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Silicon Carbide in the Global High Voltage Application Market Report: Trends, Forecast and Competitive Analysis

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    Report

  • 150 Pages
  • January 2022
  • Region: Global
  • Lucintel
  • ID: 5557776
The future of the semiconductor material for harsh environment market looks promising with opportunities in the industrial, aerospace and defense, and others. The global semiconductor material for harsh environment market is expected to grow with a CAGR of 7% to 9% from 2022 to 2027. The major drivers for this market are growing demand for advanced semiconductors for harsh environments, increasing number of low orbit satellite launch programs, and growing demand for semiconductors in aerospace and defense industry.

Sumitomo Electric Industries, Mitsubishi Chemicals, Kyocera, GaN Systems, Sciocs, Toshiba, and Soitec are among the major material suppliers for the semiconductor harsh environment applications.

A more than 150 page report has been developed to help in your business decisions. To learn the scope of, benefits, companies researched, and other details of semiconductor material for harsh environment market report, then read this report.

The study includes trends and forecast for the global semiconductor material for harsh environment market by material, application, end use, and region as follows:


By Material [$M shipment analysis for 2016-2027]:

  • Silicon (Si)
  • Silicon on Insulator (SOI)
  • Silicon Germanium (SiGe)
  • Silicon Carbide (SiC)
  • Gallium Nitride (GaN)

By Application [$M shipment analysis for 2016-2027]:

  • High Temperature
  • Wide Range of Temperature
  • Intense Radiation
  • High Pressure

By End Use [$M shipment analysis for 2016-2027]:

  • Industrial
  • Aerospace and Defense
  • Others

By Region [$M shipment analysis for 2016-2027]:

  • North America
  • United States
  • Canada
  • Mexico
  • Europe
  • Germany
  • United Kingdom
  • France
  • Italy
  • Asia Pacific
  • China
  • Japan
  • India
  • South Korea
  • The Rest of the World

Gallium nitride is expected to witness the highest growth over the forecast period due to its better properties that helps to withstand high temperature, high voltage, and caustic atmosphere applications.

Asia Pacific is expected to grow with the highest growth over the forecast period due to the existence of large semiconductor companies in this region. Increasing demand for semiconductors in industrial, aerospace, military and defense, and satellite programs will drive the demand for semiconductor materials in this region.

Some of the semiconductor material companies for harsh environment market profiled in this report include BASF, LG Chem, Indium, Hitachi Chemical, KYOCERA, and others.

Features of Semiconductor Material for Harsh Environment Market

  • Market Size Estimates: Semiconductor material for harsh environment market size estimation in terms of value ($M)
  • Trend And Forecast Analysis: Market trends (2016-2021) and forecast (2022-2027) by various segments and regions.
  • Segmentation Analysis: Market size by material, application, and end use.
  • Regional Analysis: Semiconductor material for harsh environment market breakdown by North America, Europe, Asia Pacific, and the Rest of the World.
  • Growth Opportunities: Analysis of growth opportunities in different materials, applications, end uses, and regions for semiconductor material for harsh environment market.
  • Strategic Analysis: This includes M&A, new product development, and competitive landscape for the semiconductor material for harsh environment market.
  • Analysis of competitive intensity of the industry based on Porter’s Five Forces model.

This report answers the following 11 key questions

Q.1 What are some of the most promising potential, high-growth opportunities for the global semiconductor material for harsh environment market by material (silicon, silicon on insulator, silicon germanium, silicon carbide, and gallium nitride), application (high temperature, wide range of temperature, intense radiation, and high pressure), end use (industrial, aerospace and defense, and others), and region (North America, Europe, Asia Pacific, and the Rest of the World)?
Q.2 Which segments will grow at a faster pace and why?
Q.3 Which regions will grow at a faster pace and why?
Q.4 What are the key factors affecting market dynamics? What are the drivers and challenges of the semiconductor material for harsh environment market?
Q.5 What are the business risks and threats to the semiconductor material for harsh environment market?
Q.6 What are the emerging trends in this semiconductor material for harsh environment market and the reasons behind them?
Q.7 What are some changing demands of customers in the semiconductor material for harsh environment market?
Q.8 What are the new developments in the semiconductor material for harsh environment market? Which companies are leading these developments?
Q.9 Who are the major players in the semiconductor material for harsh environment market? What strategic initiatives are being implemented by key players for business growth?
Q.10 What are some of the competitive products and processes in the semiconductor material for harsh environment market, and how big of a threat do they pose for loss of market share via material or product substitution?
Q.11 What M&A activities did take place in the last five years in the semiconductor material for harsh environment market?

Table of Contents

1. Executive Summary
2. Market Background and Classifications
2.1: Introduction, Background, and Classifications
2.2: Supply Chain
2.3: Industry Drivers and Challenges
3. Market Trends and Forecast Analysis from 2016 to 2027
3.1: Macroeconomic Trends (2016-2021) and Forecast (2022-2027)
3.2: Trends (2016-2021) and Forecast (2022-2027) for Silicon Carbide in the Global High Voltage Application Market
3.3: Global Silicon Carbide for High Voltage Application Market by Device Type
3.3.1: SiC Diode
3.3.2: SIC MOSFET
3.3.3: SiC Module
3.4: Global Silicon Carbide for High Voltage Application Market by Application
3.4.1: EV Motor Drives
3.4.2: EV Charging Stations
3.4.3: Power Transmissions (FACTS And HVDC)
3.5: Global Silicon Carbide for High Voltage Application Market by Wafer Size
3.5.1: 2 Inch
3.5.2: 4 Inch
3.5.3: 6 Inch and Above
4. Market Trends and Forecast Analysis by Region from 2016 to 2027
4.1: Global Silicon Carbide for High Voltage Application Market by Region
4.2: Silicon Carbide in the North American High Voltage Application Market
4.2.1: Market by Device Type
4.2.2: Market by Application
4.2.3: Market by Wafer Size
4.2.4: Silicon Carbide in the US High Voltage Application Market
4.2.5: Silicon Carbide in the Canadian High Voltage Application Market
4.2.6: Silicon Carbide in the Mexican High Voltage Application Market
4.3: Silicon Carbide in the European High Voltage Application Market
4.3.1: Market by Device Type
4.3.2: Market by Application
4.3.3: Market by Wafer Size
4.3.4: Silicon Carbide in the German High Voltage Application Market
4.3.5: Silicon Carbide in the United Kingdom High Voltage Application Market
4.3.6: Silicon Carbide in the Italian High Voltage Application Market
4.4: Silicon Carbide in the APAC High Voltage Application Market
4.4.1: Market by Device Type
4.4.2: Market by Application
4.4.3: Market by Wafer Size
4.4.4: Silicon Carbide in the Chinese High Voltage Application Market
4.4.5: Silicon Carbide in the Japanese High Voltage Application Market
4.4.6: Silicon Carbide in the South Korean High Voltage Application Market
4.5: Silicon Carbide in the ROW High Voltage Application Market
4.5.1: Market by Device Type
4.5.2: Market by Application
4.5.3: Market by Wafer Size
5. Competitor Analysis
5.1: Product Portfolio Analysis
5.2: Geographical Reach
5.3: Porter’s Five Forces Analysis
6. Growth Opportunities and Strategic Analysis
6.1: Growth Opportunity Analysis
6.1.1: Growth Opportunities for Silicon Carbide in the Global High Voltage Application Market by Device Type
6.1.2: Growth Opportunities for Silicon Carbide in the Global High Voltage Application Market by Application
6.1.3: Growth Opportunities for Silicon Carbide in the Global High Voltage Application Market by Wafer Size
6.1.4: Growth Opportunities for Silicon Carbide in the Global High Voltage Application Market by Region
6.2: Emerging Trends in Silicon Carbide in the Global High Voltage Application Market
6.3: Strategic Analysis
6.3.1: New Product Development
6.3.2: Capacity Expansion for Silicon Carbide in the Global High Voltage Application Market
6.3.3: Technology Development
6.3.4: Mergers and Acquisitions for Silicon Carbide in the Global High Voltage Application Industry
7. Company Profiles of Leading Players
7.1: Infineon Technologies
7.2: Cree
7.3: ROHM
7.4: STMicroelectronics
7.5: Fuji Electric
7.6: ON Semiconductor
7.7: General Electric
7.8: Toshiba Corporation
7.9: Renesas Electronics
7.10: Microchip Technology

Companies Mentioned

A selection of companies mentioned in this report includes:

  • Infineon Technologies
  • Cree
  • ROHM
  • STMicroelectronics
  • Fuji Electric
  • ON Semiconductor
  • General Electric
  • Toshiba Corporation
  • Renesas Electronics
  • Microchip Technology

Methodology

The analyst has been in the business of market research and management consulting since 2000 and has published over 600 market intelligence reports in various markets/applications and served over 1,000 clients worldwide. Each study is a culmination of four months of full-time effort performed by the analyst team. The analysts used the following sources for the creation and completion of this valuable report:

  • In-depth interviews of the major players in the market
  • Detailed secondary research from competitors’ financial statements and published data
  • Extensive searches of published works, market, and database information pertaining to industry news, company press releases, and customer intentions
  • A compilation of the experiences, judgments, and insights of professionals, who have analyzed and tracked the market over the years.

Extensive research and interviews are conducted in the supply chain of the market to estimate market share, market size, trends, drivers, challenges and forecasts.

Thus, the analyst compiles vast amounts of data from numerous sources, validates the integrity of that data, and performs a comprehensive analysis. The analyst then organizes the data, its findings, and insights into a concise report designed to support the strategic decision-making process.

 

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