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Gallium Arsenide (GaAS) Solar Cells
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¹Ì±¹ ½ÃÀåÀº ÃßÁ¤ 47¾ï ´Þ·¯, Áß±¹Àº CAGR 10.0%·Î ¼ºÀå ¿¹Ãø

¹Ì±¹ÀÇ °¥·ýºñ¼Ò(GaAS) žçÀüÁö ½ÃÀåÀº 2024³â¿¡ 47¾ï ´Þ·¯·Î ÃßÁ¤µË´Ï´Ù. ¼¼°è 2À§ °æÁ¦ ´ë±¹ÀÎ Áß±¹Àº 2030³â±îÁö 51¾ï ´Þ·¯ÀÇ ½ÃÀå ±Ô¸ð¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµÇ¸ç, ºÐ¼® ±â°£ÀÎ 2024-2030³â CAGRÀº 10.0%¸¦ ±â·ÏÇÒ °ÍÀ¸·Î ¿¹»óµË´Ï´Ù. ±âŸ ÁÖ¸ñÇÒ ¸¸ÇÑ Áö¿ªº° ½ÃÀåÀ¸·Î´Â ÀϺ»°ú ij³ª´Ù°¡ ÀÖ°í, ºÐ¼® ±â°£ µ¿¾È CAGRÀº °¢°¢ 3.3%¿Í 6.3%·Î ¿¹ÃøµË´Ï´Ù. À¯·´¿¡¼­´Â µ¶ÀÏÀÌ CAGR 4.3%·Î ¼ºÀåÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù.

¼¼°èÀÇ °¥·ýºñ¼Ò(GaAS) žçÀüÁö ½ÃÀå - ÁÖ¿ä µ¿Çâ°ú ÃËÁø¿äÀÎ Á¤¸®

GaAs žçÀüÁö°¡ °íÈ¿À² ÀÀ¿ë ºÐ¾ß¿¡¼­ ÁÖ¸ñ¹Þ´Â ÀÌÀ¯´Â ¹«¾ùÀΰ¡?

°¥·ýºñ¼Ò(GaAS) žçÀüÁö´Â °íÈ¿À², ¿ì¼öÇÑ ¿­ ¾ÈÁ¤¼º, ÀúÁ¶µµ ¹× °íÁ¶µµ¿¡¼­ ¿ì¼öÇÑ ¼º´ÉÀ¸·Î À¯¸íÇÕ´Ï´Ù. ±âÁ¸ ½Ç¸®ÄÜ ±â¹Ý ¼¿°ú ´Þ¸® GaAs ¼¿Àº ÈξÀ ³ôÀº ¿¡³ÊÁö ÀüȯÀ²À» Á¦°øÇϸç, Å©±â, ¹«°Ô, ³»±¸¼ºÀÌ Áß¿äÇÑ ¿ìÁÖ ±âÁö ¹× Ư¼ö Áö»ó ÀÀ¿ë ºÐ¾ß¿¡ ÀûÇÕÇÕ´Ï´Ù. °í¿Â ¹× È®»ê±¤ Á¶°Ç¿¡¼­µµ È¿À²ÀûÀ¸·Î ÀÛµ¿ÇÏ´Â ´É·ÂÀº Ç×°ø¿ìÁÖ, ±º»ç, ÈÞ´ë¿ë Àü¿ø, Áý±¤Çü ž籤¹ßÀü(CPV) ½Ã½ºÅÛ¿¡ ÀÌ»óÀûÀÔ´Ï´Ù.

ž籤 ¿¡³ÊÁö ¼ö¿ä°¡ ±¹¹æ, Ç×°ø, À§¼º Àü¿ø ½Ã½ºÅÛ µîÀ¸·Î ´Ù¾çÈ­µÇ¸é¼­ ¾ÈÁ¤ÀûÀÎ ¿¡³ÊÁö Ãâ·ÂÀÌ ÇʼöÀûÀÎ ¹Ì¼Ç¿¡ GaAs ÀüÁö°¡ äÅõǰí ÀÖ½À´Ï´Ù. ¶ÇÇÑ, °íÀ¯ÇÑ ³»¹æ»ç¼±¼º°ú ±ä ÀÛµ¿ ¼ö¸íÀ¸·Î ÀΰøÀ§¼º, ¹«ÀÎÇ×°ø±â ½Ã½ºÅÛ, ¿ø°Ý Åë½Åž µî¿¡ äÅõǰí ÀÖ½À´Ï´Ù. °í°íµµ µå·Ð ¹× ž籤 ¿þ¾î·¯ºí°ú °°Àº »õ·Î¿î Áö»ó ÀÀ¿ë ºÐ¾ß¿¡¼­ GaAs´Â ½Ç¸®ÄÜÀ» ´ëüÇÒ ¼ö ÀÖ´Â ÀÛ°í °¡º­¿î ´ë¾ÈÀÌ µÉ ¼ö ÀÖ½À´Ï´Ù.

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¿¡ÇÇÅÃ¼È ¸®ÇÁÆ® ¿ÀÇÁ(ELO) ¹æ½ÄÀÇ Ãß°¡ Çõ½ÅÀº ±âÆÇÀÇ Àç»ç¿ëÀ» °¡´ÉÇÏ°Ô ÇÏ¿© Á¦Á¶ ºñ¿ë°ú Àç·á Æó±â¹°À» ÁÙÀÌ´Â µ¥ ±â¿©Çϰí ÀÖ½À´Ï´Ù. GaAsÀÇ ´ë±Ô¸ð »ó¿ëÈ­¸¦ À§ÇÑ ³ë·Â¿¡´Â È¿À²¼º°ú °æÁ¦¼ºÀÇ ±ÕÇüÀ» ¸ÂÃß±â À§ÇØ GaAs¿Í Àúºñ¿ë ž籤¹ßÀü Àç·á¸¦ °áÇÕÇÑ ÇÏÀ̺긮µå Á¢±Ù¹ýµµ Æ÷ÇԵ˴ϴÙ. ³ôÀº Àç·áºñ¿Í °¡°øºñ°¡ ¼ÒºñÀÚ ½ÃÀåÀ¸·ÎÀÇ º¸±ÞÀ» °¡·Î¸·´Â À庮À¸·Î ÀÛ¿ëÇϰí ÀÖÁö¸¸, »ý»ê ÀÚµ¿È­ ¹× ÷´Ü Á¦Á¶ ¹æ¹ýÀÇ °³¹ß·Î °¡¼ººñ°¡ Á¡Â÷ °³¼±µÇ°í ÀÖ½À´Ï´Ù.

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GaAs žçÀüÁö´Â ºñ¿ëÀÌ ¼º´É ¿ä±¸º¸´Ù ³ôÀº ¿ìÁÖ ¹× ¹æÀ§ ºÐ¾ß¿¡¼­ È®°íÇÑ ÀÔÁö¸¦ ±¸ÃàÇϰí ÀÖ½À´Ï´Ù. ÀΰøÀ§¼º, ¿ìÁÖ Å½»ç¼±, Ž»ç ·Î¹ö´Â GaAsÀÇ ¿ìÁÖ ¹æ»ç¼±°ú ±ØÇÑÀÇ ¿Âµµ¿¡ ´ëÇÑ ³»¼ºÀÇ ÇýÅÃÀ» ´©¸®°í ÀÖ½À´Ï´Ù. ±º»ç Ȱµ¿¿¡¼­ °ß°íÇÑ GaAs ¸ðµâÀº ÈÞ´ë¿ë ÀüÀå ½Ã½ºÅÛ, ž翭 ¹éÆÑ, À̵¿ Åë½Å ÀåÄ¡¿¡ »ç¿ëµË´Ï´Ù. »õ·Î¿î »ç¿ë »ç·Ê·Î´Â °í°íµµ ÀÇ»ç À§¼º(HAPS), ¼ºÃþ±Ç UAV, ÇÏÀ̺긮µå Àü±â Ç×°ø±â µîÀÌ ÀÖÀ¸¸ç, °æ·®È­µÈ ¿¡³ÊÁö »ý¼º ½Ã½ºÅÛÀÌ Áß¿äÇÕ´Ï´Ù.

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Global Gallium Arsenide (GaAS) Solar Cells Market to Reach US$25.2 Billion by 2030

The global market for Gallium Arsenide (GaAS) Solar Cells estimated at US$17.2 Billion in the year 2024, is expected to reach US$25.2 Billion by 2030, growing at a CAGR of 6.5% over the analysis period 2024-2030. Single-Junction GaAs Solar Cells, one of the segments analyzed in the report, is expected to record a 5.1% CAGR and reach US$14.5 Billion by the end of the analysis period. Growth in the Multi-Junction GaAs Solar Cells segment is estimated at 8.7% CAGR over the analysis period.

The U.S. Market is Estimated at US$4.7 Billion While China is Forecast to Grow at 10.0% CAGR

The Gallium Arsenide (GaAS) Solar Cells market in the U.S. is estimated at US$4.7 Billion in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$5.1 Billion by the year 2030 trailing a CAGR of 10.0% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 3.3% and 6.3% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 4.3% CAGR.

Global Gallium Arsenide (GaAs) Solar Cells Market - Key Trends & Drivers Summarized

Why Are GaAs Solar Cells Gaining Interest in High-Efficiency Applications?

Gallium arsenide (GaAs) solar cells are known for their high efficiency, superior thermal stability, and excellent performance under low and high irradiance. Unlike traditional silicon-based cells, GaAs cells offer much higher energy conversion rates, making them suitable for space-based and specialty terrestrial applications where size, weight, and durability are critical. Their ability to function efficiently even under high temperatures or diffused light conditions makes them ideal for aerospace, military, portable power, and concentrator photovoltaic (CPV) systems.

As solar energy demand diversifies into defense, aviation, and satellite power systems, GaAs cells are being adopted for missions where consistent energy output is vital. Their inherent radiation resistance and long operational lifespan also make them the preferred choice for satellites, unmanned aerial systems, and remote communication towers. In emerging terrestrial applications, such as high-altitude drones or solar-powered wearables, GaAs offers a compact and lightweight alternative to silicon.

What Technological Advances Are Driving Efficiency and Scalability?

Multijunction GaAs solar cells-typically constructed in tandem with indium gallium phosphide (InGaP) and germanium layers-are achieving conversion efficiencies exceeding 30% under standard sunlight and even higher under concentrated light. Recent advances include thin-film deposition techniques, flexible substrate integration, and wafer bonding processes, which have helped reduce weight and increase structural flexibility without sacrificing performance. These improvements are allowing GaAs solar cells to be fabricated on lightweight carriers like polyimide or metal foils, enabling conformal integration onto drones, satellites, and curved surfaces.

Further innovations in epitaxial lift-off (ELO) methods are enabling substrate reuse, helping reduce production costs and material waste. Efforts to commercialize GaAs at larger scales also involve hybrid approaches combining GaAs with lower-cost photovoltaic materials to balance efficiency and affordability. While high material and processing costs remain a barrier to widespread consumer market penetration, developments in production automation and advanced fabrication methods are gradually improving cost-performance ratios.

How Are End-Use Applications and Sector Demands Influencing Market Adoption?

GaAs solar cells are strongly established in space and defense sectors, where cost is outweighed by performance needs. Satellites, space probes, and exploratory rovers benefit from GaAs’s resistance to cosmic radiation and temperature extremes. In military operations, ruggedized GaAs modules are used in portable battlefield systems, solar backpacks, and mobile communications units. Emerging use cases include high-altitude pseudo-satellites (HAPS), stratospheric UAVs, and hybrid electric aircraft, where lightweight energy generation systems are critical.

In the commercial sector, GaAs cells are finding niche adoption in concentrated PV installations and high-performance off-grid systems. Wearable devices, such as solar-powered smartwatches or IoT sensors, also use thin-film GaAs modules due to their compact size and energy density. With growing demand for renewable energy solutions in extreme environments and transport systems, GaAs solar cells are poised for broader adoption in specialized, high-value applications.

Growth in the GaAs Solar Cells Market Is Driven by Several Factors…

Growth in the GaAs solar cells market is driven by several factors tied to high-efficiency performance requirements, aerospace and defense sector demand, and advancements in lightweight and flexible solar technologies. Expansion of satellite programs and stratospheric UAV projects sustains demand for radiation-hardened and thermally stable solar modules. Development of multijunction GaAs cells with record-setting efficiencies enables their use in compact, weight-sensitive platforms. Adoption of epitaxial lift-off and thin-film techniques supports scalability and cost optimization. Emerging use in wearable devices, solar drones, and CPV installations further diversifies application reach. These developments collectively support market growth for GaAs solar cells in sectors where conventional photovoltaic technologies are insufficient.

SCOPE OF STUDY:

The report analyzes the Gallium Arsenide (GaAS) Solar Cells market in terms of units by the following Segments, and Geographic Regions/Countries:

Segments:

Type (Single-Junction GaAs Solar Cells, Multi-Junction GaAs Solar Cells); Application (Space Application, Terrestrial Application); End-User (Residential End-User, Commercial End-User, Industrial End-User, Utility End-User)

Geographic Regions/Countries:

World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; Spain; Russia; and Rest of Europe); Asia-Pacific (Australia; India; South Korea; and Rest of Asia-Pacific); Latin America (Argentina; Brazil; Mexico; and Rest of Latin America); Middle East (Iran; Israel; Saudi Arabia; United Arab Emirates; and Rest of Middle East); and Africa.

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TARIFF IMPACT FACTOR

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TABLE OF CONTENTS

I. METHODOLOGY

II. EXECUTIVE SUMMARY

III. MARKET ANALYSIS

IV. COMPETITION

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