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单晶钨针尖定制化制备及表面重构机制

郭家美 阴生毅 张永清 孙万众

郭家美, 阴生毅, 张永清, 孙万众. 单晶钨针尖定制化制备及表面重构机制[J]. 电子与信息学报. doi: 10.11999/JEIT260328
引用本文: 郭家美, 阴生毅, 张永清, 孙万众. 单晶钨针尖定制化制备及表面重构机制[J]. 电子与信息学报. doi: 10.11999/JEIT260328
GUO Jiamei, YIN Shengyi, ZHANG Yongqing, SUN Wanzhong. Customized Preparation of Single Crystal Tungsten Tips and Surface Reconstruction Mechanism[J]. Journal of Electronics & Information Technology. doi: 10.11999/JEIT260328
Citation: GUO Jiamei, YIN Shengyi, ZHANG Yongqing, SUN Wanzhong. Customized Preparation of Single Crystal Tungsten Tips and Surface Reconstruction Mechanism[J]. Journal of Electronics & Information Technology. doi: 10.11999/JEIT260328

单晶钨针尖定制化制备及表面重构机制

doi: 10.11999/JEIT260328 cstr: 32379.14.JEIT260328
基金项目: 国家重点研发计划(2022YFF0709400)
详细信息
    作者简介:

    郭家美:女,博士生,研究方向为大电流密度阴极及其发射机理

    阴生毅:男,研究员,研究方向为大电流密度阴极及其发射机理

    张永清:女,研究员,研究方向为衰减材料

    孙万众:男,工程师,研究方向为大电流密度阴极

    通讯作者:

    阴生毅 ysy210@163.com

  • 中图分类号: O462

Customized Preparation of Single Crystal Tungsten Tips and Surface Reconstruction Mechanism

Funds: National Key R&D Program of China (2022YFF0709400)
  • 摘要: 单晶钨针尖是常用的场致发射阴极材料,其尖端形貌直接影响场发射性能。然而,传统电化学腐蚀法制备的针尖呈现尖锥形貌,涂覆氧化锆涂层后很难获得有效发射。为此,本文提出电化学腐蚀与高温通氧处理相结合的工艺路线,系统研究了氧分压、温度及通氧时间对针尖形貌演化的影响。研究发现,氧分压决定重构方向:富氧条件下发生钝化重构,针尖形貌演变为“圆柱段+半球冠”结构,适用于热场发射阴极;欠氧条件下发生锐化重构,尖端曲率半径可缩减至28 nm,适用于冷场发射阴极。基于上述机制,本研究实现了对不同曲率半径针尖形貌尺寸的精确调控,突破了传统电化学腐蚀工艺的局限,实现了钨针尖的定制化制备与缺陷修正,为高性能场发射阴极的可控制备提供了新的技术路径。
  • 图  1  场发射体组件示意图

    图  2  电化学腐蚀装置整体示意图[6]

    图  3  电化学腐蚀后的单晶钨针尖(20000 X)

    图  4  高温通氧处理后的单晶钨针尖(20000 X)

    图  5  定制化单晶钨针尖(50000 X)

    图  6  下束光斑图像

    表  1  高温通氧工艺参数及处理前后数据对比表

    编号温度(°C)氧流速(sccm)通氧时长(min)
    1150000
    215001.05
    315001.010
    415001.015
    516001.05
    615000.0151440
    下载: 导出CSV

    表  2  高温通氧处理前后针尖尺寸数据对比表

    编号 重构处理前 重构处理后 变化率
    尖端曲率半径r0(nm) 半锥角α(°) 尖端曲率半径r1(nm) 半锥角α(°) Δr(%) Δα(%)
    1 144 8 138 8 –4 0
    2 146 9 380 8 160 –11
    3 244 14 327 11 34 –21
    4 229 14 275 10 20 –27
    5 137 8 172 6 26 –25
    6 143 8 28 1 –80 –88
    注:Δr=(r1r0)/r0⋅100%;Δα=(α1α0)/ α0⋅100%。
    下载: 导出CSV

    表  3  重构处理后针尖表面元素组成

    编号W(wt%)O(wt%)C(wt%)
    196.8603.14
    297.470.232.30
    398.3901.61
    497.630.192.18
    597.1802.82
    698.4501.55
    下载: 导出CSV
  • [1] MATĚJÍČEK J, VILÉMOVÁ M, REDNYK A, et al. Characteristics of tungsten prepared by hot pressing at high pressure[J]. Materials, 2025, 18(23): 5265. doi: 10.3390/ma18235265.
    [2] LI Duo, ZHU Zhuoyuan, ZHANG Zixin, et al. Position-dependent nanoindentation edge effect in single crystal tungsten via molecular dynamics simulations[J]. Journal of Materials Science, 2026, 61(13): 8626–8643. doi: 10.1007/s10853-026-12422-7.
    [3] 赵伟霞, 张利新, 刘俊标, 等. 磁浸没热场发射电子枪[J]. 光学精密工程, 2025, 33(11): 1700–1712. doi: 10.37188/OPE.20253311.1700.

    ZHAO Weixia, ZHANG Lixin, LIU Junbiao, et al. Thermal field electron gun immersed in magnetic lens field[J]. Optics and Precision Engineering, 2025, 33(11): 1700–1712. doi: 10.37188/OPE.20253311.1700.
    [4] 郭家美, 阴生毅, 张永清, 等. 电子显微镜阴极发展综述[J]. 电子显微学报, 2022, 41(6): 664–672. doi: 10.3969/j.issn.1000-6281.2022.06.013.

    GUO Jiamei, YIN Shengyi, ZHANG Yongqing, et al. A review of the development of electron microscope cathode[J]. Journal of Chinese Electron Microscopy Society, 2022, 41(6): 664–672. doi: 10.3969/j.issn.1000-6281.2022.06.013.
    [5] ZHANG Ruoqi, WANG Xiaoxia, and DING Shixian. Investigation on the impact of scandate-doped impregnant phase composition on cathode emission property[J]. Materials Chemistry and Physics, 2025, 345: 131145. doi: 10.1016/j.matchemphys.2025.131145.
    [6] 郭家美, 阴生毅, 孙万众, 等. 单晶钨针尖场发射体的制备及氧化特性分析[C]. 第二十二届真空电子学学术年会, 广州, 中国, 2024: 414–417. doi: 10.26914/c.cnkihy.2024.047653.

    GUO Jiamei, YIN Shengyi, SUN Wanzhong, et al. Preparation and oxidation characteristics analysis of single crystal tungsten tip field emitter[C]. The 22nd Annual Conference on Vacuum Electronics, Guangzhou, China, 2024: 414–417. doi:10.26914/c.cnkihy.2024.047653. (查阅网上资料,未找到本条文献英文翻译信息,请确认)
    [7] GUO Xiaoguang, GOU Yongjun, DONG Zhigang, et al. Study on subsurface layer of nano-cutting single crystal tungsten in different crystal orientations[J]. Applied Surface Science, 2020, 526: 146608. doi: 10.1016/j.apsusc.2020.146608.
    [8] STUPIAN G W and LEUNG M S. A scanning tunneling microscope based on a motorized micrometer[J]. Review of Scientific Instruments, 1989, 60(2): 181–185. doi: 10.1063/1.1140458.
    [9] MORIKAWA H and GOTO K. Reproducible sharp-pointed tip preparation for field ion microscopy by controlled AC polishing[J]. Review of Scientific Instruments, 1988, 59(10): 2195–2197. doi: 10.1063/1.1139985.
    [10] BINNIG G, ROHRER H, GERBER C, et al. Surface studies by scanning tunneling microscopy[J]. Physical Review Letters, 1982, 49(1): 57–61. doi: 10.1103/PhysRevLett.49.57.
    [11] SUN Wanzhong, YIN Shengyi, GUO Jiamei, et al. Real-time image-based control technique of single crystal tungsten microtips in electrochemical corrosion[J]. e-Journal of Surface Science and Nanotechnology, 2024, 22(3): 266–272. doi: 10.1380/ejssnt.2024-018.
    [12] 郭家美, 阴生毅, 孙万众, 等. Zr/O/W肖特基式热场发射阴极界面发射性能研究[J]. 物理学报, 2026, 75(1): 010805. doi: 10.7498/aps.75.20251100.

    GUO Jiamei, YIN Shengyi, SUN Wanzhong, et al. Emission performance at the interface of Zr/O/W Schottky thermal field emission cathodes[J]. Acta Physica Sinica, 2026, 75(1): 010805. doi: 10.7498/aps.75.20251100.
    [13] DYKE W P and DOLAN W W. Field emission[M]. MARTON L. Advances in Electronics and Electron Physics. New York: Academic Press, 1956: 89–185. (查阅网上资料, 未找到本条文献信息, 请确认).
    [14] HABAINY J, IYENGAR S, SURREDDI K B, et al. Formation of oxide layers on tungsten at low oxygen partial pressures[J]. Journal of Nuclear Materials, 2018, 506: 26–34. doi: 10.1016/j.jnucmat.2017.12.018.
    [15] NAGY D and HUMPHRY-BAKER S A. An oxidation mechanism map for tungsten[J]. Scripta Materialia, 2022, 209: 114373. doi: 10.1016/j.scriptamat.2021.114373.
    [16] CIFUENTES S C, MONGE M A, and PÉREZ P. On the oxidation mechanism of pure tungsten in the temperature range 600-800 °C[J]. Corrosion Science, 2012, 57: 114–121. doi: 10.1016/j.corsci.2011.12.027.
    [17] VITOS L, RUBAN A V, SKRIVER H L, et al. The surface energy of metals[J]. Surface Science, 1998, 411(1/2): 186–202. doi: 10.1016/S0039-6028(98)00363-X.
    [18] LAMBERT-MAURIAT C and OISON V. Density-functional study of oxygen vacancies in monoclinic tungsten oxide[J]. Journal of Physics: Condensed Matter, 2006, 18(31): 7361–7371. doi: 10.1088/0953-8984/18/31/028.
    [19] VADDIRAJU S, CHANDRASEKARAN H, and SUNKARA M K. Vapor phase synthesis of tungsten nanowires[J]. Journal of the American Chemical Society, 2003, 125(36): 10792–10793. doi: 10.1021/ja035868e.
    [20] 程旭. 密度泛函理论与实验结合的WO3表面与气体相互作用研究[D]. [博士论文], 兰州大学, 2024.

    CHENG Xu. Investigation of the interaction between WO3 surface and gases through the combination of density functional theory and experimental approaches[D]. [Ph. D. dissertation], Lanzhou University, 2024.
    [21] 徐季, 张建, 李孟杰, 等. 场发射冷阴极的技术现状及其应用研究进展[J]. 真空电子技术, 2020(3): 1–14. doi: 10.16540/j.cnki.cn11-2485/tn.2020.03.01.

    XU Ji, ZHANG Jian, LI Mengjie, et al. Technology status and application research progress of field emission cold cathodes[J]. Vacuum Electronics, 2020(3): 1–14. doi: 10.16540/j.cnki.cn11-2485/tn.2020.03.01.
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出版历程
  • 修回日期:  2026-07-08
  • 录用日期:  2026-07-08
  • 网络出版日期:  2026-07-23

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