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Microcavity plasma UV lamps: Efficient VUV, UV-C and UV-B generation with flat form factor

机译:微胶囊等离子体UV灯:高效的VUV,UV-C和UV-B,具有平坦的形状因子

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Summary form only given. Flat lamps have been developed which comprise large arrays of microcavity plasmas, and they are capable of efficiently generating UV light in the range of VUV to UV-B. UV light is desirable for a number of chemical processes and disinfection methods and lamps are available commercially, but conventional UV light sources suffer from several drawbacks, including undesirable form factors and environmental concerns regarding the use of mercury. Microplasmas are non-equilibrium, low temperature plasma sources which have high power loading (several hundred kW/cm3), thereby enabling them to efficiently form UV-generating excimer molecules. Additionally, they contain no toxic substances such as mercury. This work has focused on leveraging microplasma array technology to realize low temperature UV lamps that are flat and designed to have a scalable, slim form-factor (total thickness less than ~6 mm). Each microcavity (less than a few millimeters in its cross-sectional dimensions) was fabricated on a quartz window substrate by microfabrication techniques, and the spatial variation of the electric field strength in each microcavity was tailored through the cavity cross-section and electrode geometry to reduce power consumption and to efficiently generate deep UV radiation. UV light tiles have been fabricated which are capable of producing fluences up to 200 mW/cm2 at 172 nm which generates more than 10 watts of average power from a lamp of only 16 inches square (100 cm2) in surface area. Details concerning lamp performance and the design of several UV lamps having emitting wavelengths specifically at 172, 222, and 308 nm will be discussed.
机译:摘要表格仅给出。已经开发了扁平灯,其包括大阵列的微腔类别阵列,并且它们能够有效地在Vuv范围内产生UV光到UV-B。 UV光对于许多化学方法,并且消毒方法和灯可商购获得,但传统的UV光源遭受了几个缺点,包括不希望的形状因素和关于使用汞的环境问题。微血管是非平衡,具有高功率负载(数百kW / cm3)的低温等离子体源,从而使它们能够有效地形成UV产生的准分子分子。此外,它们含有无毒物质,如汞。这项工作集中在利用显微载体阵列技术来实现平坦的低温UV灯,并且设计成具有可扩展的纤薄的形状因子(总厚度小于〜6mm)。通过微型制备技术在石英窗基板上制造每个微腔(其横截面尺寸小于几毫米),并且通过腔横截面和电极几何定制了每个微腔中的电场强度的空间变化降低功耗并有效地产生深紫色辐射。已经制造了UV光瓦,其能够在172nm处产生高达200 mw / cm2的流量,该流量在172 nm处产生超过10瓦的平均功率,仅在表面积为16英寸正方形(100cm2)的灯泡中。关于灯性能的细节和若干紫外线灯的设计将讨论专门在172,222和308nm处发射波长。

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