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中国物理学会期刊

磁控管用新型Y2O3-Gd2O3-HfO2浸渍W基直热式阴极研究

CSTR: 32037.14.aps.65.057901

A novel Y2O3-Gd2O3-HfO2 impregnated W base direct-heated cathode in magnetron tube

CSTR: 32037.14.aps.65.057901
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  • 本文研制了一种大功率连续波磁控管用新型难熔Y2O3-Gd2O3-HfO2浸渍W基直热式阴极, 并对该阴极的直流发射特性进行了测试, 结果显示该阴极在1400 ℃温度下即可提供超过1 A/cm2的空间电荷限制区电流密度, 1700 ℃温度下可以提供超过10.5 A/cm2的空间电荷限制区电流密度. 利用理查森直线法求得该阴极的绝对零度逸出功仅为1.68 eV, 理查森-道舒曼公式法求得该阴极的有效逸出功为2.6-3.1 eV. 寿命实验结果显示, 该阴极在工作温度为1600 ℃, 直流负载为1.5 A/cm2的条件下, 寿命已经超过3600 h. 最后, 分别利用SEM、AES、EDS等分析手段对该阴极表面的微观结构、元素成分及含量进行了研究, 结果表明, 该阴极在高温激活过程中, 表面形成了一层空穴导电的Y2O3-x半导体层, 该半导体层的形成改善了阴极表面导电性, 间接降低了逸出功, 提高了阴极的热发射能力. 此外, 还对该阴极的耐电子轰击性能进行了研究, 结果显示该阴极在经过150 h电子连续轰击后, 电流密度从初始1.5 A/cm2线性下降并稳定至0.4 A/cm2.

     

    As the heart of a magnetron, cathode plays an important role in the device. At present, the pure W cathode is mainly used in high-power continuous wave magnetron tube. However, the pure W cathode has low thermionic emission capability and secondary electron emission yield (1.25-1.50), which result in the cathode operating at a high temperature (2450-2700 K). The higher the operating temperature of the cathode, the faster the evaporation of its surface is, which can shorten the cathode lifetime. In order to enhance the emission current, reduce the operation temperature and prolong the lifetime of the pure W cathode, a novel refractory Y2O3-Gd2O3-HfO2 impregnated W base direct-heated cathode (Y-Gd-Hf-O impregnated cathode) is developed in this paper. The present investigation mainly focuses on the thermionic emission, work function, lifetime, emission mechanism, and anti-bombing property. The direct current (dc) emission properties of the Y-Gd-Hf-O impregnated cathode are investigated, showing that it can provide more than 0.4, 1, 4.0, 7.74, 10.5 A/cm2 current density for the space charge limitation (SCL) at 1300, 1400, 1500, 1600, 1700 ℃ respectively. Absolute zero work function for the cathode is only 1.68 eV obtained by the Richardson line method. The effective work function for the cathode is in a range of 2.6-3.1 eV obtained by the Richardson-Dushman formula. The lifetime for the cathode is more than 3600 h with an initial load of 1.5 A/cm2 at 1600 ℃. The surface microstructure, element composition and content of the Y-Gd-Hf-O impregnated cathode are analyzed by the scanning electron microscope (SEM), Auger electron spectroscopy (AES), and energy disperse spectroscopy (EDS). The analysis results show that the surface of the cathode contains the Y2O3-x semiconductor layer, which causes an improvement of the electro-conductivity during the activation. The work function of the cathode can also be reduced due to the improvement of the electro-conductivity. Besides, the addition of the transition-metal oxide HfO2 changes the internal lattice energy level, which can further reduce the work function. Therefore, the Y-Gd-Hf-O impregnated cathode has good thermionic emission capability. In addition, the anti-bombing performance of the cathode is also studied, which shows that the dc emission current density decreases linearly from the initial current density of 1.5 A/cm2 to 0.4 A/cm2 after 150-h continuous electron bombing at 10 W/cm2. In the future research, we will focus on enhancing the anti-bombing property for the Y-Gd-Hf-O impregnated cathode by using Y-Gd-Hf-O doped W base direct-heated cathode.

     

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