首页> 美国卫生研究院文献>Advanced Science >3D Printing of Solution‐Processable 2D Nanoplates and 1D Nanorods for Flexible Thermoelectrics with Ultrahigh Power Factor at Low‐Medium Temperatures
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3D Printing of Solution‐Processable 2D Nanoplates and 1D Nanorods for Flexible Thermoelectrics with Ultrahigh Power Factor at Low‐Medium Temperatures

机译:适用于柔性热电器件的解决方案可加工2D纳米板和1D纳米棒的3D打印具有中低温度下的超高功率因数

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摘要

Solution‐processable semiconducting 2D nanoplates and 1D nanorods are attractive building blocks for diverse technologies, including thermoelectrics, optoelectronics, and electronics. However, transforming colloidal nanoparticles into high‐performance and flexible devices remains a challenge. For example, flexible films prepared by solution‐processed semiconducting nanocrystals are typically plagued by poor thermoelectric and electrical transport properties. Here, a highly scalable 3D conformal additive printing approach to directly convert solution‐processed 2D nanoplates and 1D nanorods into high‐performing flexible devices is reported. The flexible films printed using Sb Te nanoplates and subsequently sintered at 400 °C demonstrate exceptional thermoelectric power factor of 1.5 mW m K over a wide temperature range (350–550 K). By synergistically combining Sb Te 2D nanoplates with Te 1D nanorods, the power factor of the flexible film reaches an unprecedented maximum value of 2.2 mW m K at 500 K, which is significantly higher than the best reported values for p‐type flexible thermoelectric films. A fully printed flexible generator device exhibits a competitive electrical power density of 7.65 mW cm with a reasonably small temperature difference of 60 K. The versatile printing method for directly transforming nanoscale building blocks into functional devices paves the way for developing not only flexible energy harvesters but also a broad range of flexible/wearable electronics and sensors.
机译:可溶液处理的2D纳米板和1D纳米棒是包括热电,光电和电子在内的多种技术的有吸引力的构建基块。然而,将胶体纳米颗粒转变为高性能和柔性设备仍然是一个挑战。例如,由溶液处理的半导体纳米晶体制备的柔性薄膜通常会受到热电和电传输性能差的困扰。此处报道了一种高度可扩展的3D保形添加剂打印方法,可将溶液处理的2D纳米板和1D纳米棒直接转换为高性能的柔性设备。使用Sb Te纳米板印刷并随后在400°C下烧结的柔性膜在宽温度范围(350–550 K)内显示出1.5 mW m K的出色热电功率因数。通过将Sb Te 2D纳米板与Te 1D纳米棒协同结合,柔性膜的功率因数在500 K时达到了2.2 mW m K的空前最大值,大大高于p型柔性热电膜的最佳报道值。完全印刷的柔性发生器设备具有7.65 mW cm的竞争性电功率密度,并且温差仅为60K。多功能印刷方法可将纳米级构建基块直接转换为功能性设备,不仅为开发柔性能量采集器铺平了道路,以及各种柔性/可穿戴电子设备和传感器。

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