长、高亮度和窄带宽等特性,在显示器、发光器件和传感器等广泛应用中具有吸引力。大多数应用需要在固态衬底上精确图案化具有特定性质的量子点。在此,我们开发了一种触觉接口气泡打印(HIBP)技术,以实现高分辨率(510 nm)、高通量(>10 μm s)的量子点图案化,且具有很强的发射可调谐性,并显著提高该技术在智能手机设备上的可及性。HIBP的可扩展性和通用性在我们在等离子体衬底上对量子点进行的任意图案化中得到了证明。通过编程阶段移动对等离子体和光热相互作用进行了详细研究,以实现发射波长和寿命的可调谐性。最后,确定了手部移动对印刷量子点发射波长从黄色调至蓝色的性质的影响。这项工作提供了一个单步宏观平台,以高分辨率和高通量操纵纳米级性质。

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