市場調查報告書
商品編碼
1219906
石墨烯電子產品全球市場規模,份額,行業趨勢分析報告(電池,顯示器,太陽能電池,存儲器,集成電路/芯片,其他),按行業,地區展望和預測2022-2028Global Graphene Electronics Market Size, Share & Industry Trends Analysis Report By Product (Batteries, Display, Solar Cell, Memories, Integrated Circuits & Chips and Others), By Industry, By Regional Outlook and Forecast, 2022 - 2028 |
到 2028 年,石墨烯電子產品的全球市場規模預計將達到 16 億美元,在預測期內以 32.7% 的複合年增長率增長。
石墨烯具有導電、薄的特性,被用於電池、傳感器、太陽能電池等各種電子設備部件,已經進行了研究。 可以在室溫下導電並且只有一個原子厚的石墨烯半導體可以取代當前的計算機芯片技術。
石墨烯有可能製造出具有卓越性能的複合材料,從而提高散裝材料的強度和導電性。 複合材料是兩種或多種具有不同特性的物質的混合物,以創建具有獨特特性的最終產品。 類似的工藝用於製造石墨烯複合材料。
COVID-19 影響分析
COVID-19 大流行對石墨烯電子市場的擴張產生了重大的負面影響。 這場大流行導致缺乏技術工人來製造下一代石墨烯電子產品,如電池、存儲器和顯示器。 它還影響了消費行業對成品零件和原材料的生產需求。 此外,此前不願數字化的企業也因疫情進入市場。 因此,用於商業應用的柔性電子產品獲得了新的前景,擴大了石墨烯在電子產品中的應用。
市場增長因素
對電子存儲設備的需求正在增加
隨著配備非易失性存儲器和易失性存儲器的中高端機型,如筆記本電腦、智能手機、穿戴式終端、遊戲機等的普及,存儲器件的應用領域正在急劇擴大。 低功耗、高均勻性、高密度、SET 電壓調製和透明度等因素有望推動存儲設備製造商生產石墨烯並將其整合到他們的產品中。 因此,基於石墨烯的存儲系統將在未來的消費電子市場中獲得更大的吸引力。
擴大石墨烯在汽車和電子應用中的應用
由於其優異的導熱性、機械強度和高速電子遷移率等特性,石墨烯的使用在過去幾年中顯著增加,用於實現低功率、高速電子設備。 基於石墨烯的霍爾效應傳感器提供了更快、更直接的磁場評估,具有精確映射電池單元所需的精度和範圍,並已在英國一家公司進行了演示。 該傳感器是作為電子設備中的稀有金屬銦的替代品而開發的。 根據分析,原始設備製造商越來越關注製造基於石墨烯的電子產品,這正在顯著推動市場增長。
市場製約因素
與使用石墨烯相關的高初始投資和其他挑戰
石墨烯可以有效地導電,但它不能阻擋電流,因為它沒有像石墨那樣的帶隙。 最近,科學家們採用了一種稱為激光衝擊印蹟的工藝來永久改變石墨烯的帶隙結構。 在這個過程中,激光產生的衝擊波脈衝撞擊下面的石墨烯片。 這種激光轟擊永久性地形成石墨烯,因為它將石墨烯層推入溝槽狀模具中。 儘管這種方法使石墨烯的光學、磁學和熱學性質更加通用,但石墨烯在半導體器件中的實際應用仍然存在明顯的延遲。
行業展望
石墨烯電子市場按行業劃分為消費電子、汽車、醫療保健、工業機器人、航空航天和國防等。 汽車領域將在 2021 年佔據石墨烯電子市場的最高收入份額。 石墨烯具有眾多內在應用,包括輪胎、電子產品、流體和流體系統,顯示出巨大的潛力並正在推動這一領域的增長。 觸摸屏和液晶顯示器 (LCD) 是最常見的用戶界麵類型,因此石墨烯是一種可用於各種用戶界面的理想材料。
產品展望
石墨烯電子市場按產品細分為顯示器、存儲器、電池、太陽能電池、集成電路/芯片等。 到 2021 年,集成電路和芯片領域將在石墨烯電子市場中佔據重要的收入份額。 在高速電子電路和設備的開發方面正在進行大量研究,以利用石墨烯在高頻應用中的優異電氣特性。 大面積石墨烯片的高電子遷移率有望提高石墨烯電子器件在高頻應用中的電氣性能和適用性。
區域展望
石墨烯電子市場按地區分析,橫跨北美、歐洲、亞太地區和 LAMEA。 亞太地區在 2021 年提高了石墨烯電子市場的最高收入份額。 由於該地區有主要的消費電子產品製造商,例如手機和智能電視,因此許多產品中都使用了基於石墨烯的組件。 此外,石墨烯薄膜替代氧化銦錫作為智能電視、太陽能電池、智能手機、平板電腦和可穿戴電子產品中的透明導體的潛在應用有望推動該地區市場的增長。
The Global Graphene Electronics Market size is expected to reach $1.6 billion by 2028, rising at a market growth of 32.7% CAGR during the forecast period.
Graphene is the first 2-D carbon substance discovered. As a result, graphene is suitable for a wide range of uses in the electronics industry. Compared to steel, Graphene is 200 times stronger, 200 times lighter than air, a good conductor of electricity, and fire-resistant. Graphene is also valued as a powerful catalyst in the chemical industry due to attributes including its absorption capacity and high surface area.
The next-generation semiconductor technology may be developed using graphene, which conducts electricity better than existing electrode materials. The revolutionary material known as graphene is composed of a graphite atoms' single layer arranged as a single sheet. Graphene has several beneficial properties, some of which include improved heat conductivity, excellent mechanical strength, and extremely high electron mobility.
Due to graphene's distinctive characteristics of conductivity and thinness, which include its use in a variety of electronic device components, like batteries, sensors, solar cells, and more, extensive studies have been conducted on graphene's potential uses as a semiconductor. Current computer chip technology might be replaced by graphene semiconductors, as these can conduct electricity at room temperature and are only one atom thick.
Graphene has the ability to produce composite materials with exceptional properties and improve the strength and conductivity of bulk materials. Composite materials are created by mixing two or more substances with different qualities to create an end product with distinctive attributes. Similar processes are used in the production of graphene composites.
COVID-19 Impact Analysis
The COVID-19 pandemic had a substantial negative impact on the expansion of the graphene electronics market. The pandemic propagated the lack of a skilled workforce to create next-generation graphene electronics, including batteries, memories, displays, and other products. It also affected the demand for the production of final components and raw materials utilized in consumer industries. Several businesses that had reservations about the advantages of digitalization joined on board as a result of the pandemic. Flexible electronics for business applications consequently received new prospects, leading to the greater use of graphene on electronic products.
Market Growth Factors
Increasing need for electronic memory devices
Due to the growing popularity of mid- and high-end laptops, smartphones, wearables, gaming consoles, and other devices that employ these chips for non-volatile and volatile memory, the application of memory devices has experienced a tremendous increase. Low power consumption, high uniformity, increased density, SET voltage modulation, transparency, and other factors are expected to cause memory device manufacturers to shift their attention to the creation and incorporation of graphene in their products. This should help graphene-based memory systems gain more traction in the market for consumer electronics in the future.
Rising use of graphene in automotive and electronic applications
Due to its superior thermal conductivity, great mechanical strength, rapid electron mobility, and other features, the usage of graphene for the creation of lower-power-consuming and faster electronics have significantly increased during the past few years. A Hall Effect sensor based on graphene that delivers a quicker, more direct assessment of the magnetic field with the precision and range needed for precise battery cell mapping was introduced by a UK-based company. This sensor has been developed to replace rare metal indium in electronic devices. According to analysis, the OEMs' increasing focus on creating electrical goods based on graphene is greatly aiding the market growth.
Market Restraining Factors
High initial investment and other challenges associated with the use of graphene
Graphene is an efficient conductor of electricity, yet, like graphite, it cannot be shut off because it lacks a band gap. Recently, scientists employed a process called laser shock imprinting to permanently alter the band gap structure in graphene. During this process, shockwave impulses generated by a laser were directed at a graphene sheet beneath it. These laser shocks permanently shaped the graphene layer as they forced it into a trench-like mold. Although the method allows for greater versatility in utilizing the optical, magnetic, and thermal properties of graphene, there remains a large delay to market for commercializing graphene into semiconducting devices.
Industry Outlook
Based on industry, the graphene electronics market is categorized into consumer electronics, automotive, healthcare, industrial robotics, aerospace & defense, and others. The automotive segment garnered the highest revenue share in the graphene electronics market in 2021. With numerous essential uses, including tires, electronics, fluids, and fluidic systems, graphene exhibits significant potential and drives the segment's growth. Since touchscreens and liquid-crystal displays (LCDs) are the most common types of user interfaces, graphene is a desirable material that might be employed in various user interfaces.
Product Outlook
On the basis of product, the graphene electronics market is divided into display, memories, batteries, solar cell, integrated circuits & chips, and others. The integrated circuits and chips segment witnessed a significant revenue share in the graphene electronics market in 2021. Numerous research has been focused on developing high-speed electron circuits and devices to take advantage of graphene's exceptional electrical characteristics in high-frequency applications. The electrical abilities of graphene electronics and their applicability for high-frequency purposes are expected to be enhanced by the large-area graphene sheets' high electron mobility.
Regional Outlook
Based on region, the graphene electronics market is analyzed across North America, Europe, Asia Pacific, and LAMEA. The Asia Pacific region procured the highest revenue share in the graphene electronics market in 2021. Due to the presence of major producers of consumer electronics, such as mobile phones and smart TVs, in the region, graphene-based components are being used in many products. Additionally, the regional market is anticipated to experience growth due to the potential usage of graphene films, substituting the indium tin oxide as a transparent conductor in smart TVs, solar cells, smartphones, tablets, and wearable electronics.
The market research report covers the analysis of key stake holders of the market. Key companies profiled in the report include Samsung Electronics Co., Ltd. (Samsung Group), Talga Group Ltd., NanoXplore, Inc., Versarien plc, AMG Advanced Metallurgical Group N.V., Haydale Graphene Industries PLC, First Graphene Ltd., Graphenea, Graphene Platform Corporation, and Graphene Square, Inc.
Strategies deployed in Graphene Electronics Market
Jan-2023: Graphenea added new features to the mGFET line of products with the help of an inbuilt reservoir for liquids. This upgrade would be used for rapid screening and clinical testing. Additionally, this product eases the use of bio sensing. The mGFET product line is developed to reduce the barriers to the adoption of graphene as a biosensor.
Sep-2022: Versarien collaborated with BiaBrazil, a sport and activewear manufacturer. Under this partnership, the company would manufacture garments designed for both style and comfort along with maintaining performance and quality levels with Graphene-Wear technology.
Jun-2022: Versarien unveiled a new nanomaterial having super paramagnetic properties that can be used in various fields including healthcare and defense. Through this launch, the company is growing into the generation of nanomaterial and delivering innovation to the industries globally.
Jun-2022: Versarien partnered with OG Classic, a sports and leisurewear manufacturer. The partnership would result in the growth of graphene-based fabrics in the markets of the Middle East.
Jul-2022: Graphenea partnered with Grapheal, a company providing digital biosensors for wearables, wound care and diagnostics. Under this partnership, the companies would hasten the research on biosensors with the help of the new software GraphLAB. This software would integrate acquisition protocols, capacitance change detection and automation programming with actual time conductance shift analysis.
Dec-2021: NanoXplore Inc. acquired Canuck Compounders Inc., a company engaged in custom compounding of engineered resins. This acquisition would increase the company's capabilities for graphene compounding in recycled plastics and would allow the company to partner with the end customers.
Sep-2021: Talga is expanding its footprints in northern Sweden by building a low emission battery anode production factory and integrating graphite mining operations with the use of renewable electricity. On reaching the growth phase of battery anode operations in Sweden this would electrify the underground mining processes
Jun-2021: NanoXplore Inc. signed a distribution and supply agreement with Gerdau Grafeno LTDA, a company engaged in making graphene-based solutions. This would help in the expansion of graphene applications at industrial levels and would target the customers in construction and concrete markets. This agreement would help in boosting the company's position in the graphene market and would potentially increase the demand of graphene much more than the NanoXplore's producing capacity.
Dec-2020: Talga Group signed an MoU with ABB, a technology company in the field of electrification and automation. Under this MoU, the companies would develop Talga's Vittangi Anode Project in northern Sweden. This would help the company to build the biggest lithium-ion battery anode production factory in Europe.
Dec-2020: Graphenea came into collaboration with Lantania, a construction engineering company. Under this collaboration, the combining companies would study the usage of graphene in concrete. Through this collaboration, the company would bring graphene-based additives for concrete to the market to provide performance advancements.
Sep-2020: NanoXplore Inc. took over Continental Structural Plastics, a design and service supplier to transportive industries. Through this acquisition, the company would enter US markets and increase the sale of graphene. The graphene-based products can be manufactured and stored in the Newton facility.
Nov-2019: Graphenea unveiled highly flat monolayer graphene. This launched product would be able to demand wafer-scale integration to manufacture uniform graphene devices which are compatible with ongoing fabrication methods in the industries.
Jan-2018: Graphenea unveiled a 6" graphene wafer on all the organization's standard substrates. This newly launched wafer would be used by commercial fabrication lines for their use in sensing, NEMS, MEMS and electronics.
Market Segments covered in the Report:
By Product
By Industry
By Geography
Companies Profiled
Unique Offerings from KBV Research
List of Figures