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氮化钛涂层平面和3D打印基板上碳纳米管的场发射

Field Emission from Carbon Nanotubes on Titanium Nitride-Coated Planar and 3D-Printed Substrates.

作者信息

Haugg Stefanie, Mochalski Luis-Felipe, Hedrich Carina, González Díaz-Palacio Isabel, Deneke Kristian, Zierold Robert, Blick Robert H

机构信息

Center for Hybrid Nanostructures (CHyN), Universität Hamburg, 22761 Hamburg, Germany.

Deutsches Elektronen-Synchrotron (DESY), 22607 Hamburg, Germany.

出版信息

Nanomaterials (Basel). 2024 Apr 30;14(9):781. doi: 10.3390/nano14090781.

Abstract

Carbon nanotubes (CNTs) are well known for their outstanding field emission (FE) performance, facilitated by their unique combination of electrical, mechanical, and thermal properties. However, if the substrate of choice is a poor conductor, the electron supply towards the CNTs can be limited, restricting the FE current. Furthermore, ineffective heat dissipation can lead to emitter-substrate bond degradation, shortening the field emitters' lifetime. Herein, temperature-stable titanium nitride (TiN) was deposited by plasma-enhanced atomic layer deposition (PEALD) on different substrate types prior to the CNT growth. A turn-on field reduction of up to 59% was found for the emitters that were generated on TiN-coated bulk substrates instead of on pristine ones. This observation was attributed exclusively to the TiN layer as no significant change in the emitter morphology could be identified. The fabrication route and, consequently, improved FE properties were transferred from bulk substrates to free-standing, electrically insulating nanomembranes. Moreover, 3D-printed, polymeric microstructures were overcoated by atomic layer deposition (ALD) employing its high conformality. The results of our approach by combining ALD with CNT growth could assist the future fabrication of highly efficient field emitters on 3D scaffold structures regardless of the substrate material.

摘要

碳纳米管(CNTs)以其出色的场发射(FE)性能而闻名,这得益于其独特的电学、力学和热学性能组合。然而,如果所选的衬底是不良导体,那么向碳纳米管的电子供应可能会受到限制,从而限制场发射电流。此外,无效的散热会导致发射极 - 衬底键合退化,缩短场发射体的寿命。在此,在碳纳米管生长之前,通过等离子体增强原子层沉积(PEALD)在不同类型的衬底上沉积温度稳定的氮化钛(TiN)。发现在TiN涂层的块状衬底上生成的发射极相比于在原始衬底上生成的发射极,开启场降低了高达59%。这一观察结果完全归因于TiN层,因为在发射极形态上未发现明显变化。制造路线以及由此改善的场发射性能从块状衬底转移到了独立的、电绝缘的纳米膜上。此外,利用原子层沉积(ALD)的高保形性对3D打印的聚合物微结构进行了包覆。我们将ALD与碳纳米管生长相结合的方法的结果,无论衬底材料如何,都有助于未来在3D支架结构上制造高效场发射体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5d/11085237/f15cef3dc0a5/nanomaterials-14-00781-g001.jpg

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