光学学报
光學學報
광학학보
ACTA OPTICA SINICA
2009年
10期
2681-2685
,共5页
光波导%太赫兹空芯光纤%介质材料吸收%吸收容限
光波導%太赫玆空芯光纖%介質材料吸收%吸收容限
광파도%태혁자공심광섬%개질재료흡수%흡수용한
optical waveguide%terahertz hollow fiber%dielectric material absorption%absorption tolerance
介质/金属结构空芯光纤是一种有发展前景的太赫兹波传输媒质.介质膜在有效增加内面反射率从而降低传输损耗的同时,其材料吸收会引起附加损耗.讨论了介质材料吸收对太赫兹空芯光纤结构参数的影响.计算结果表明,相比于无吸收的理想介质,吸收介质的最优膜厚变小.最优折射率变大.综合考虑了光纤内直径、介质膜折射率和传输波长等因素,分析了介质膜的材料吸收容限.分析结果表明,吸收容限随光纤内直径减小或传输波长增大而减小.当光纤内直径很小或传输波长很大时,吸收容限可能不存在.分析结果对介质/金属太赫兹空芯光纤的设计和材料选择具有重要参考价值.
介質/金屬結構空芯光纖是一種有髮展前景的太赫玆波傳輸媒質.介質膜在有效增加內麵反射率從而降低傳輸損耗的同時,其材料吸收會引起附加損耗.討論瞭介質材料吸收對太赫玆空芯光纖結構參數的影響.計算結果錶明,相比于無吸收的理想介質,吸收介質的最優膜厚變小.最優摺射率變大.綜閤攷慮瞭光纖內直徑、介質膜摺射率和傳輸波長等因素,分析瞭介質膜的材料吸收容限.分析結果錶明,吸收容限隨光纖內直徑減小或傳輸波長增大而減小.噹光纖內直徑很小或傳輸波長很大時,吸收容限可能不存在.分析結果對介質/金屬太赫玆空芯光纖的設計和材料選擇具有重要參攷價值.
개질/금속결구공심광섬시일충유발전전경적태혁자파전수매질.개질막재유효증가내면반사솔종이강저전수손모적동시,기재료흡수회인기부가손모.토론료개질재료흡수대태혁자공심광섬결구삼수적영향.계산결과표명,상비우무흡수적이상개질,흡수개질적최우막후변소.최우절사솔변대.종합고필료광섬내직경、개질막절사솔화전수파장등인소,분석료개질막적재료흡수용한.분석결과표명,흡수용한수광섬내직경감소혹전수파장증대이감소.당광섬내직경흔소혹전수파장흔대시,흡수용한가능불존재.분석결과대개질/금속태혁자공심광섬적설계화재료선택구유중요삼고개치.
Dielectric-coated metallic hollow fiber is one of the promising media for THz transmission. The dielectric layer enhances the reflection rate and hence lowers the transmission loss, whereas it brings additional loss due to its material absorption. The influence of dielectric absorption on the structure parameters of the hollow fiber is theoretically discussed. Calculation results show that the optimum refractive index of an absorptive dielectric layer is greater than that of a perfect transparent dielectric layer. The optimum thickness of the dielectric layer to minimize the loss of Hen mode becomes smaller due to the absorption. The absorption tolerance is also investigated when considering such factors as inner diameter, refractive index, and transmission wavelength. It is shown that absorption tolerance decreases when the inner diameter becomes smaller or when the transmission wavelength becomes larger. In extreme cases of small inner-diameter or large transmission wavelength, the absorption tolerance is not existent. The calculation results are useful to the structure design and material selection in the fabrication of terahertz hollow fibers.