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1. 东北师范大学 辐射技术研究所,吉林 长春,130024
2. 中国科学院长春光学精密机械与物理研究所 激发态物理重点实验室,吉林 长春,130033
收稿日期:2009-01-19,
修回日期:1900-01-02,
网络出版日期:2009-12-30,
纸质出版日期:2009-12-30
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谷德山, 丁广泽, 刘林茂, 等. 氚β射线驱动的荧光灯[J]. 发光学报, 2009,30(6):778-781.
GU De-shan, DING Guang-ze, LIU Lin-mao, et al. Fluorescent Lamp Driven by β-ray of Tritium[J]. Chinese journal of luminescence, 2009, 30(6): 778-781.
采用了放射性同位素氚在衰变过程中放射出β粒子激活发光材料发光的原理。因β粒子平均自由程只有4.3 mm
灯型选择直径应在4~8 mm之间。通过实验比对
确定常用的发光材料为:发红光材料硫氧钇 : 铕(Y
2
O
2
S : Eu);发绿光的发光材料硫化锌 : 铜
铝(ZnS : Cu
Al);发蓝光的发光材料硫化锌 : 银(ZnS : Ag)。经过测试选择发光材料的最佳平均粒度:硫氧钇铕4.6 μm;硫化锌铜铝5.3 μm;硫化锌银5.4 μm。同时探讨了涂屏方法和充氚排气工艺。对制作的氚灯进行了光亮度测试。最后给出了氚灯的使用与保存方法。
The principle of activating the phosphors to luminescence by β particle emitted from tritium isotope was introduced. Because the average free path of β-particle is only 4.3 mm
the diameter of the lamp is limited between 4 mm and 8 mm. From experiment
we can come to the conclusions as follows:First
Y
2
O
2
S : Eu is the familiar phosphors which can emit red ray. Secondly
ZnS : Cu
Al is the familiar phosphors which can emit green ray. Finally
ZnS : Ag is the familiar phosphor which can emit blue ray. From testing
the optimal granularities of Y
2
O
2
S : Eu
ZnS : Cu
Al
ZnS : Ag are 4.6
5.3 and 5.4 μm
respectively. The methods of phosphor coating and the technics of charging the tritium are introduced in detail. The brightness of the tritium lamp was also tested. At last
the methods of using and storage of tritium lamp were explained.
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