WAVELENGTH DIVISION MULTIPLEXED-PASSIVE OPTICAL NETWORK APPARATUS
    2.
    发明申请
    WAVELENGTH DIVISION MULTIPLEXED-PASSIVE OPTICAL NETWORK APPARATUS 审中-公开
    波长部分多路无源光网络设备

    公开(公告)号:US20100316383A1

    公开(公告)日:2010-12-16

    申请号:US12582211

    申请日:2009-10-20

    CPC classification number: H04J14/0282

    Abstract: Provided is a wavelength division multiplexed-passive optical network (WDM-PON) apparatus. The WDM-PON includes an optical source unit, an optical mux, and a chirped Bragg grating. The optical source unit generates an optical signal. The optical mux receives the optical signal from the optical source unit through one end of the optical mux, multiplexes the optical signal, and outputs the multiplexed optical signal. The chirped Bragg grating is connected to the other end of the optical mux. The chirped Bragg grating again reflects the optical signal having passed the optical mux to re-input a certain portion of the optical signal into the optical mux and the optical source unit. The optical mux performs a spectrum slicing on the re-inputted optical signal and operates the optical source unit using a channel wavelength of the optical mux as a main oscillation wavelength.

    Abstract translation: 提供了一种波分复用无源光网络(WDM-PON)装置。 WDM-PON包括光源单元,光复用器和啁啾布拉格光栅。 光源单元产生光信号。 光复用器通过光复用器的一端从光源单元接收光信号,复用光信号,并输出复用的光信号。 啁啾布拉格光栅连接到光复用器的另一端。 啁啾布拉格光栅再次反射已经通过光复用器的光信号,以将光信号的某一部分重新输入光复用器和光源单元。 光复用器对重新输入的光信号执行频谱分片,并使用光复用器的信道波长作为主振荡波长来操作光源单元。

    Optical amplifier
    3.
    发明授权
    Optical amplifier 有权
    光放大器

    公开(公告)号:US08594469B2

    公开(公告)日:2013-11-26

    申请号:US12640627

    申请日:2009-12-17

    Abstract: An optical amplifier includes a passive waveguide region and an active waveguide region. The passive waveguide region is configured to receive an incident optical signal and adjust a mode of the optical signal. The active waveguide region is integrated to the passive waveguide region and configured to perform gain modulation on the optical signal received from the passive waveguide region by changing density of carriers in response to a current applied to the active waveguide region. Internal loss of the active waveguide region is adjusted to produce a resonance effect and thereby to increase bandwidth of the active waveguide. Therefore, the optical amplifier can have a wide bandwidth under a low-current condition.

    Abstract translation: 光放大器包括无源波导区域和有源波导区域。 无源波导区域被配置为接收入射光信号并调整光信号的模式。 有源波导区域被集成到无源波导区域,并被配置为响应于施加到有源波导区域的电流改变载波的密度,对从无源波导区域接收的光信号执行增益调制。 有源波导区域的内部损耗被调节以产生共振效应,从而增加有源波导的带宽。 因此,光放大器可以在低电流条件下具有宽带宽。

    OPTICAL DEVICE MODULE
    4.
    发明申请
    OPTICAL DEVICE MODULE 审中-公开
    光学器件模块

    公开(公告)号:US20110134513A1

    公开(公告)日:2011-06-09

    申请号:US12773196

    申请日:2010-05-04

    Abstract: Provided is an optical device module that can improve miniaturization and integration. The optical device module includes a semiconductor optical amplifier having a buried structure and including a first active layer buried in a clad layer disposed on a first substrate, an optical modulator in which a sidewall of a second active layer disposed in a direction of the first active layer on a second substrate junctioned to the first substrate is exposed, the optical modulator having a ridge structure, and at least one multi-mode interference coupler in which the second active layer junctioned to the first active layer is buried in the clad layer, the multi-mode interference coupler sharing the second active layer on the second substrate between the optical modulator and the semiconductor optical amplifier and integrated with the second optical device.

    Abstract translation: 提供了可以改善小型化和集成的光学装置模块。 光学器件模块包括具有掩埋结构的半导体光学放大器,并且包括掩埋在第一衬底上的覆盖层中的第一有源层,光调制器,其中第二有源层的侧壁沿着第一有源层 暴露在与第一衬底相交的第二衬底上的层,光学调制器具有脊结构,以及至少一个多模干涉耦合器,其中与第一有源层结合的第二有源层被掩埋在覆盖层中, 所述多模干涉耦合器在所述光调制器和所述半导体光放大器之间的所述第二基板上共享所述第二有源层并与所述第二光学装置集成。

    Distributed feedback (DFB) quantum dot laser structure
    5.
    发明授权
    Distributed feedback (DFB) quantum dot laser structure 有权
    分布式反馈(DFB)量子点激光器结构

    公开(公告)号:US07551662B2

    公开(公告)日:2009-06-23

    申请号:US12096351

    申请日:2006-11-24

    Abstract: A distributed feedback (DFB) quantum dot semiconductor laser structure is provided. The DFB quantum dot semi-conductor laser structure includes: a first clad layer formed on a lower electrode; an optical waveguide (WG) formed on the first clad layer; a grating structure layer formed on the optical WG and including a plurality of periodically disposed gratings; a first separate confinement hetero (SCH) layer formed on the grating structure layer; an active layer formed on the first SCH layer and including at least a quantum dot; a second SCH layer formed on the active layer; a second clad layer formed on the second SCH layer; an ohmic layer formed on the second clad layer; and an upper electrode formed on the ohmic layer. Accordingly, an optical WG is disposed on the opposite side of the active layer from the grating structure layer, thereby increasing single optical mode efficiency. And, an asymmetric multi-electrode structure is used for applying current, thereby maximizing purity and efficiency of the single mode semiconductor laser structure.

    Abstract translation: 提供了分布式反馈(DFB)量子点半导体激光器结构。 DFB量子点半导体激光器结构包括:形成在下电极上的第一覆层; 形成在第一包层上的光波导(WG); 光栅结构层,形成在光学WG上并且包括多个周期性布置的光栅; 形成在所述光栅结构层上的第一分离限制性杂(SCH)层; 形成在第一SCH层上并包括至少一个量子点的有源层; 形成在所述有源层上的第二SCH层; 形成在第二SCH层上的第二覆层; 形成在所述第二覆盖层上的欧姆层; 和形成在欧姆层上的上电极。 因此,光学WG设置在有源层与光栅结构层的相反侧,从而提高单一光模式效率。 并且,使用非对称多电极结构来施加电流,从而最大化单模半导体激光器结构的纯度和效率。

    Semiconductor optical devices and methods of fabricating the same
    6.
    发明授权
    Semiconductor optical devices and methods of fabricating the same 有权
    半导体光学器件及其制造方法

    公开(公告)号:US08804232B2

    公开(公告)日:2014-08-12

    申请号:US13307067

    申请日:2011-11-30

    Abstract: A semiconductor optical device includes a first mode converting core, a light amplification core, a second mode converting core, and a light modulation core disposed in a first mode converting region, a light amplification region, a second mode converting region, and a light modulating region of a semiconductor substrate, respectively, and a current blocking section covering at least sidewalls and a top surface of the light amplification core. The first mode converting core, the light amplification core, the second mode converting core, and the light modulation core are arranged along one direction in the order named, and are connected to each other in butt joints. The current blocking section includes first, second, and third cladding patterns sequentially stacked. The second cladding pattern is doped with dopants of a first conductivity type, and the first and third cladding patterns are doped with dopants of a second conductivity type.

    Abstract translation: 半导体光学器件包括第一模式转换核心,光放大核心,第二模式转换核心和设置在第一模式转换区域中的光调制核心,光放大区域,第二模式转换区域和光调制 区域,以及至少覆盖光放大芯的侧壁和顶表面的电流阻挡部分。 第一模式转换核心,光放大核心,第二模式转换核心和光调制核心按照命名的顺序沿一个方向布置,并且在对接中彼此连接。 电流阻挡部分包括顺序层叠的第一,第二和第三包层图案。 第二包层图案掺杂有第一导电类型的掺杂剂,并且第一和第三包层图案掺杂有第二导电类型的掺杂剂。

    SEMICONDUCTOR OPTICAL DEVICES AND METHODS OF FABRICATING THE SAME
    8.
    发明申请
    SEMICONDUCTOR OPTICAL DEVICES AND METHODS OF FABRICATING THE SAME 有权
    半导体光学器件及其制造方法

    公开(公告)号:US20120281274A1

    公开(公告)日:2012-11-08

    申请号:US13307067

    申请日:2011-11-30

    Abstract: A semiconductor optical device includes a first mode converting core, a light amplification core, a second mode converting core, and a light modulation core disposed in a first mode converting region, a light amplification region, a second mode converting region, and a light modulating region of a semiconductor substrate, respectively, and a current blocking section covering at least sidewalls and a top surface of the light amplification core. The first mode converting core, the light amplification core, the second mode converting core, and the light modulation core are arranged along one direction in the order named, and are connected to each other in butt joints. The current blocking section includes first, second, and third cladding patterns sequentially stacked. The second cladding pattern is doped with dopants of a first conductivity type, and the first and third cladding patterns are doped with dopants of a second conductivity type.

    Abstract translation: 半导体光学器件包括第一模式转换核心,光放大核心,第二模式转换核心和设置在第一模式转换区域中的光调制核心,光放大区域,第二模式转换区域和光调制 区域,以及至少覆盖光放大芯的侧壁和顶表面的电流阻挡部分。 第一模式转换核心,光放大核心,第二模式转换核心和光调制核心按照命名的顺序沿一个方向布置,并且在对接中彼此连接。 电流阻挡部分包括顺序层叠的第一,第二和第三包层图案。 第二包层图案掺杂有第一导电类型的掺杂剂,并且第一和第三包层图案掺杂有第二导电类型的掺杂剂。

    Quantum dot laser diode and method of fabricating the same
    10.
    发明申请
    Quantum dot laser diode and method of fabricating the same 审中-公开
    量子点激光二极管及其制造方法

    公开(公告)号:US20100260223A1

    公开(公告)日:2010-10-14

    申请号:US11633201

    申请日:2006-12-04

    Abstract: A quantum dot laser diode and a method of fabricating the same are provided. The quantum dot laser diode includes: a first clad layer formed on an InP substrate; a first lattice-matched layer formed on the first clad layer; an active layer formed on the first lattice-matched layer, and including at least one quantum dot layer formed of an InAlAs quantum dot or an InGaPAs quantum dot which is grown by an alternate growth method; a second lattice-matched layer formed on the active layer; a second clad layer formed on the second lattice-matched layer, and an ohmic contact layer formed on the second clad layer.

    Abstract translation: 提供了一种量子点激光二极管及其制造方法。 量子点激光二极管包括:形成在InP衬底上的第一覆层; 形成在第一覆盖层上的第一晶格匹配层; 形成在第一晶格匹配层上的活性层,并且包括由交替生长法生长的InAlAs量子点或InGaPAs量子点形成的至少一个量子点层; 形成在所述有源层上的第二晶格匹配层; 形成在第二晶格匹配层上的第二覆盖层和形成在第二覆盖层上的欧姆接触层。

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