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用于具有稳健性且光谱扩展的铯和氧激活铜光阴极的石墨烯中间层。

Graphene Intermediate Layer for Robust and Spectrum-Extended Cu Photocathode Activated with Cs and O.

作者信息

Tang Song, Zhang Yijun, Jiang Yu, Tong Zehao, Li Shiman, Zhang Junju, Qian Yunsheng, Jiao Gangcheng, Shi Feng, Hao Guanghui

机构信息

School of Electronic and Optical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.

Science and Technology on Low-Light-Level Night Vision Laboratory, Xi'an 710065, China.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 28;16(34):45347-45355. doi: 10.1021/acsami.4c09624. Epub 2024 Aug 14.

Abstract

Developing an effective method to stably enhance the quantum efficiency (QE) and extend the photoemission threshold of Cu photocathodes beyond the ultraviolet region could benefit the photoinjector for ultrafast electron source applications. The implementation of a 2D material protective layer is considered a promising approach to extending the operating lifetime of photocathodes. We propose that graphene can serve as an intermediate layer at the interface between photocathode material and low-work-function coating. The role of oxygen in the Cs/O activation process on the Cu surface is altered by the graphene interlayer. Besides, the few-layer graphene (FLG) surface could be more likely to induce the formation of CsO. Thus, the graphene-Cu composite photocathode can achieve an ultralow surface work function of down to 0.878 eV through Cs/O activation. The photoemission performance of the composite cathode with a FLG interlayer is significantly enhanced. The photocathode has an extended spectral response to the near-infrared region and a higher QE. At 350 nm, its QE is more than twice that of the cesiated bare Cu, reaching 0.247%. After degradation, the graphene-Cu cathode can be fully restored by reactivation, with remarkably enhanced stability. In addition, the composite cathode can be operated reliably under a poor vacuum pressure of over 4 × 10 Pa. This study validates a new method for incorporating 2D materials into photocathodes, offering novel approaches to explore robust and spectrum-extended photocathodes.

摘要

开发一种有效的方法来稳定提高量子效率(QE)并将铜光阴极的光发射阈值扩展到紫外区域之外,这将有利于超快电子源应用的光注入器。二维材料保护层的实施被认为是延长光阴极工作寿命的一种有前途的方法。我们提出石墨烯可以作为光阴极材料和低功函数涂层之间界面的中间层。石墨烯中间层改变了铜表面Cs/O激活过程中氧的作用。此外,少层石墨烯(FLG)表面更有可能诱导CsO的形成。因此,石墨烯-铜复合光阴极通过Cs/O激活可以实现低至0.878 eV的超低表面功函数。具有FLG中间层的复合阴极的光发射性能显著增强。该光阴极对近红外区域具有扩展的光谱响应和更高的QE。在350 nm处,其QE是铯化裸铜的两倍多,达到0.247%。降解后,石墨烯-铜阴极可以通过再激活完全恢复,稳定性显著增强。此外,复合阴极可以在超过4×10 Pa的低真空压力下可靠运行。本研究验证了一种将二维材料纳入光阴极的新方法,为探索坚固且光谱扩展的光阴极提供了新途径。

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