市場調查報告書
商品編碼
1471116
光波導市場:按類型、屈光、材料、模式結構、互連程度、應用分類 - 2024-2030 年全球預測Optical Waveguide Market by Type (Nonplanar, Planar), Refractive Index (Graded Index, Step Index), Material, Mode Structure, Interconnection Level, Application - Global Forecast 2024-2030 |
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預計2023年光波導市場規模為72.3億美元,預計2024年將達77.8億美元,2030年將達到122.4億美元,複合年成長率為7.80%。
光波導是在整個頻譜中引導電磁波的空間不均勻結構。與周圍介質相比,光波導包含一個高屈光區域,稱為包層。光波導被部署為整合光路的組件以及本地和遠距光纖通訊系統中的傳輸介質。資料中心的激增和高效能電腦的廣泛使用,以及隨著智慧家庭和智慧城市計劃的興起而擴大光纖到戶的範圍,正在加速光波導的使用。與光波導解決方案相關的設計和製造問題正在阻礙市場成長。光波導設計需要物理和工程方面的專家,因為它必須滿足獨特的要求,並且主要取決於特定的波導管傳輸通訊協定。此外,奈米材料光波導的進步使得高密度緊湊光電和波導管3D 列印的整合成為可能。
主要市場統計 | |
---|---|
基準年[2023] | 72.3億美元 |
預測年份 [2024] | 77.8億美元 |
預測年份 [2030] | 122.4億美元 |
複合年成長率(%) | 7.80% |
增加平面型光波導與光路的整合度
非平面光波導由2D橫向光學限制組成,其芯在所有橫向方向上都被包層包圍。非平面通道波導管(具有雙向波導管)的波導管結構為有限寬度的條紋。平面波導管或平板波導管是一種僅在一維引導光的平面形狀的波導管。平面波導管芯夾在單向包層之間,主要用於高功率波導管雷射和放大器。
屈光:遠距高速通訊系統對斜射率的需求不斷增加
斜射率光纖的屈光從中心向外逐漸減小,透過全內反射引導光並最大限度地減少損耗和色散,從而實現高效的遠距和高速通訊。它可以實現高達10Tbps的頻寬,適合遠距網路。階變折射率光纖在纖芯-包層邊界處屈光發生急遽變化。纖芯-包層界面處的全內反射用於引導光穿過纖芯。階變折射率光纖便宜且耐用,但具有高模色散和約 100 Gbps 的低頻寬。適用於彈性和成本優先的中短距離連線。斜射率光纖為遠距、高速鏈路提供卓越的性能,而階變折射率光纖則為短距離連接提供成本和耐用性。領先製造商的持續創新正在推動光纖網路的發展,以滿足不斷成長的頻寬需求和接入要求。
傾斜光波導到玻璃擴展材料,用於電信網路中的光路由和光分支
電光波導管是透過外部電壓改變芯層的屈光來設計的。電光波導管所使用的材料包括鈮酸鋰(LiNbO3)、鉭酸鋰(LiTaO3)、鈦酸鋇(BaTiO3)和電光聚合物。玻璃光纖具有高資訊傳輸能力和低損耗,非常適合腐蝕和極端溫度環境。聚合物光波導由於其靈活的互連能力和經濟高效的整合能力,對於汽車光互連網路中光子裝置和晶片的混合整合來說是有吸引力的傳輸介質。半導體光波導對於現代整合光電系統非常重要,特別是對於電有源元件。應用範例包括半導體雷射、光學濾波器、開關、調變、隔離器和檢測器。矽波導管由 Si 芯和 SiO2 包層製成,具有較低的傳輸損耗和良好的光學限制,用於在晶片上傳輸光訊號。
模式結構:單模波導管擴大用於需要長距離的網路中。
多模波導管具有較大的纖芯直徑,並且可以通過多種模式的光。它們可以傳輸更多的光功率,但會受到模式色散的影響,導致訊號失真。多模波導管製造成本更低,更堅固,適合短距離傳輸。單模波導管的芯直徑較小,僅允許一種模式的光傳播。實現遠距高頻寬和低訊號損失。然而,它需要精密製造並且價格昂貴。單模波導管適用於遠距、城域和 FTTx 網路。
互連級:擴大採用基於機架級互連的光波導來實現高速連接。
基板對基板光學互連級是指使用光波導連接系統中的多個印刷電路基板(PCB)。由於需要高頻寬、減少遠距訊號損失以及抗電磁干擾,光學互連比銅線更適合用於基板對板連接。晶片到晶片的光互連涉及用光波導連接同一PCB或封裝上的積體電路(晶片)。對更高頻寬、密度和能源效率的需求正在推動光學晶片間互連的採用。遠距互連可連接幾公尺到幾公里的遠距系統。遠距互連通常用於連接資料中心、網路節點和通訊基礎設施。機架到機架互連包括資料中心內機架、機櫃和機櫃之間的光纖連接。機架級互連可在機架內以及多個機架之間的伺服器和網路設備之間實現高頻寬連結。
應用 光波導由於其不易受影響的特性而擴大應用於通訊。
光波導對於導引飛彈、雷射追蹤系統和人造衛星等航太和國防應用至關重要。光波導需要遠距高精度和可靠的連接,這使其成為飛機和武器導航、瞄準和雷射監測系統的理想選擇。在消費性電子領域,光波導用於穿戴式裝置、AR/ VR頭戴裝置、智慧家庭設備等應用。光波導能夠以緊湊的外形實現高速資料傳輸。光波導用於資料中心和高效能運算中短距離和遠距的低功耗、高頻寬資料傳輸。石油和天然氣、採礦和製造等行業在各種監控、測量和自動化設備中使用光波導。用於雷射測距儀、干涉儀、陀螺儀、雷射水平儀等精密測量及對準設備。在醫療領域,光波導被用於各種設備中進行非侵入性診斷和治療。內視鏡利用光纖束來照明和可視化內部解剖結構。在計量學中,光波導是用於精密測量的干涉儀的重要組成部分。在通訊業,光波導構成了遠距傳輸訊息的通訊系統的骨幹。稱為光纖的玻璃或塑膠細絲用於傳輸代表數位資料的雷射或光脈衝。光纖通訊系統不僅用於遠距通訊,也用於建築物內的區域網路。
區域洞察
國際企業正在對光纖生產進行策略性收購和擴張,以實施下一代通訊。支援網際網路的設備的增加正在推動對高速資料的需求,從而產生了能夠在美洲高速傳輸大量資料的光波導。此外,美國政府正在支持提供高速網路基礎設施以推動光波導市場的計畫。歐盟新的電訊法律規範鼓勵對光纖網路的投資,以提高歐盟國家的寬頻普及。歐洲公司已簽署協議以加速整個歐洲的光纖部署。歐洲新資料中心的部署不斷增加,推動了光波導市場的成長。由於通訊資本的增加,亞太地區預計將顯著成長。該地區是多家光電新興企業的所在地,支持光波導市場的成長。資料中心擴大採用高速雲端運算,這可能會增加該地區對光波導的需求。中國有一些主要的光纖公司專注於光電子和光纖通訊的研究和開發。
FPNV定位矩陣
FPNV定位矩陣對於評估光波導市場至關重要。我們檢視與業務策略和產品滿意度相關的關鍵指標,以對供應商進行全面評估。這種深入的分析使用戶能夠根據自己的要求做出明智的決策。根據評估,供應商被分為四個成功程度不同的像限:前沿(F)、探路者(P)、利基(N)和重要(V)。
市場佔有率分析
市場佔有率分析是一種綜合工具,可以對光波導市場供應商的現狀進行深入而詳細的研究。全面比較和分析供應商在整體收益、基本客群和其他關鍵指標方面的貢獻,以便更好地了解公司的績效及其在爭奪市場佔有率時面臨的挑戰。此外,該分析還提供了對該行業競爭特徵的寶貴見解,包括在研究基準年觀察到的累積、分散主導地位和合併特徵等因素。詳細程度的提高使供應商能夠做出更明智的決策並制定有效的策略,從而在市場上獲得競爭優勢。
1. 市場滲透率:提供有關主要企業所服務的市場的全面資訊。
2. 市場開拓:我們深入研究利潤豐厚的新興市場,並分析其在成熟細分市場的滲透率。
3. 市場多元化:提供有關新產品發布、開拓地區、最新發展和投資的詳細資訊。
4.競爭評估及資訊:對主要企業的市場佔有率、策略、產品、認證、監管狀況、專利狀況、製造能力等進行綜合評估。
5. 產品開發與創新:提供對未來技術、研發活動和突破性產品開發的見解。
1.光波導市場規模及預測如何?
2.光波導市場預測期間需要考慮投資的產品、細分市場、應用和領域有哪些?
3.光波導市場的技術趨勢和法規結構是什麼?
4.光波導市場主要廠商的市場佔有率是多少?
5.進入光波導市場的合適型態和策略手段是什麼?
(PRNewsfoto/Vuzix 公司)
[184 Pages Report] The Optical Waveguide Market size was estimated at USD 7.23 billion in 2023 and expected to reach USD 7.78 billion in 2024, at a CAGR 7.80% to reach USD 12.24 billion by 2030.
The optical waveguide is a spatially inhomogeneous structure that guides electromagnetic waves across the optical spectrum. Optical waveguides contain a region of the increased refractive index, known as cladding, compared with the surrounding medium. Optical waveguides are deployed as components in integrated optical circuits and also as the transmission medium in local and long-haul optical communication systems. The surge in the number of data centers & prominent use of high-performance computers, and fiber expansion to the home with the rise of smart home & smart city projects is accelerating the use of optical waveguides. Design and fabrication issues associated with optical waveguide solutions hamper the market growth. The designing of optical waveguides requires skilled personnel in physics and engineering as they need to meet unique requirements and mainly rely on a specific set of waveguide transmission protocols. Moreover, the advancement of nanomaterial optical waveguides enables the integration of high-density compact photonics and 3-D printing of waveguides.
KEY MARKET STATISTICS | |
---|---|
Base Year [2023] | USD 7.23 billion |
Estimated Year [2024] | USD 7.78 billion |
Forecast Year [2030] | USD 12.24 billion |
CAGR (%) | 7.80% |
Type: Increasing integration of planar optical waveguides into optical circuits
A nonplanar optical waveguide comprises two-dimensional transverse optical confinement; the core is surrounded by cladding in all transverse directions. A nonplanar channel waveguide (with guidance in both directions) has a guiding structure as a stripe with a finite width. Planar waveguides, or slab waveguides, are waveguides with planar geometry, which guide light only in one dimension. The core in planar optical waveguide is sandwiched between cladding layers in only one direction and is primarily used for high-power waveguide lasers and amplifiers.
Refractive Index: Growing demand for graded Index optical waveguides for long-distance and high-speed communication systems
Graded index optical fibers have a refractive index that decreases from the center outwards, allowing for efficient long-distance, high-speed communication by guiding light via total internal reflection with minimal loss and dispersion. They can achieve bandwidths up to 10 Tbps and are preferred for long-haul networks. Step index optical fibers have an abrupt refractive index change at the boundary between the core and cladding. They guide light through the core using total internal reflection at the core-cladding interface. Step index fibers are cheaper and more durable but have higher modal dispersion and lower bandwidth, around 100 Gbps. They are suitable for short to medium-range connections where flexibility and cost are priorities. Graded index fibers excel in performance for long-distance high-speed links, and step-index fibers have advantages in cost and durability for shorter connections. Continuous innovation by major manufacturers ensures optical networks progress to meet increasing bandwidth demands and access requirements.
Material: Expanding inclination toward glass optical waveguides for optical routing and splitting in telecom networks
Electro-optic waveguides are designed based on changing the refractive index of the core layer with an external voltage. Materials used for electro-optic waveguides can be lithium niobate (LiNbO3), lithium tantalate (LiTaO3), barium titanate (BaTiO3), and electro-optic polymers. Glass optical fibers have higher information transmission capacity with lower loss and are ideal in corrosive environments or extreme temperatures. Polymer optical waveguides are attractive transmission mediums for hybrid integrating photonic devices or chips in on-board optical interconnection networks, owing to their flexible wiring capability and cost-effective integration ability. Semiconductor optical waveguides are important to modern integrated optoelectronic systems, especially for electrically active devices. Applications include semiconductor lasers, optical filters, switches, modulators, isolators, and photodetectors. Silicon waveguides are fabricated using Si core and SiO2 cladding with low transmission loss and good light confinement and are used to carry the optical signals across the chip.
Mode Structure: Rising usage of single-mode waveguides for networks requiring long-reach
Multi-mode waveguides have a larger core diameter, allowing multiple modes of light to travel through them. They carry more optical power but suffer from modal dispersion, which causes signal distortion. Multi-mode waveguides are cheaper to produce and more robust, suitable for shorter transmission distances. Single-mode waveguides have a small core diameter that only allows one mode of light to propagate. They produce high bandwidth and low signal loss over long distances. However, they require precise manufacturing and are more expensive. Single-mode waveguides are preferred for long-haul, metropolitan, and FTTx networks.
Interconnection Level: Emerging adoption of rack-level interconnection-based optical waveguides that enable high-speed connectivity
Board-to-board optical interconnection level refers to connecting multiple printed circuit boards (PCBs) within a system using optical waveguides. The need for high bandwidth, reduced signal loss over longer distances, and immunity to electromagnetic interference makes optical interconnects preferable over copper traces for board-to-board connections. Chip-to-chip optical interconnection includes connecting integrated circuits (chips) on the same PCB or package using optical waveguides. The demand for higher bandwidth, density, and energy efficiency is driving the adoption of optical chip-to-chip interconnects. Long-haul interconnection connects systems across longer distances, from meters to kilometers apart. Long-haul interconnects are typically used to link data centers, network nodes, and telecommunication infrastructures. Rack-to-rack interconnection includes optical connections between racks, cabinets, and enclosures in a data center. Rack-level interconnections allow high-bandwidth links between servers and networking equipment in a rack and between multiple racks.
Application: Rising application of optical waveguides in telecommunication due to their less susceptible nature
Optical waveguides are critical for applications including guided munitions, laser tracking systems, and satellites in the aerospace & defense sector. The demand for precision and reliable connectivity over long distances makes optical waveguides ideal for navigation systems, targeting equipment, and laser monitoring systems in aircraft and weaponry. The consumer electronics segment uses optical waveguides for applications, including wearable devices, AR/VR headsets, and smart home devices. Optical waveguides enable high-speed data transmission in compact form factors. Optical waveguides are used in data centers & high-performance computing for low-power, high-bandwidth data transfer over short and long distances. Various monitoring, measurement, and automation equipment in industries including oil & gas, mining, and manufacturing utilize optical waveguides. They are used in devices such as laser rangefinders, interferometers, gyroscopes, and laser levels for precision measurement and alignment. In the medical field, optical waveguides are used in various instruments for non-invasive diagnosis and treatment. Endoscopes utilize bundles of optical fibers to illuminate and provide visualization of the internal anatomy. In metrology, optical waveguides are integral components of interferometers used to make precise measurements. In the telecommunications industry, optical waveguides form the backbone of communication systems that transmit information over long distances. Thin filaments of glass or plastic, called optical fibers, are used to transmit laser or light pulses that represent digital data. Optical communication systems are used for both long-distance telecommunications as well as local area networks within buildings.
Regional Insights
International players are making strategic acquisitions & expansions for optical fiber production to implement next-gen communications. Increase in internet-enabled devices has promoted the demand for high-speed data which is in turn shaping the optical waveguides that enable the high-speed transfer of a large amount of data in Americas. Moreover, the American government supports plans to provide high speed internet infrastructure which boost the optical waveguide market. The EU's new telecom regulatory framework promotes fiber network investment to improve the broadband coverage of all EU countries. European companies are signing agreements to accelerate fiber optic rollout across Europe. The increasing deployment of newer data centers in Europe fuels the optical waveguide market growth. Asia-Pacific is expected to witness significant growth because of the rise in the telecommunication capital in the region. The presence of several photonics start-up players in the region is supporting the optical waveguide market growth. Data centers' increasing adoption of high-speed cloud computing will likely boost demand for optical waveguides in the region. China has the major fiber-optic companies focussing on research and development in optoelectronics and optical fiber communications.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Optical Waveguide Market. It offers a comprehensive assessment of vendors, examining key metrics related to Business Strategy and Product Satisfaction. This in-depth analysis empowers users to make well-informed decisions aligned with their requirements. Based on the evaluation, the vendors are then categorized into four distinct quadrants representing varying levels of success: Forefront (F), Pathfinder (P), Niche (N), or Vital (V).
Market Share Analysis
The Market Share Analysis is a comprehensive tool that provides an insightful and in-depth examination of the current state of vendors in the Optical Waveguide Market. By meticulously comparing and analyzing vendor contributions in terms of overall revenue, customer base, and other key metrics, we can offer companies a greater understanding of their performance and the challenges they face when competing for market share. Additionally, this analysis provides valuable insights into the competitive nature of the sector, including factors such as accumulation, fragmentation dominance, and amalgamation traits observed over the base year period studied. With this expanded level of detail, vendors can make more informed decisions and devise effective strategies to gain a competitive edge in the market.
Key Company Profiles
The report delves into recent significant developments in the Optical Waveguide Market, highlighting leading vendors and their innovative profiles. These include Aksh OptiFibre Ltd., ALLIED WIRE AND CABLE INC., Belden Inc., Birla Cable Ltd., BJG Electronics Inc., Coherent Corp., CommScope, Inc., Comstar Supply, Corning Incorporated, Digi-Key Electronics Germany GmbH, DigiLens Inc., Fiber Instruments Sales Inc., Fiber Optics For Sale Co., Fiberinthebox, Fujikura Ltd., Furukawa Electric Co., Ltd., Futong Group Company Ltd., GAO Tek, Inc., Himachal Futuristic Communications Ltd., Holographix LLC, IBS Electronics Inc., Impulse Technologies, Infinite Cables Inc., Lumus Ltd., M2Optics, Inc., Mitsubishi Chemical Group Corporation, Mouser Electronics Inc., Multicom, Inc., NEC Corporation, Nedco, OFS Fitel, LLC, Optical Cable Corporation, Prysmian S.p.A., SAB Brockskes GmbH & Co. KG, Shanghai Tangpin Technology Co., Ltd., Shenzhen Sopto Technology Co., Ltd., Sterlite Technologies Limited, Structured Cable Products Inc., Sumitomo Electric Industries, Ltd., SUSS MicroOptics SA, Teem Photonics, Texcan, a Sonepar Company, The Light Connection, Inc., TVC Canada, a division of Wesco International, Wave Optics Ltd., Waveguide Optical Technologies, Yangtze Optical Fibre and Cable Joint Stock Limited Company, and ZTT International Ltd..
Market Segmentation & Coverage
1. Market Penetration: It presents comprehensive information on the market provided by key players.
2. Market Development: It delves deep into lucrative emerging markets and analyzes the penetration across mature market segments.
3. Market Diversification: It provides detailed information on new product launches, untapped geographic regions, recent developments, and investments.
4. Competitive Assessment & Intelligence: It conducts an exhaustive assessment of market shares, strategies, products, certifications, regulatory approvals, patent landscape, and manufacturing capabilities of the leading players.
5. Product Development & Innovation: It offers intelligent insights on future technologies, R&D activities, and breakthrough product developments.
1. What is the market size and forecast of the Optical Waveguide Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Optical Waveguide Market?
3. What are the technology trends and regulatory frameworks in the Optical Waveguide Market?
4. What is the market share of the leading vendors in the Optical Waveguide Market?
5. Which modes and strategic moves are suitable for entering the Optical Waveguide Market?
(PRNewsfoto/Vuzix Corporation)