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提升热电材料性能:具有整体集成p型和n型腿的微米厚、半米长的碳纳米管薄膜。

Upscaling Thermoelectrics: Micron-Thick, Half-a-Meter-Long Carbon Nanotube Films with Monolithic Integration of p- and n-Legs.

作者信息

Zapata-Arteaga Osnat, Dörling Bernhard, Alvarez-Corzo Ivan, Xu Kai, Reparaz Juan Sebastián, Campoy-Quiles Mariano

机构信息

Instituto de Ciencia de Materiales de Barcelona (ICMAB-CSIC), Bellaterra 01893, Spain.

出版信息

ACS Appl Electron Mater. 2024 Mar 5;6(5):2978-2987. doi: 10.1021/acsaelm.3c01671. eCollection 2024 May 28.

Abstract

In order for organic thermoelectrics to successfully establish their own niche as energy-harvesting materials, they must reach several crucial milestones, including high performance, long-term stability, and scalability. Performance and stability are currently being actively studied, whereas demonstrations of large-scale compatibility are far more limited and for carbon nanotubes (CNTs) are still missing. The scalability challenge includes material-related economic considerations as well as the availability of fast deposition methods that produce large-scale films that simultaneously satisfy the thickness constraints required for thermoelectric modules. Here we report on true solutions of CNTs that form gels upon air exposure, which can then be dried into micron-thick films. The CNT ink can be extruded using a slot-shaped nozzle into a continuous film (more than half a meter in the present paper) and patterned into alternating n- and p-type components, which are then folded to obtain the finished thermoelectric module. Starting from a given n-type film, differentiation between the n and p components is achieved by a simple postprocessing step that involves a partial oxidation reaction and neutralization of the dopant. The presented method allows the thermoelectric legs to seamlessly interconnect along the continuous film, thus avoiding the need for metal electrodes, and, most importantly, it is compatible with large-scale printing processes. The resulting thermoelectric legs retain 80% of their power factor after 100 days in air and about 30% after 300 days. Using the proposed methodology, we fabricate two thermoelectric modules of 4 and 10 legs that can produce maximum power outputs of 1 and 2.4 μW, respectively, at a temperature difference Δ of 46 K.

摘要

为了使有机热电材料能够成功地确立其作为能量收集材料的独特地位,它们必须达到几个关键的里程碑,包括高性能、长期稳定性和可扩展性。目前人们正在积极研究性能和稳定性,而大规模兼容性的证明则要有限得多,对于碳纳米管(CNT)来说仍然缺失。可扩展性挑战包括与材料相关的经济考量以及快速沉积方法的可用性,这些方法能够生产出满足热电模块所需厚度限制的大规模薄膜。在此,我们报道了一种真正的碳纳米管溶液,其在暴露于空气中时会形成凝胶,然后可以干燥成微米厚的薄膜。碳纳米管墨水可以使用狭缝形喷嘴挤出成连续薄膜(本文中超过半米),并图案化为交替的n型和p型组件,然后折叠以获得成品热电模块。从给定的n型薄膜开始,通过一个简单的后处理步骤实现n型和p型组件之间的区分,该步骤涉及部分氧化反应和掺杂剂的中和。所提出的方法允许热电腿沿着连续薄膜无缝互连,从而避免了对金属电极的需求,最重要的是,它与大规模印刷工艺兼容。所得的热电腿在空气中放置100天后仍保留其功率因数的80%,300天后约保留30%。使用所提出的方法,我们制造了两个分别有4条和10条腿的热电模块,在46 K的温差Δ下,它们分别可以产生1和2.4 μW的最大功率输出。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38e2/11137818/db8eec0a29cb/el3c01671_0001.jpg

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