纳米颗粒复合材料作为新型器件的功能材料:化学传感和光电子应用

H. Schlicke, T. Jochum, Sophia C. Bittinger, T. Vossmeyer, J. Niehaus, H. Weller
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引用次数: 3

摘要

纳米颗粒复合材料在新型电子器件中的应用前景广阔。这些材料通常包括嵌入在由短分子或聚合物组成的基质中的纳米颗粒。它们的光学、电子、机械和吸收性能是多种多样的,广泛可调,并取决于颗粒材料及其基体。我们演示了不同定制纳米粒子的合成及其集成到原型器件中。一方面,交联金纳米颗粒(GNPs)复合材料以其化学耐蚀性而闻名。在这里,我们展示了一种新的传感方法,利用这些材料作为微/纳米机电(MEMS/NEMS)化学传感器。制备了纳米级GNP薄膜,并采用静电驱动。由此产生的静态偏转和共振振动受到挥发性有机化合物吸附的强烈影响,因此可以用作传感信号。结合它们的耐化学性能,这样的复合材料可以作为多变量传感平台。另一方面,我们提出的半导体纳米颗粒合成遵循高重复性,高通量,连续流合成。由于量子尺寸效应,它们提供了扩展到可见光(CdSe/CdS)和红外(PbS)范围的吸收和发射特性。在这里,我们展示了这些粒子作为qled的发射器的集成,并强调了它们作为红外光电探测器吸收材料的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanoparticle Composites as Functional Materials for Novel Devices: Chemical Sensing and Optoelectronic Applications
Nanoparticle composites are promising regarding their applications in novel electronic devices. These materials generally comprise nanoparticles embedded in matrices that consist e.g. of short molecules or polymers. Their optical, electronic, mechanical and sorption properties are manifold, widely tunable, and depend on the particle material as well as their matrix. We demonstrate the syntheses of different tailor-made nanoparticles and their integration into prototypical devices. On the one hand, composite materials of cross-linked gold nanoparticles (GNPs) are well-known for their chemiresistive properties. Here, we show a novel sensing method, employing these materials as micro-/nanoelectromechanical (MEMS/NEMS) chemical sensors. Nanometer-thin GNP membranes are fabricated and electrostatically actuated. The resulting static deflections and resonant vibrations are strongly influenced by the adsorption of volatile organic compounds, and can hence be employed as sensing signals. In combination with their chemiresistive properties such composites can thus act as multivariate sensing platforms. On the other hand, we present semiconductor nanoparticles synthesized following highly reproducible, high-throughput, continuous-flow syntheses. Due to the quantum-size effect, they offer absorption and emission features extending over the visible (CdSe/CdS) and infrared (PbS) range. Herein, we demonstrate the integration of such particles as emitters in QLEDs and highlight their potential as absorber materials in IR photodetectors.
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