市場調查報告書
商品編碼
1466058
全球光收發器市場:型態、資料速率、光纖類型、距離、波長、連接器、應用分類 - 2024-2030 年預測Optical Transceiver Market by Form (Cfp, Cfp2, And Cfp4, Cxp, Qsfp, Qsfp+, Qsfp14, And Qsfp28), Data Rate (10 Gbps To 40 Gbps, 41 Gbps To 100 Gbps, Less Than 10 Gbps), Fiber Type, Distance, Wavelength, Connector, Application - Global Forecast 2024-2030 |
※ 本網頁內容可能與最新版本有所差異。詳細情況請與我們聯繫。
預計2023年全球光模組市場規模為97.7億美元,2024年達108.3億美元,預計2030年將達到206.6億美元,複合年成長率為11.28%。
在光收發器領域,光纖收發器是傳輸和接收資料的積體電路元件。這是透過將電訊號轉換為光訊號以透過光纖傳輸,然後在接收端將其轉換回電訊號來實現的。光收發器是光纖通訊網路的重要組成部分,例如資料中心網路、通訊網路和企業網路系統。由於對高速資訊服務的需求不斷成長、光纖網路基礎設施的擴展以及資料中心世界的興起,全球對光收發器的採用正在增加。然而,技術複雜性、互通性問題以及需要持續投資研發以滿足更高速度的需求可能會阻礙市場成長。也就是說,物聯網(IoT)的爆炸性普及和巨量資料分析的持續成長為光收發器在各種新市場和現有市場的應用帶來了廣闊的前景。新一代光纖標準以及全球擴大在高速乙太網路和 Wi-Fi 路由器等消費性設備中使用光收發器,為市場擴張提供了進一步的途徑。
主要市場統計 | |
---|---|
基準年[2023] | 97.7億美元 |
預測年份 [2024] | 108.3億美元 |
預測年份 [2030] | 206.6億美元 |
複合年成長率(%) | 11.28% |
光纖類型:單模光纖的使用由於其更高的頻寬容量而迅速增加。
多模光纖 (MMF) 旨在同時傳輸多個光學模式,主要使用發光二極體(LED) 或垂直共振腔面射型雷射(VCSEL) 作為光源。這些光纖具有較大的纖芯直徑,通常為 50 至 62.5微米,可讓更多的光線進入,從而使設備能夠在更短的距離內以更高的頻寬發送和接收資料。 MMF 通常用於資料中心和近場通訊應用,例如建築物和校園。與單模光纖相比,它們的纖芯尺寸較大,不易受到訊號衰減的影響,從而簡化了連接,但它們的模式色散傾向較高,從而降低了遠距傳輸的有效性。單模光纖 (SMF) 採用約 8-10微米的小芯直徑製造,僅允許單模光直接傳輸到光纖中。這種設計大大降低了模式色散的可能性,並且允許比多模光纖遠距傳輸資料。 SMF 使用雷射光束作為光源,從而產生更聚焦、更強大的投影光。這種光纖類型非常適合遠距通訊、城域網路 (MAN) 和有線電視網路。
應用:如何在資料中心使用不斷發展的光收發器世界
光收發器是資料中心的重要組成部分,可實現伺服器、交換器和儲存系統之間的高速資料傳輸。資料中心互連技術利用光收發器世界來短距離、中距離和遠距連接單獨的資料中心。這種互連可以在地理上分散的資料中心之間實現高效的資料同步、冗餘和工作負載共用,最終提高雲端和內容傳送服務的效能。資料中心內的連接依賴光收發器領域,以在各種元件之間實現高密度、高吞吐量的資料傳輸。這些收發器旨在管理設施內流量,提供對於無縫資料中心營運至關重要的低延遲、節能通訊。光收發器領域正在幫助企業更輕鬆地建置高速區域網路 (LAN) 和廣域網路 (WAN)。它描述了企業在日常業務中所需的可靠性和可擴展性,例如連接多個辦公地點以及支援協作工具和應用程式。在通訊業,光收發器用於透過光纖網路發送和接收資料。它作為支援行動網路、網路服務供應商和有線電視服務的骨幹基礎設施發揮著重要作用。廣域遠距網路依賴於能夠在遠距上保持完整性的光收發器。這些網路是通訊和國際通訊的基礎,需要支援高頻寬並最大限度減少訊號損失的收發器。地鐵網路連接城市和郊區等大都會區的使用者。這裡使用的光收發器領域傾向於關注覆蓋範圍、容量和成本效益之間的平衡,並描述了足以滿足城市和區域電訊網路典型的中等距離的性能。超遠距通訊網路專為遠距通訊(通常是跨國或跨洋)而設計。這些網路中的光收發器高度專業化,可實現最大訊號強度和完整性,具有色散補償和先進調變技術等功能,允許訊號跨越數千公里,最大限度地減少劣化。
區域洞察
由於先進的通訊基礎設施和重要的市場參與企業的存在,美洲地區正在見證全球光收發器技術的日益普及。在美國,消費者對高速資訊服務的需求正在推動高頻寬光收發器的需求。值得注意的舉措包括對 5G 網路的重大投資,這需要大量先進的光收發器。在歐盟 (EU),對高速寬頻服務不斷成長的需求以及對數位轉型的強烈關注正在支持市場成長。歐盟國家正積極推動寬頻網路的加強。光收發器領域對於此次升級至關重要,因為它加快了網路之間的資料傳輸。通訊業也存在整合趨勢,這可能會影響客戶的購買行為,並有利於與較大供應商進行更大的交易。由於政府和私人公司對技術基礎設施的投資增加,中東和非洲地區的全球光收發器市場正在成長。資源豐富的中東地區正在大力投資智慧城市計劃和IT基礎設施開發,推動了光纖網路組件的需求。在非洲,該市場仍在新興,人們對部署 4G 乃至 5G 網路的興趣日益濃厚,為全球光模組供應商提供了機會。亞太地區是一個多元化的地區,擁有廣泛的消費者需求和購買行為。中國、日本和印度等國家都有不同的市場動態。該地區國家得到政府對通訊基礎設施和當地製造能力的大量投資的支持。亞太國家因其技術進步而受到認可,對尖端光模組的需求量很大。在網路普及不斷提高和政府對數位計畫的承諾的推動下,印度正在快速成長。
FPNV定位矩陣
FPNV定位矩陣對於評估全球光模組市場至關重要。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。最前線 (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,可以對全球光收發器市場供應商的現狀進行深入而深入的研究。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細分市場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:包括新產品發布、開拓地區、最新發展和投資的詳細資訊。
4.競爭評估與資訊: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、製造能力等進行全面評估。
5. 產品開發與創新:包括對未來技術、研發活動和突破性產品開發的智力見解。
1.全球光模組市場規模及預測如何?
2.全球光模組市場預測期間我們應該考慮投資哪些產品與應用?
3.全球光模組市場的技術趨勢和法規結構是什麼?
4.全球光模組市場主要廠商的市場佔有率為何?
5.進入全球光模組市場的合適型態或策略手段是什麼?
[182 Pages Report] The Optical Transceiver Market size was estimated at USD 9.77 billion in 2023 and expected to reach USD 10.83 billion in 2024, at a CAGR 11.28% to reach USD 20.66 billion by 2030.
An optical transceiver, fiber optic transceiver, is an integrated circuit device that transmits and receives data. This is accomplished by converting electrical signals into optic signals for transmission over optical fiber and then back into electrical signals on the receiving end. Optical transceivers are essential components in optical fiber communication networks, which include data center networking, telecommunication networks, and enterprise networking systems. The increasing demand for high-speed data services, expansion of fiber-optic network infrastructure, and the rise of data centers globally increase the adoption of optical transceivers. However, technological complexities, interoperability issues, and the need for continual investments in R&D to keep pace with the high-speed requirements may impede market growth. Nevertheless, the explosion of the Internet of Things (IoT) and the continued growth of big data analytics also present significant prospects for applying optical transceivers in various new and existing markets. Next-generation fiber optic standards and the increasing use of optical transceivers in consumer devices such as high-speed Ethernet and Wi-Fi routers represent additional avenues for market expansion.
KEY MARKET STATISTICS | |
---|---|
Base Year [2023] | USD 9.77 billion |
Estimated Year [2024] | USD 10.83 billion |
Forecast Year [2030] | USD 20.66 billion |
CAGR (%) | 11.28% |
Fiber Type: Burgeoning usage of single-mode fiber due to its higher bandwidth capacity
Multimode Fiber (MMF) primarily uses light-emitting diodes (LEDs) or vertical-cavity surface-emitting lasers (VCSELs) as light sources and is designed to carry multiple light modes simultaneously. These fibers have a larger core diameter, typically ranging from 50 to 62.5 micrometers, enabling them to capture more light and allowing devices to send and receive data at higher bandwidths over shorter distances. MMF is commonly used within data centers or for short-range communication applications, such as within buildings or on campuses. Due to its larger core size, it is less susceptible to signal attenuation compared to Single-mode Fiber, which can simplify connectivity, but this is offset by a higher propensity for modal dispersion, reducing its effectiveness over long distances. Single-mode Fiber (SMF) is manufactured with a small core diameter of approximately 8 to 10 micrometers, which allows it to carry only a single mode of light directly down the fiber. This design significantly reduces the chances of modal dispersion and allows the fiber to transmit data over much greater distances than Multimode Fiber. SMF uses laser light as a source, which provides a more focused and intense light projection. This fiber type is ideal for long-haul communications, metropolitan area networks (MANs), and cable television networks.
Application: Evolving usage of optical transceiver in data centers
Optical transceivers are integral components in data centers, enabling high-speed data transmission between servers, switches, and storage systems. Data Center Interconnect technology uses optical transceivers to connect separate data centers over short, medium, or long distances. This interconnection allows for efficient data synchronization, redundancy, and workload sharing between geographically distributed data centers, ultimately enhancing the performance of cloud and content delivery services. Within a data center, intra-data center connections rely on optical transceivers for the high-density, high-throughput transfer of data between various components. These transceivers are designed to manage intra-facility traffic, ensuring low-latency and energy-efficient communication essential for the seamless operation of the data center. Optical transceivers serve enterprises by facilitating the establishment of high-speed local area networks (LANs) and wide area networks (WANs). They deliver the reliability and scalability businesses need for daily operations, including connecting multiple office locations and supporting collaborative tools and applications. In the telecommunication industry, optical transceivers are used for transmitting and receiving data across optical fiber networks. They play a vital role in the backbone infrastructure that supports mobile networks, internet service providers, and cable television services. Long-haul networks, which span extensive geographical areas, depend on optical transceivers capable of maintaining signal integrity over great distances. These networks are the foundation of intercity and international communications, demanding transceivers that can handle high-bandwidth and suffer minimal signal loss. Metro networks connect users within a metropolitan area, such as a city or suburb. Optical transceivers used here tend to focus on balancing reach, capacity, and cost-effectiveness, providing adequate performance for moderate distances typical of urban and regional telecom networks. Ultra-long-haul networks are designed for the longest-distance telecommunications, often cross-country or transoceanic. Optical transceivers in these networks are highly specialized for maximum signal strength and integrity, equipped with features such as dispersion compensation and advanced modulation techniques to minimize signal degradation over thousands of kilometers.
Regional Insights
In the American region, the adoption of optical transceiver technologies is increasing due to its advanced telecommunications infrastructure and the presence of significant market players. In the U.S., consumer needs are geared towards high-speed data services, driving the demand for optical transceivers with higher bandwidth capabilities. Noteworthy initiatives include significant investments in 5G networks requiring advanced optical transceivers. In the European Union, market growth is supported by rising need for high-speed broadband services and the region's strong focus on digital transformation. EU countries have been actively pushing for enhancements in their broadband networks. Optical transceivers are integral to this upgrade as they facilitate faster data transmission across networks. There is also a trend toward consolidation in the telecommunications industry, which may affect customer purchasing behavior, favoring more significant deals with major suppliers. The MEA region is experiencing growth in the optical transceiver market due to increasing investment in technology infrastructure by governments and private entities. With its wealth of resources, the Middle East is investing heavily in smart city projects and developing its IT infrastructure, increasing the demand for optical network components. In Africa, while the market is still emerging, there's a growing interest in deploying 4G and, eventually, 5G networks, offering opportunities for optical transceiver suppliers. Asia Pacific is a notably diverse region with a broad spectrum of consumer needs and purchasing behaviors. Countries such as China, Japan, and India have different market dynamics. Countries in the area are bolstered by significant government investment in telecommunications infrastructure and local manufacturing capabilities. Countries in the APAC are recognized for their technological advancements and have a high demand for cutting-edge optical transceivers. India is rapidly growing, fueled by rising internet penetration and a government commitment to digital initiatives.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Optical Transceiver 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 Transceiver 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 Transceiver Market, highlighting leading vendors and their innovative profiles. These include ABB Ltd., Accelink Technology Co. Ltd., Applied Optoelectronics, Inc., Broadcom Inc., Ciena Corporation, Cisco Systems, Inc., EFFECT Photonics, Extreme Networks, Fujitsu Limited, Hewlett-Packard Company, Hisense Broadband, Inc., Huawei Technologies Co., Ltd., II-VI Incorporated, InnoLight Technology Corporation, Intel Corporation, Lumentum Operations LLC, NEC Corporation, NeoPhotonics Corporation, Nvidia Corporation, Perle Systems Limited, Smartoptics Group AS, Smiths Interconnect, Inc., Solid Optics LLC, Source Photonics, Inc., and Sumitomo Electric Industries, 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 Transceiver Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Optical Transceiver Market?
3. What are the technology trends and regulatory frameworks in the Optical Transceiver Market?
4. What is the market share of the leading vendors in the Optical Transceiver Market?
5. Which modes and strategic moves are suitable for entering the Optical Transceiver Market?
TABLE 351.