Global Deep UV Lasers Market Size and Forecasts 2030

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    Published Date - October 2024  Number of Pages - 108 

    DEEP UV LASERS MARKET

     

    KEY FINDINGS

    • The Global Deep UV Laser Market will grow from $626 million in 2023 to $2.2 Billion in 2030 at a CAGR of 19% from 2024-2030​
    • The Deep UV (DUV) lasers are witnessing increasing applications in medical diagnostics (e.g., sterilization and disinfection systems), contributing to their rising market value.​ 
    • Expansion in electronic components and the demand for high precision in manufacturing, DUV lasers are critical in photolithography processes which is driving growth.​ 
    • Advancements in laser diode technology are improving efficiency, power output, and reducing the size of DUV lasers, making them more versatile for portable applications.​ Innovations in manufacturing techniques and materials, particularly in the production of AlGaN-based lasers, are bringing down the costs, making DUV lasers more accessible across industries.​ 
    • Enhanced designs are improving the lifespan and reliability of DUV lasers, making them suitable for longer industrial cycles without frequent replacements.
    • The Asia-Pacific region, especially China, Japan, and Taiwan is emerging as a key hub for both manufacturing and consumption due to the high demand from electronics and semiconductor industries.​
    • Companies are increasingly engaging in strategic collaborations with research institutions to further advance DUV technology, especially for healthcare and environmental solutions.​
    • ASML and Gigaphoton are the key players in Deep UV laser market utilization for light-source for lithography systems. Players like Coherent have a good grip in the overall market as they have a vast number of models available to serve various customers across industries​

    .

    DEEP UV LASERS MARKET OVERVIEW

     The deep UV lasers market has been experiencing steady growth, driven by increasing demand from various industries such as semiconductor manufacturing, healthcare, and research. The market size was expected to expand due to the growing applications of deep UV lasers. The market is witnessing growth in various regions, with some regions leading in manufacturing, while others were prominent in adoption and application, based on specific industry demands.

     

    The Asia Pacific region is expected to be the fastest-growing market for deep UV lasers in the coming years. This is due to the strong growth of the semiconductor industry in the region. Europe is also expected to be a major market for deep UV lasers. North America is expected to be a mature market for deep UV lasers.

     

    There were several key players and manufacturers in the deep UV lasers market, each competing in terms of technological advancements, product quality, and cost-effectiveness. This competitive landscape was driving innovation and improvements in technology.

     

    Deep UV lasers are becoming increasingly popular in the medical device and pharmaceutical industries. This is due to their ability to precisely cut and drill medical devices, such as stents and catheters. They are used in a variety of pharmaceutical manufacturing processes, such as sterilization and drug discovery. The demand for medical devices and pharmaceuticals is expected to continue to grow, and this will drive up demand for deep UV lasers.

     

    Deep UV lasers are still a relatively new technology, and they are expensive to manufacture. This has limited their adoption to a small number of high-value applications. As the technology continues to develop and the cost of deep UV lasers decreases, we can expect to see even more applications for this powerful new technology.

      

    INTRODUCTION TO DEEP UV LASERS MARKET

    Deep ultraviolet (DUV) lasers are a type of laser that emits light with wavelengths in the range of 224 to 266 nanometers. These lasers are also sometimes referred to as excimer lasers, as they are typically produced using a process called excimer formation.

     

    Deep UV Lasers Market share

     

    DUV lasers work by creating a population of excited dimer molecules, which are molecules that are formed when two atoms of the same element combine. These dimer molecules are excited to a high energy state, and when they return to their ground state, they emit a photon of light. The wavelength of the emitted light is determined by the energy difference between the excited and ground states of the dimer molecules.

     

    DUV lasers have a wide range of applications, including:

    • Semiconductor manufacturing: DUV lasers are used in a variety of semiconductor manufacturing processes, such as photolithography and wafer dicing. Photolithography is a process that is used to create patterns on silicon wafers. DUV lasers are used to transfer these patterns onto the wafers. Wafer dicing is a process that is used to cut wafers into individual chips. DUV lasers are used to make precise cuts in the wafers.
    • Medical device manufacturing: DUV lasers are used in a variety of medical device manufacturing processes, such as cutting and drilling stents and catheters. Stents are small tubes that are used to open up blocked arteries. Catheters are thin tubes that are used to deliver medication or fluids to the body. DUV lasers can be used to precisely cut and drill these devices, which can improve their performance and safety. 
    • Scientific research: DUV lasers are used in a variety of scientific research applications, such as laser-induced breakdown spectroscopy (LIBS) and Raman spectroscopy. LIBS is a technique that is used to identify and quantify the elements in a sample. Raman spectroscopy is a technique that is used to study the molecular structure of a sample.
    • Medical applications: DUV lasers are also used in a variety of medical applications, such as laser eye surgery and laser tattoo removal.

     

    Advantages of DUV Lasers

    DUV lasers have a number of advantages, including:

    • High precision: DUV lasers can produce very precise cuts and drills.
    • High power: DUV lasers can generate high-power pulses of light.
    • Short wavelength: DUV lasers have a short wavelength of light, which allows them to focus on small areas.
    • Versatility: DUV lasers can be used in a wide range of applications.

     

    Disadvantages of DUV Lasers

    DUV lasers also have a number of disadvantages, including:

    • High cost: DUV lasers are expensive to manufacture and maintain.
    • Limited availability: DUV lasers are not as widely available as other types of lasers.
    • Safety concerns: DUV lasers emit high-energy radiation that can damage the skin and eyes.

     

    There are several types of deep UV lasers, each with its own unique properties and applications. Here are some of the most common types:

     

    Excimer lasers: Excimer lasers are the most common type of deep UV laser. They are produced using a process called excimer formation, in which two atoms of the same element combine to form an excited dimer molecule. When this excited dimer molecule returns to its ground state, it emits a photon of light with a wavelength in the deep UV range. Excimer lasers are typically used in semiconductor manufacturing, medical device manufacturing, and scientific research.

     

    This process involves tripling the frequency of the light, which shortens its wavelength to the deep UV range. Helium-cadmium (HeCd) lasers: Helium-cadmium (HeCd) lasers are produced by passing an electric current through a mixture of helium and cadmium gas. This process creates excited helium and cadmium atoms, which then combine to form excited dimer molecules. When these excited dimer molecules return to their ground state, they emit a photon of light with a wavelength in the deep UV range. HeCd lasers are typically used in scientific research and medical applications.

     

    Nitrogen (N2) lasers: Nitrogen (N2) lasers are produced by passing an electric current through a mixture of nitrogen and helium gas. This process creates excited nitrogen molecules, which then collide and dissociate into excited nitrogen atoms.

     

    When these excited nitrogen atoms return to their ground state, they emit a photon of light with a wavelength in the deep UV range. N2 lasers are typically used in scientific research and industrial applications. Xenon (Xe) lasers: Xenon (Xe) lasers are produced by passing an electric current through a mixture of xenon and helium gas. This process creates excited xenon atoms, which then collide and dissociate into excited xenon ions.

     

    When these excited xenon ions return to their ground state, they emit a photon of light with a wavelength in the deep UV range. Xe lasers are typically used in scientific research and medical applications. The type of deep UV laser that is best for a particular application depends on a number of factors, including the desired wavelength, power output, and pulse duration.

     

    DEEP UV LASERS MARKET SIZE AND FORECAST

     

    Deep UV Lasers Market size

     

    The Global Deep UV Lasers market accounted for $0.6 Billion in 2023 and is anticipated to reach $2.2 Billion by 2030, registering a CAGR of 19% from 2024 to 2030.

     

    TRENDS IN DEEP UV LASERS MARKET

    Ongoing technological advancements have been a major driver in the development of more efficient, compact, and cost-effective deep UV lasers. Innovations in laser designs, materials, and manufacturing processes have aimed at enhancing performance and reducing the overall cost of these lasers.

     

    Deep UV lasers find applications in life sciences, particularly in areas such as fluorescence microscopy, DNA sequencing, and bioimaging. These lasers enable high-resolution imaging and precise manipulation at the cellular and molecular levels, supporting advancements in research and diagnostics.

     

    Researchers are working to develop deep UV lasers with higher power output and higher efficiency. This will make deep UV lasers more versatile and cost-effective, and it will open up new applications for the technology. The demand for deep UV lasers is expected to grow rapidly in emerging markets, such as China and India. This is due to the strong growth of these economies and the increasing demand for semiconductors, electronics, and medical devices in these regions.

     

    Both public and corporate sectors are making significant investments in the study and advancement of deep UV laser technology. Deep UV lasers are becoming more affordable and innovative, opening up new applications for a variety of sectors. There are a number of new deep UV laser sources under development, such as frequency-tripled lasers and excimer lasers. These new sources will offer a wider range of wavelengths and pulse durations, which will further expand the applications of deep UV lasers.

     

    There is a trend toward developing solid-state deep UV lasers that are more compact, rugged, and cost-effective. These advancements aim to make these lasers more accessible and easier to integrate into various systems and devices.

     

    Deep UV lasers are finding increased applications in defense and security systems for tasks such as chemical and biological threat detection, high-precision sensing, and imaging. The industry has seen increased investments in R&D, partnerships, and collaborations, fostering advancements in deep UV laser technology and expanding their potential applications.

     

    Government agencies, such as the Occupational Safety and Health Administration (OSHA) in the United States and their counterparts worldwide, set safety standards for laser products. Compliance with these regulations is crucial for ensuring the safe use of deep UV lasers, especially in industrial and healthcare applications.

     

    Restrictions and guidelines are in place to ensure that the use and disposal of deep UV laser systems do not pose environmental risks. This includes regulations regarding hazardous materials, waste disposal, and environmental impact assessments associated with manufacturing and operating UV laser systems.

     

    DEEP UV LASERS MARKET NEW PRODUCT LAUNCH

    In order to generate semiconductor materials with flawless crystalline purity, Cornell University has created a new, more potent deep-UV laser utilizing a novel approach. Additionally, it has demonstrated promise for a number of uses, including the sterilization of medical equipment.

     

    Crystal lattice matching enables the growth of the purest quality materials with low point defect and dislocation densities, resulting in low optical loss. The new method of molecular beam homoepitaxy enables the growth of crystalline wurtzite aluminum gallium nitride films and heterostructures on aluminum nitride crystals. It was essential to precisely grow numerous AlGaN layers stacked on top of one another and maintain control over the defect density and quality of their interfaces.

     

    To capture emitted light and encourage stimulated emission, the team was required to build an optical cavity from the stacked layers (necessary for the laser). Once their material was ready, the researchers created Fabry-Pérot-based micron-scale optical resonators on the AlN, a necessity for the deep-UV laser, with assistance from Cornell’s NanoScale Science and Technology Facility.

     

    NEW PRODUCT DEVELOPMENT IN DEEP UV LASERS MARKET

    To generate semiconductor materials with flawless crystalline purity, Cornell University has created a new, more potent deep-UV laser utilizing a novel approach. Additionally, it has demonstrated promise for several uses, including the sterilization of medical equipment.

     

    Three new Deep UV lasers from IPG Photonics with proprietary non-linear crystals provide industry-leading reliability for numerous industries and micromachining applications:

    1) A 3-watt continuous wave, single-frequency fiber laser at 266 nm designed for inspection, photolithography, FBG writing, disk remastering, and spectroscopy applications
    2) A 5-watt nanosecond pulsed fiber laser at 266 nm with up to 2 µJ pulses at 1.5 ns, designed for micro-cutting, drilling, texturing, marking, and selective material removal on challenging materials such as glass, diamond, and Teflon
    3) A 5-watt picosecond pulsed fiber laser at 257 nm with up to 5 µJ pulses at 1 ps, designed for micro-cutting, drilling, and selective material removal for PCBs, flex circuits, LEDs, and flat panel display applications

     

    A research group led by 2014 Nobel laureate Hiroshi Amano at Nagoya University’s Institute of Materials and Systems for Sustainability (IMaSS) in central Japan, in collaboration with Asahi Kasei Corporation, has successfully conducted the world’s first room-temperature continuous-wave lasing of a deep-ultraviolet laser diode (wavelengths down to UV-C region).

     

    Engineers have created a deep-ultraviolet (UV) laser using semiconductor materials that show great promise for improving the use of UV light for sterilizing medical tools, among other applications. The aluminum gallium nitride-based device can emit a deep-UV laser at sought-after wavelengths and modal line widths.

     

    The team used molecular beam epitaxy, a crystal growth technique, to grow a high-quality crystal of aluminum nitride. The laser was able to achieve peak gain at a wavelength of 284 nm and modal line widths on the order of 0.1 nm. 

     

    Neodymium-doped fiber laser sources can emit at high power (more than 80 W) near 900 nm which is useful in many scientific or technological applications requiring accuracy as much as strict power.

     

    They can be used as lasers emitting in the Deep-UV (frequency quadrupled) to fasten the material processing/characterization (due to their high energy and accuracy), to replace excimer lasers (i.e fiber Bragg gratings inscription), or to generate laser-induced fluorescence to detect explosive devices (at around 230 nm).

     

    DEEP UV LASERS MARKET SEGMENTATION

    The Global Deep UV Lasers market can be segmented into the following categories for further analysis.

     

    By Geography

    • US
    • Europe
    • China
    • Asia Ex China
    • Rest of the World

     

    By Type

    •  Excimer Lasers ​
    •  Frequency-Quadrupled Solid-State Lasers​
    •  Deep UV Fiber Lasers​
    • Others

     

    By Application

    • Manufacturing
    • Diagnostics
    • Inspection except Mask/Reticle​
    •  Mask/Reticle Inspection

     

    By Power Rating

    •   < 10 Watts​
    •   >10 Watts​

     

    DEEP UV LASERS MARKET KEY PLAYERS

    Here is a list of some of the leading deep UV laser companies in the world:

    • Coherent (Santa Clara, California, USA)
    • Photon Systems (Boonton, New Jersey, USA)
    • Oxxius (Lannion, France)
    • Lexel Lasers (Fremont, California, USA)
    • UVC Photonics (Wilmington, Delaware, USA)
    • Inno Laser (Qingdao, China)
    • HJ Optronics (San Jose, California, USA)
    • N-Light (Vancouver, Washington, USA)
    • Lumentum Holdings Inc (San Jose, CA, USA)
    • Hamamatsu Photonics (Shizuoka, Japan)

     

    THIS DEEP UV LASERS MARKET REPORT WILL ANSWER THE FOLLOWING QUESTIONS

    1. What are the current market trends driving the growth of Deep UV lasers globally?
    2. Which industries are the primary consumers of Deep UV lasers, and what applications are driving their adoption?
    3. What technological advancements have significantly impacted the Deep UV lasers market in recent years?
    4. How are government regulations influencing the development and adoption of Deep UV lasers worldwide?
    5. Which key companies are dominating the Deep UV lasers market, and what are their major offerings?
    6. What are the primary challenges faced by the Deep UV laser industry, and how are they being addressed?
    7. How are the Deep UV lasers market projected to grow in the next seven years, in terms of market size and revenue?
    8. The market size (both volume and value) of Global Deep UV Lasers market in 2024-2030 and every year in between?
    9. What are the key geographical markets for Deep UV lasers, and how do regional differences impact market dynamics?
    10. What is the average cost per Global Deep UV Lasers market right now and how will it change in the next 5-6 years?
    11. Average B-2-B Global Deep UV Lasers market price in all segments?
    12. Latest trends in Global Deep UV Lasers industry, by every market segment?
    13. What role do Deep UV lasers play in semiconductor manufacturing, and how are they evolving to meet the industry’s demands for higher resolutions and smaller chip sizes?
    14. How do Deep UV lasers compare with other laser types in terms of efficiency, cost-effectiveness, and applicability across various industries?
    15. What specific developments in research and development are driving innovation in Deep UV laser technology?
    16. What are the primary considerations when it comes to the safety and environmental impact of Deep UV lasers, and how are these being managed or addressed by the industry?
    SI No Topics
    1 Scope Of the Report​
    2 Market Segmentation​
    3 Research Methodology​
    4 Executive Summary​
    5 Key Predictions for Rad Tolerant FGPA Market​
    6 Insight from Industry Stakeholders​
    7 Global Deep UV Laser - Overview ​
    8 Global Deep UV Laser Manufacturer’s Footprint - 2023
    9 Average B-2-B Price of Deep UV Laser, by Region​
    10 Recent Developments in Deep UV Laser Market​
    11 Major Drivers for Deep UV Laser ​
    12 Opportunities for Deep UV Laser In Different Industries​
    13 Industrial Supply Chain for Deep UV (DUV) Lasers
    14 Increasing demands for high-power DUV lasers​
    15 Growing adoption of DUV lasers in new applications​
    16 Market Size, Dynamics and Forecast by Geography (2024-2030)​
    17 Market Size, Dynamics and Forecast by Type (2024-2030)​
    18 Market Size, Dynamics and Forecast by Application (2024-2030)​
    19 Market Size, Dynamics and Forecast by Type (2024-2030)​
    20 Growth Strategies of Major Players​
    21 Competitive Landscape​
    22 Recent Mergers and Acquisitions in Past 2 Years​
    23 Market Share of Industry Players - 2023
    24 Company Profiles​
    25 Conclusion​
     
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