首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Nitrogen: a possible substitute for mercury as a UV-emitter for mercury-less low-pressure discharge fluorescent lamps using Penning-like energy transfer
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Nitrogen: a possible substitute for mercury as a UV-emitter for mercury-less low-pressure discharge fluorescent lamps using Penning-like energy transfer

机译:氮:使用类似潘宁的能量转移技术,可替代无汞低压放电荧光灯的紫外线发射器中的汞

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Nitrogen is well known as a UV-emitter because of its 2nd positive band lying around 350 nm. However, it is a molecular gas and when energy is stored in rotational or vibrational levels, the gas temperature can become high enough to melt even the glass tube. To avoid such problems the authors tried to use the Penning-like effect between the argon metastables and nitrogen C(3)Pi(u) states with very low partial pressure of nitrogen compared with that of the argon. By adding a very small amount of nitrogen to argon, the discharge changes drastically. Though pure argon discharge and pure nitrogen discharge are both unstable and easy to constrict, a small amount of nitrogen improves the stability of the discharge and emits the nitrogen 2nd positive band UV light by energy transfer from the argon metastable to the nitrogen molecule C(3)Pi(u) state. Nitrogen-added argon fluorescent lamps operated at 30 kHz of alternative square voltage wave achieve about 4500 cd m(-2) at 3.75 W and at 9.3 kPa of pressure with good dimming characteristics. The maximum luminance should be higher than this because the input power is limited by the power supply. At this condition the luminous efficacy achieves 7.11mW(-1). These results show a possibility of argon-nitrogen fluorescent lamps as mercury-less fluorescent lamps.
机译:氮气是众所周知的紫外线发射器,因为它的第二个正带位于350 nm附近。但是,它是一种分子气体,当能量以旋转或振动的方式存储时,气体温度可能会升高到足以熔化玻璃管的程度。为避免此类问题,作者尝试在氩亚稳和氮的C(3)Pi(u)态之间使用类似于Penning效应,且氮的分压比氩低。通过向氩气中加入极少量的氮气,放电量会急剧变化。尽管纯氩放电和纯氮气放电均不稳定且易于收缩,但少量的氮气可提高放电的稳定性,并通过将能量从亚稳态的氩转移至氮分子C来发射氮2正带UV光。 Pi(u)状态。在替代方电压波为30 kHz的条件下运行的添加氮气的氩气荧光灯在3.75 W和9.3 kPa的压力下达到约4500 cd m(-2),具有良好的调光特性。最大亮度应高于此值,因为输入功率受电源的限制。在这种条件下,发光效率达到7.11mW(-1)。这些结果表明氩氮荧光灯有可能成为无汞荧光灯。

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