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    • 2. 发明授权
    • Long-period grating device
    • 长周期光栅装置
    • US06563984B1
    • 2003-05-13
    • US09504898
    • 2000-02-16
    • Michiko HarumotoMasakazu ShigeharaShinji IshikawaTadashi Enomoto
    • Michiko HarumotoMasakazu ShigeharaShinji IshikawaTadashi Enomoto
    • G02B626
    • G02B6/02095
    • The present invention relates to a long-period grating device which eliminates only a desirable wavelength of core-mode light in a wavelength band in use from 1525 nm to 1610 nm. The long-period grating device according to the present invention comprises an optical fiber provided with a core region and a cladding region, whereas a long-period grating whose refractive index changes with a period &Lgr; in the advancing direction of light is provided in the core region, wherein the period &Lgr; is set such that the absolute value of a loss peak due to mode coupling concerning a refractive index modulation component with a period &Lgr;/(2n+1) (n=1, 2, 3, 4) is 0.2 dB or less in the wavelength band in use.
    • 本发明涉及一种长周期光栅器件,其仅消除了使用中的1525nm至1610nm的波长范围内的核心光的理想波长。 根据本发明的长周期光栅装置包括设置有芯区域和包层区域的光纤,而在光的前进方向上折射率随周期LAMBD变化的长周期光栅设置在芯 区域,其中周期LAMBD被设置为使得由于与周期LAMBD /(2n + 1)(n = 1,2,3,4)的折射率调制分量的模式耦合的损耗峰值的绝对值为0.2 dB或更小的波长带。
    • 4. 发明授权
    • Optical fiber grating device
    • 光纤光栅装置
    • US06785444B2
    • 2004-08-31
    • US10129276
    • 2002-10-01
    • Shinji IshikawaMasakazu ShigeharaMichiko TakushimaTadashi Enomoto
    • Shinji IshikawaMasakazu ShigeharaMichiko TakushimaTadashi Enomoto
    • G02B634
    • G02B6/021G02B6/02095G02B6/03633
    • An optical fiber grating device 1 is a device in which a long period grating 14 is formed in a core region 11 of an optical fiber 10 consisting of the core region 11 having a refractive index n1 and an outside diameter 2a, a first cladding region 12 surrounding the core region 11 and having a refractive index n2 and an outside diameter 2b, and a second cladding region 13 surrounding the first cladding region 12 and having a refractive index n3 and an outside diameter 2c. There is a magnitude relation of n1>n2>n3 among the refractive index n1 of the core region 11, the refractive index n2 of the first cladding region 12, and the refractive index n3 of the second cladding region 13, a relative refractive index difference &Dgr;n2 of the first cladding region 12 to the second cladding region 13 is not less than 0.5%, and a thickness (c−b) of the second cladding region 13 with respect to a transmission loss peak wavelength &lgr; is in a range of not less than &lgr; nor more than 10&lgr;.
    • 光纤光栅装置1是在由具有折射率n1和外径2a的纤芯区域11构成的光纤10的芯部区域11中形成长周期光栅14的装置,第一包层区域12 围绕芯区域11并具有折射率n2和外径2b,以及围绕第一包层区域12并具有折射率n3和外径2c的第二包层区域13。 在芯区域11的折射率n1,第一包层区域12的折射率n2和第二包层区域13的折射率n3之间存在n1> n2> n3的大小关系,相对折射率差 第一包层区域12到第二包层区域13的Deltan2不小于0.5%,第二包层区域13相对于透射损耗峰值波长λ的厚度(cb)在不小于λ的范围内 也不超过10lambda。
    • 5. 发明授权
    • Optical fiber grating element, production method, and optical fiber filter
    • 光纤光栅元件,生产方法和光纤滤波器
    • US06487340B2
    • 2002-11-26
    • US09903763
    • 2001-07-13
    • Tadashi EnomotoShinji IshikawaMasakazu ShigeharaMichiko Takushima
    • Tadashi EnomotoShinji IshikawaMasakazu ShigeharaMichiko Takushima
    • G02B634
    • G02B6/02095G02B6/03633G02B6/03666G02B6/14G02B6/266
    • The present invention relates to an optical fiber grating element having structure enabling more precise design and fabrication, a production method thereof, and an optical fiber filter including the same. The optical fiber grating element according to the present invention comprises a multi-mode optical fiber having a first core region of a refractive index n1, a second core of a refractive index n2 provided on a periphery of the first core region, and a cladding region of a refractive index n3 provided on a periphery of the second core region, and having a cutoff wavelength regarding to LP02-mode light on the longer wavelength side than a wavelength band in use. A long-period grating for selectively coupling the fundamental LP01-mode light of a predetermined wavelength in the wavelength band I use to LP0m (m≧2)-mode light is provided in a predetermined region of the first core region.
    • 本发明涉及具有能够进行更精确的设计和制造的结构的光纤光栅元件及其制造方法以及包括该光纤光栅的光纤滤波器。 根据本发明的光纤光栅元件包括具有折射率n1的第一纤芯区域和设置在第一纤芯区域周围的折射率n2的第二纤芯的多模光纤,以及包覆区域 设置在第二纤芯区域的周围的折射率n3,并且在比使用的波长带更长的波长侧具有关于LP02模式光的截止波长。 在第一核心区域的预定区域中提供用于将波长带I中使用的预定波长的基本LP01模式光选择性地耦合到LP0m(m> = 2)模式光的长周期光栅。
    • 6. 发明授权
    • Optical fiber for optical amplifier, optical fiber amplifier and optical fiber laser
    • 光放大器光纤,光纤放大器和光纤激光器
    • US06490078B2
    • 2002-12-03
    • US09809301
    • 2001-03-16
    • Tadashi EnomotoMasahiro TakagiYuichi OhgaMotoki KakuiShinji IshikawaMasakazu ShigeharaShinji Endo
    • Tadashi EnomotoMasahiro TakagiYuichi OhgaMotoki KakuiShinji IshikawaMasakazu ShigeharaShinji Endo
    • G02B634
    • H01S3/06708H01S3/06716H01S3/06729H01S3/06754
    • The present invention relates to an OFA having a high signal gain, easily manufactured, having a high mechanical strength, having a small splice loss with respect to other optical fibers, and rarely encountering the occurrence of noise at a signal wavelength. The OFA according to the present invention has a function of amplifying signals propagating therethroug by pumping light supplied thereto, and comprises, at least, a core region, an inner cladding region provided on the periphery of the core region, an outer cladding region provided on the periphery of the inner cladding region, and one or more node coupling gratings. An element for signal amplification is added to at least the core region. The core region has a structure ensuring a core mode with respect to the signals, while the inner cladding region has a structure ensuring a multi-mode with respect to the pumping light. Each of the mode coupling gratings passes core mode signals therethrough, and induces a mode coupling between the inner cladding mode and the core mode with respect to the pumping light.
    • 本发明涉及具有高机械强度,易于制造的具有高信号增益,相对于其它光纤具有小的接合损耗,并且很少遇到在信号波长处的噪声的发生的OFA。 根据本发明的OFA具有通过泵送供给到其上的光来传播传播的信号的功能,并且至少包括芯区域,设置在芯区域周围的内包层区域,设置在芯区域 内包层区域的周边,以及一个或多个节点耦合光栅。 用于信号放大的元件至少加到核心区域。 芯区域具有确保相对于信号的芯模式的结构,而内包层区域具有确保相对于泵浦光的多模式的结构。 每个模式耦合光栅通过芯模信号,并且相对于泵浦光在内包层模式和芯模之间引起模耦合。