Showing posts with label PLC splitter. Show all posts
Showing posts with label PLC splitter. Show all posts

6/02/2021

Introduction of PLC Technology and Fabrication Processes

 

PLC is more known in the field of electronic technology. It is the acronym of the terminology ‘programmable logic controller’. However, in the field of optical communication, PLC is the acronym of another terminology, i.e. ‘planar lightwave circuit’, which is variable optical waveguide structures fabricated with integrated optics technologies. PLC technologies can implement functional devices as directional coupler (DC), Y-branch splitter, multimode interferometer (MMI), arrayed waveguide grating (AWG), optical interleaver (ITL), Mach-Zehnder (MZ) electro-optical modulator, thermo-optical variable optical attenuator (TO-VOA), thermo-optical switch (TO-SW), etc.

In the optical communication industry, the widely deployed PLC devices include optical power splitter, AWG, MZ electro-optical modulator and TO-VOA, etc. optical power splitter is a device consisting of Y-branch splitters in cascade and parallel connection. For example, a 1×16 power needs 15 Y-branch splitters. AWG is a device with 1×N ports, which separates tens of wavelengths from the input to each output. MZ modulator based on lithium niobate optical waveguide is the main approach for optical modulators. Meanwhile, modulators based on silicon optics are commercialized and become the first choice for high-speed modulators >50G. TO-VOA based on PLC technology is deployed in combination with AWG, which compose a VMUX module with functions of multiplexing/demultiplexing and dynamic channel equalization.

Optical communication devices based on PLC technology and widely deployed are variable. However, PLC is usually specified as optical power splitters in the industry, which is a most widely deployed passive optical device in the FTTH network. After the internet bubble in 2000, optical communication industry entered a period of depression. Then in 2004, Japan first invested on FTTH construction as a new infrastructure, although the application scenario of FTTH had not emerged yet. In 2008, China added in the construction of FTTH and reached the peak in 2012. FTTH network usually adopts PON structure. The key device is optical power splitter, which is widely deployed in the business and residential buildings. In our lives, the most approach to an optical power splitter is the modem for internet access. The pigtail of the modem was upgraded from twist-pair electrical wires to an optical fiber jumper, which is led to one of the ports of an optical power splitter. The optical fiber access can support transmission speed of 100-200M, which is much higher than 4M through electrical wires.

In the field of optical communication, PLC is the abbreviation of plane optical path, which is based on the integrated optical technology to prepare various optical waveguide structures, in order to achieve some functional devices. There are four kinds of fabrication processes for optical waveguides: ion exchange, ion implantation, chemical vapor deposition and flame hydrolysis.

1) Ion exchange

The principle of ion exchange process is to soak the glass material containing A+ ions in the solution containing B+ ions, and exchange the A+ ions in the glass with the B+ ions in the solution by using the property that the ions will diffuse from the high concentration area to the low concentration area. Because the glass material containing A+ ions has higher refractive index than the glass material containing B+ ions, high refractive index can be obtained in the region where ion exchange occurs, which can be used as the core layer of the optical waveguide, and the region where ion exchange does not occur can be used as the cladding layer of the optical waveguide to obtain the required optical waveguide structure.

The general process flow of preparing optical waveguide by ion exchange is shown in Figure 1:

1) A mask layer is covered on the glass substrate by evaporation or sputtering process;

2) Through photolithography and etching process, a window of waveguide structure is opened in the mask layer;

3) The glass material with the mask layer prepared and the window opened is immersed in the solution for ion exchange;

4) Through the electric field driving, the exchange ions distributed in the surface layer are driven to a certain depth to form the waveguide structure.

In the actual process, in order to better ensure the ion exchange effect, the above 3-4 steps need to be carried out at the same time, which depends on the specific process design.


Fig.1.  Fabrication of optical waveguides by ion exchange

In order to improve the ion exchange efficiency and obtain good optical waveguide characteristics, it is necessary to select two kinds of exchanged ions, optimize the glass formula, control the concentration and temperature of the solution, and apply the electric field appropriately.

2) Ion implantation

Ion implantation is a kind of material surface modification technology, which belongs to a standard processing technology in semiconductor industry. Ion implantation optical waveguide is to accelerate ions to tens of thousands to hundreds of thousands of electron volts of high energy by ion accelerator, bombard the surface of substrate materials, cause damage or defects on the surface of materials through the interaction between atoms or molecules, change the refractive index, and form optical waveguide structure.

The typical process of preparing optical waveguide by ion implantation is shown in Fig.2. The ion implanter is usually composed of ion source, ion extraction and pre acceleration, magnetic analyzer, back channel accelerator, electron scanning system, ion implantation cavity and vacuum system. In the cavity of the ion source, ions are generated by gas discharge. The electrode in the ion extractor is led out and pre accelerated. The magnetic analyzer controls the quality of the ion beam and obtains the ion beam with good directivity. The ion beam accelerated by the back channel is injected into the sample in the cavity under the control of the electron deflector.

Fig.2.  Fabrication of optical waveguides by ion implantation

 

The substrate material placed in the ion implantation cavity needs to be pretreated. The mask layer is prepared according to the optical waveguide pattern. After ion implantation, post-processing, such as annealing, is also needed to reduce the influence of material defects on the loss.

3) Chemical vapor deposition

Chemical vapor deposition (CVD) process is also a standard process in the semiconductor industry. The process of preparing optical waveguide by CVD process is shown in Fig.3. It is to successively deposit optical waveguide layers with different doping layers on silicon substrate (or quartz substrate). For example, the core layer is doped with phosphorus and boron to improve the refractive index, and the cladding layer is doped with germanium to reduce the refractive index. After the core layer is deposited and before the upper cladding layer is deposited, the mask layer needs to be prepared by photolithography to define the optical waveguide pattern. After each layer is deposited, annealing hardening process is needed to enhance the density and uniformity of the deposited layer and reduce the stress.

Fig.3.  Fabrication of optical waveguides by chemical vapor deposition

 

4) Flame hydrolysis deposition

The fabrication process of optical waveguide by Flame hydrolysis deposition (FHD) is similar to that by CVD, but the difference is only in the process conditions. CVD is a process in which various elements and compounds containing film elements are introduced into the cavity, and chemical reaction occurs at a certain temperature, so as to deposit the required film on the substrate surface. FHD is to pass volatile halides containing film elements, such as silicon tetrachloride, and halides containing various doping elements, such as phosphorus, boron and germanium, into a gas burner, and react with water in a high temperature flame to form a silicon dioxide film layer doped with various impurity elements.

5) Process comparison

Ion exchange and ion implantation can produce low-cost optical waveguides, but the control of the cross-section shape of the waveguides is slightly poor. They are mainly used to make optical splitters. The production efficiency of ion implantation is much higher than that of ion exchange. CVD and FHD can be used to fabricate high-end optical waveguide devices, such as arrayed waveguide grating (AWG). Among them, FHD is more suitable for thick film fabrication than CVD.

About HYC

Relying on 21 years of experience in OEM ODM manufacturing of optical communication passive basic devices, HYC has continuously achieved technological innovation, and established a complete range from chip post-process processing to overall coupling packaging technology, high-precision full-wavelength testing technology, and providing customers with a full series of PLC optical splitter products.

http://www.hyc-system.com

9/02/2019

The selection guide for FBT Splitter and PLC Splitter

The Optical Splitter is one of the most important components connecting the optical line terminal (OLT) and the optical network unit (ONU). Fiber optic splitters enable a signal on an optical fiber to be distributed among two or more fibers. The performance of optical Splitter is directly related to the stability of the entire network link.
The working principle of the optical splitter is: When the light signal is transmitted in a single-mode fiber, the light energy cannot entirely concentrate on the fiber core. A small amount of energy will be spread through the cladding of the fiber. If two fibers are close enough to each other, the transmitting light in an optical fiber can enter into another optical fiber. Therefore, the reallocation technique of optical signal can be achieved in multiple fibers.
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From the principle of splitting and the manufacturing process, there are two commonly used types of optical splitters: Fused Biconical Taper(FBT) and Planar Lightwave Circuit (PLC). How to choose between them? What is the difference between in applications?
Fused Biconical Taper (FBT) Splitter
The technology of FBT is that two fibers are placed closely together and fused by applying heat while the assembly is being elongated and tapered. The changes of the splitting ratio will be in real-time monitoring. The taper process will end once the splitting ratio meets the requirements. Keep one fiber (the rest is cut off) as the input port and the other end as the multi-output port.
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Planar Lightwave Circuit (PLC) Splitter
PLC splitter is based on planar lightwave circuit technology of quartz glass waveguide. The splitter is composed of an optical splitter chip and an optical fiber array at both ends. The chip is the core component, which has one input and N output. The quality of the chip and the splitter channel directly affect the price of the whole splitter. The optical fiber array is located on the upper surface of the chip and is sealed to form an optical splitter with one input and N output fibers.
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How to choose these two devices?
At present, the mature tapering process can only pull 1×4. 1×4 or more devices, with a plurality of 1×2 connected together. For example, 1×8 can be composed of 7 1×2 devices, the whole package in the splitter box. A PLC splitter is available with the splitting ratio of 1:64. The more splitting channels, the more obvious cost advantage. Thus, FBT splitter is more restricted to the number of splits in one coupling. FBT splitters are widely accepted and used in optical networks with few splitting channels requirement. When larger split configurations such as 1×16,1×32,1×48, PLC splitter has more advantages.
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What’s more, the material of FBT splitter that is easily available, such as steel, fiber, hot dorm. All of these materials are low-price, making the device itself inexpensive. And the technology of PLC fiber splitter is more complicated and expensive. The device manufacturing process is complex and the technical threshold is high. It uses semiconductor technology for production, greatly increasing the manufacturing difficulty, so its cost is higher.
Since the multichannel FBT splitter is packaged by a plurality of 1×2 connections, which will lead to the large package size and poor uniformity of light splitting. It is impossible for each 1×2 device to be completely evenly divided. While for 1×N splitter, this non-uniformity will be amplified, that will cause a poor uniformity. If good uniformity is required, it needs to be accurately calculated and paired. But it is difficult.
The difference in the distribution of the split ratio is also one of the main differences between them. The splitting ratio of FBT splitter can be real-time monitoring, you can create unequal splitter. It is customizable, and the special types are 1:3, 1:7, 1:11, etc. For PLC splitter, the splitting is uniform, and the signal can be evenly distributed to the user. For example, a 1 x 32 PLC splitter can divide the optical signal equally into 32 shares and then transmit to 32 users. Sometimes, due to the inconsistency of the number of users and the distance, the optical power of different lines needs to be allocated. In this case, devices with different split ratios are needed, and the FBT splitter is used.
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Both devices have their own advantages in terms of price and performance. The key to choosing is the occasion and the needs of users in terms of.
HYC Co., Ltd(HYC)is a national Hi-tech optoelectronics company engaged in R&D, manufacture, and marketing of fiber optical products. Providing professional product and service for fiber connectivity, WDM, PLC splitter, and high-density datacom cabling. HYC products and solutions widely applied in 4G/5G, Data Center and Cloud Computing industry, etc.
http://www.hyc-system.com
sales@hyc-system.com

6/21/2019

MCS Multicast Switch for Flexible Network Configuration

Multicast optical switch(MCS)is based on PLC technology and MEMS technology,which can route any optical input to any output. It is a key component in the next generation of Reconfigurable Optical Add-Drop Multiplexer (ROADM) system.
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What is ROADM?
ROADM is one of the Optical Add-Drop Multiplexers (OADMs) that add or remove one or more optical signals from wavelength division multiplexing (WDM) transmission network link. The device can be used in Dense Wavelength Division Multiplexing (DWDM) systems. It allows for remote configuration and reconfiguration and can redirect add/drop signal wavelength. That is to say, in the middle of the network line, the wavelength of the add or drop signal can be redistributed to achieve flexible network configuration.
Multicast optical switch(MCS)is one of the core devices in the reconfigurable optical add/drop multiplex system. Coupled with the wavelength selective switch (WSS), Multicast switches are designed to be used in a next-generation ROADM node to achieve wavelength independent, direction independent, and no conflicts. Directing any wavelength to any port is the wavelength independent; Accepting input wavelength channels from multiple different directions is the direction independent; Ability to drop two identical wavelengths from different directions through the same switch is the no conflicts. This is of great significance for achieving flexibility and low cost of network construction.
The structure of MCS
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As shown in the figure, two independent MCS units are integrated into a single module; Each unit is composed of M independent 1×16 PLC Splitters and N independent 1×8 MEMS optical switches. M×N MCS helps to route optical direction from N add(or drop) to M ports.
With the continuous expansion of network scale and the increasing demand for cross nodes and capacity of upper and lower channels, WSS+MCS will be a smarter choice for a new generation of CDC-ROADM by telecom operators and system operators. Simple, flexible and unrestricted network resource allocation capabilities, and greatly reduce the operating costs of operators.
HYC Co., Ltd(HYC)is a national Hi-tech optoelectronics company engaged in R&D, manufacture, and marketing of fiber optical products. Providing professional product and service for fiber connectivity, WDM, PLC splitter, and high-density datacom cabling. HYC products and solutions widely applied in 4G/5G, Data Center and Cloud Computing industry, etc.
http://www.hyc-system.com
sales@hyc-system.com

3/11/2019

PLC Fiber Optic Splitter In ABS Type

Optical splitter is one of the most important passive components in the optical fibre link. PLC Splitter, based on Planar Lightwave Circuit technology and precision aligning process, can divide single/dual optical inputs into multiple optical outputs uniformly and is denoted 1×N or 2×N. Planar Lightwave Circuit (PLC) splitter is a type of optical power management device to distribute optical signals from Central Office (CO) to multiple premise subscriber locations.
PLC-1
The ABS box is one of the packaging methods of the PLC splitter. In addition to the ABS box type, the PLC splitter is also classified into a rack type, a bare line type, a plug type, a tray type, and more. The ABS PLC splitter is the most commonly used splitter in PON networks and has the following features:
Compact design, flexible installation
ABS PLC splitter provides the complete protection for inner optical components and cable, as well as designed for the convenient and reliable installation. In addition to providing reliable protection, ABS Box PLC Optical Splitters can also be installed in a variety of wiring closets or enclosures. The input fiber and the output fiber are compact compact in a layer of optical waveguide made of quartz substrate, which can provide easier and more flexible wiring. It can be directly installed in various existing junction boxes without needing a lot of installation space.
Uniform distribution of optical signal
The most common split ratios are 1:N or 2:N. N represents the output ports, usually as 2, 4, 8, 16, etc.  HYC’s PLC splitter offers superior optical performance, high stability and high reliability, meet various application requirements in different environments. Every splitter is built to be GR-1209, GR-1221 compliant, ensuring high reliability.
PLC-2
Wide range of applications
It is very common to install an ABS box-type PLC optical splitter in a standard 19-inch rack unit. It can be installed in the cable transfer box in the FTTH process.
PLC-3
ABS PLC splitter is the most commonly used in PON network for its good protection of internal optical components and cables, simple design and reliable installation. With standalone structure, clearly fiber input and fiber out entrance, ABS PLC splitter can be used dircectly for splitting using. They’re ideal for many applications including FTTX Deployments, PON Networks, CATV Links, and Optical Signal Distribution.

12/25/2018

Fiber Optic Components Manufacturer

HYC Co.,Ltd(HYC)is a national Hi-tech optoelectronics company engaged in R&D, manufacture and marketing of fiber optical products. Providing professional product and service for fiber connectivity,WDM, PLC splitter and high density datacom cabling. HYC products and solutions widely applied in 4G/5G, Data Center and Cloud Computing industry etc.
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After 18-years experience and development, HYC become the industry-leading manufacturer of optical component, established Shenzhen R&D Center and Qingyuan production base, aim to keep our technology superiority by continuous independent innovation. We achieve customer’s trust by high quality and good service. Insisting “Technology, Quality and Service” to be our core value, through the unremitting efforts of whole staffs, HYC become the internationally competitive Telecommunication brand.
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