1 エグゼクティブ・サマリー
2 序文
2.1 概要
2.2 ステークホルダー
2.3 調査範囲
2.4 調査方法
2.4.1 データマイニング
2.4.2 データ分析
2.4.3 データの検証
2.4.4 リサーチアプローチ
2.5 リサーチソース
2.5.1 一次調査ソース
2.5.2 セカンダリーリサーチソース
2.5.3 前提条件
3 市場動向分析
3.1 はじめに
3.2 推進要因
3.3 抑制要因
3.4 機会
3.5 脅威
3.6 アプリケーション分析
3.7 新興市場
3.8 Covid-19の影響
4 ポーターズファイブフォース分析
4.1 供給者の交渉力
4.2 買い手の交渉力
4.3 代替品の脅威
4.4 新規参入の脅威
4.5 競争上のライバル関係
5 アンモニア分解触媒の世界市場:種類別
5.1 はじめに
5.2 白金族金属(PGM)ベース触媒
5.3 ニッケル(Ni)ベース触媒
6 アンモニア分解触媒の世界市場:用途別
6.1 はじめに
6.2 燃料電池
6.3 水素製造
6.4 化学合成
6.5 その他の用途
7 アンモニア分解触媒の世界市場:地域別
7.1 はじめに
7.2 北アメリカ
7.2.1 アメリカ
7.2.2 カナダ
7.2.3 メキシコ
7.3 ヨーロッパ
7.3.1 ドイツ
7.3.2 イギリス
7.3.3 イタリア
7.3.4 フランス
7.3.5 スペイン
7.3.6 その他のヨーロッパ
7.4 アジア太平洋
7.4.1 日本
7.4.2 中国
7.4.3 インド
7.4.4 オーストラリア
7.4.5 ニュージーランド
7.4.6 韓国
7.4.7 その他のアジア太平洋地域
7.5 南アメリカ
7.5.1 アルゼンチン
7.5.2 ブラジル
7.5.3 チリ
7.5.4 その他の南アメリカ地域
7.6 中東/アフリカ
7.6.1 サウジアラビア
7.6.2 アラブ首長国連邦
7.6.3 カタール
7.6.4 南アフリカ
7.6.5 その他の中東/アフリカ地域
8 主要開発
8.1 契約、パートナーシップ、コラボレーション、合弁事業
8.2 買収と合併
8.3 新製品の発売
8.4 拡張
8.5 その他の主要戦略
9 会社プロフィール
9.1 Albemarle Corporation
9.2 BASF SE
9.3 Clariant International Ltd
9.4 DOW Chemical Company
9.5 Ecolab Inc
9.6 Kraton Corporation
9.7 Orica Limited
9.8 Shell Global Solutions
9.9 Sumitomo Chemical Co., Ltd
9.10 Tosoh Corporation
表一覧
表1 アンモニア分解触媒の世界市場展望、地域別 (2022-2030) ($MN)
表2 アンモニア分解触媒の世界市場展望、種類別 (2022-2030) ($MN)
表3 アンモニア分解触媒の世界市場展望、白金金属グループ(PGM)ベース触媒別 (2022-2030) ($MN)
表4 アンモニア分解触媒の世界市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表5 アンモニア分解触媒の世界市場展望、用途別 (2022-2030) ($MN)
表6 アンモニア分解触媒の世界市場展望、燃料電池別 (2022-2030) ($MN)
表7 アンモニア分解触媒の世界市場展望、水素製造別 (2022-2030) ($MN)
表8 アンモニア分解触媒の世界市場展望、化学合成別 (2022-2030) ($MN)
表9 アンモニア分解触媒の世界市場展望、その他の用途別 (2022-2030) ($MN)
表10 北アメリカアンモニア分解触媒の市場展望、国別 (2022-2030) ($MN)
表11 北アメリカアンモニア分解触媒の市場展望、種類別 (2022-2030) ($MN)
表12 北アメリカアンモニア分解触媒の市場展望、白金金属グループ(PGM)ベース触媒別 (2022-2030) ($MN)
表13 北アメリカアンモニア分解触媒市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表14 北アメリカアンモニア分解触媒の市場展望、用途別 (2022-2030) ($MN)
表15 北アメリカアンモニア分解触媒の市場展望、燃料電池別 (2022-2030) ($MN)
表16 北アメリカアンモニア分解触媒の市場展望、水素製造別 (2022-2030) ($MN)
表17 北アメリカアンモニア分解触媒の市場展望、化学合成別 (2022-2030) ($MN)
表18 北アメリカアンモニア分解触媒の市場展望、その他の用途別 (2022-2030) ($MN)
表19 ヨーロッパアンモニア分解触媒の市場展望、国別 (2022-2030) ($MN)
表20 ヨーロッパアンモニア分解触媒の市場展望、種類別 (2022-2030) ($MN)
表21 ヨーロッパのアンモニア分解触媒の市場展望、白金金属グループ(PGM)ベースの触媒別 (2022-2030) ($MN)
表22 ヨーロッパのアンモニア分解触媒の市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表23 ヨーロッパアンモニア分解触媒の市場展望、用途別 (2022-2030) ($MN)
表24 ヨーロッパのアンモニア分解触媒の市場展望、燃料電池別 (2022-2030) ($MN)
表25 ヨーロッパアンモニア分解触媒の市場展望、水素製造別 (2022-2030) ($MN)
表26 ヨーロッパアンモニア分解触媒の市場展望、化学合成別 (2022-2030) ($MN)
表27 ヨーロッパアンモニア分解触媒の市場展望、その他の用途別 (2022-2030) ($MN)
表28 アジア太平洋地域のアンモニア分解触媒の市場展望、国別 (2022-2030) ($MN)
表29 アジア太平洋地域のアンモニア分解触媒の市場展望、種類別 (2022-2030) ($MN)
表30 アジア太平洋地域のアンモニア分解触媒の市場展望、白金金属グループ(PGM)ベースの触媒別 (2022-2030) ($MN)
表31 アジア太平洋地域のアンモニア分解触媒の市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表32 アジア太平洋地域のアンモニア分解触媒の市場展望、用途別 (2022-2030) ($MN)
表33 アジア太平洋地域のアンモニア分解触媒の市場展望、燃料電池別 (2022-2030) ($MN)
表34 アジア太平洋地域のアンモニア分解触媒の市場展望、水素製造別 (2022-2030) ($MN)
表35 アジア太平洋地域のアンモニア分解触媒の市場展望、化学合成別 (2022-2030) ($MN)
表36 アジア太平洋地域のアンモニア分解触媒の市場展望、その他の用途別 (2022-2030) ($MN)
表37 南アメリカのアンモニア分解触媒の市場展望、国別 (2022-2030) ($MN)
表38 南アメリカのアンモニア分解触媒の市場展望、種類別 (2022-2030) ($MN)
表39 南アメリカのアンモニア分解触媒の市場展望、白金金属グループ(PGM)ベースの触媒別 (2022-2030) ($MN)
表40 南アメリカのアンモニア分解触媒の市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表41 南アメリカのアンモニア分解触媒の市場展望、用途別 (2022-2030) ($MN)
表42 南アメリカのアンモニア分解触媒の市場展望、燃料電池別 (2022-2030) ($MN)
表43 南アメリカのアンモニア分解触媒の市場展望、水素製造別 (2022-2030) ($MN)
表44 南アメリカのアンモニア分解触媒の市場展望、化学合成別 (2022-2030) ($MN)
表45 南アメリカのアンモニア分解触媒の市場展望、その他の用途別 (2022-2030) ($MN)
表46 中東/アフリカのアンモニア分解触媒の市場展望:国別 (2022-2030) ($MN)
表47 中東/アフリカのアンモニア分解触媒の市場展望、種類別 (2022-2030) ($MN)
表48 中東/アフリカのアンモニア分解触媒市場展望:白金族金属(PGM)ベース触媒別 (2022-2030) ($MN)
表49 中東/アフリカのアンモニア分解触媒市場展望、ニッケル(Ni)ベース触媒別 (2022-2030) ($MN)
表50 中東/アフリカのアンモニア分解触媒の市場展望、用途別 (2022-2030) ($MN)
表51 中東/アフリカのアンモニア分解触媒の市場展望、燃料電池別 (2022-2030) ($MN)
表52 中東/アフリカのアンモニア分解触媒の市場展望、水素製造別 (2022-2030) ($MN)
表53 中東/アフリカのアンモニア分解触媒の市場展望、化学合成別 (2022-2030) ($MN)
表54 中東/アフリカのアンモニア分解触媒の市場展望:その他の用途別 (2022-2030) ($MN)
According to the U.S. government’s energy information administration (EIA), the country produces more than 10 million tonnes of hydrogen annually.
Market Dynamics:
Driver:
Rising adoption of green technologies
The growing adoption of green technologies is substantially advancing the development of ammonia cracking catalysts, which play a crucial role in the hydrogen economy. Ammonia, a compound with high hydrogen content, is increasingly being utilized as a hydrogen carrier due to its efficient storage and transport. To release hydrogen from ammonia for fuel cells or other applications, effective ammonia cracking catalysts are essential. The push for greener technologies has spurred innovations in catalyst materials and designs to improve efficiency and reduce environmental impact. Researchers are focusing on developing catalysts that operate at lower temperatures, enhance reaction rates, and are more sustainable by using less toxic or more abundant materials.
Restraint:
High cost of catalyst materials
The high cost of catalyst materials significantly impacts the development and application of ammonia cracking catalysts, crucial for sustainable hydrogen production. These catalysts, essential for breaking down ammonia into nitrogen and hydrogen, rely on rare and expensive metals such as platinum, rhodium, and ruthenium. The scarcity and cost of these materials drive up the overall expense of the catalysts, making large-scale adoption economically challenging. This issue is exacerbated by the fact that these metals are not only costly to procure but also require intricate processing techniques to optimize their catalytic performance.
Opportunity:
Increased investment in hydrogen infrastructure
Increased investment in hydrogen infrastructure is substantially advancing the development of ammonia cracking catalysts. Ammonia cracking involves breaking down ammonia (NH3) into nitrogen (N2) and hydrogen (H2), with the hydrogen being used as a clean fuel or energy carrier. As hydrogen infrastructure expands, there is a growing demand for efficient and reliable ammonia cracking catalysts to produce high-purity hydrogen. This investment is driving innovation in catalyst materials and designs, enhancing their performance and longevity. Advanced catalysts, often incorporating novel materials or improved structures, facilitate more efficient ammonia decomposition at lower temperatures, reducing energy consumption and operational costs.
Threat:
Regulatory and compliance challenges
The ammonia cracking catalyst industry faces significant regulatory and compliance challenges that hinder its growth and development. Stringent environmental regulations require catalysts to achieve high efficiency in breaking down ammonia into hydrogen and nitrogen while minimizing emissions. These regulations often involve extensive testing and certification processes, which can be costly and time-consuming for manufacturers. However, compliance with safety standards adds another layer of complexity, as catalysts must operate reliably under various conditions without posing risks to users or the environment.
Covid-19 Impact:
The COVID-19 pandemic significantly impacted the ammonia cracking catalysts industry, primarily through disruptions in supply chains and production processes. With global lockdowns and restrictions, many facilities faced shutdowns or reduced operational capacity, affecting the availability of raw materials and manufacturing of catalysts. The pandemic strained logistics networks, causing delays in the delivery of critical components and finished products. This disruption not only led to increased costs and extended lead times but also hampered ongoing research and development efforts in catalyst technology.
The Nickel (Ni)-based Catalysts segment is expected to be the largest during the forecast period
Nickel (Ni)-based Catalysts segment is expected to be the largest during the forecast period. Nickel (Ni)-based catalysts are playing a crucial role in advancing ammonia cracking technology, which is pivotal for hydrogen production. These catalysts are favored due to their high activity and stability under reaction conditions. Ammonia cracking involves breaking down ammonia (NH₃) into nitrogen (N₂) and hydrogen (H₂), which is essential for generating clean hydrogen fuel. Nickel catalysts are particularly effective because they offer a favorable balance of activity, cost, and durability compared to other metals. Their performance can be enhanced through various methods, including alloying with other elements or optimizing support materials.
The Fuel Cells segment is expected to have the highest CAGR during the forecast period
Fuel Cells segment is expected to have the highest CAGR during the forecast period. Ammonia, a promising hydrogen carrier, can be efficiently decomposed into hydrogen and nitrogen using these catalysts. This process is vital because hydrogen, generated from ammonia, powers fuel cells with high efficiency and low emissions. Recent improvements in ammonia cracking catalysts focus on increasing their efficiency and longevity. Researchers are developing new materials and optimizing catalyst structures to boost the reaction rates and reduce energy consumption. Innovations include advanced alloys and nanostructured materials that offer better performance and stability under operating conditions.
Region with largest share:
As agricultural practices increasingly prioritize environmental sustainability, there is a heightened demand for efficient, low-emission solutions, Europe region commanded the largest market share during the projected period. Ammonia cracking catalysts play a crucial role in this transformation by enabling the production of green hydrogen from ammonia, a process vital for reducing reliance on fossil fuels and minimizing greenhouse gas emissions across the region. These catalysts help improve the efficiency of ammonia-based hydrogen production, which is integral to sustainable farming practices such as reducing carbon footprints and enhancing soil fertility with cleaner fertilizers throughout the region.
Region with highest CAGR:
Europe region is poised to hold profitable growth over the extrapolated period. In Europe, government regulations are substantially advancing the ammonia cracking catalysts industry by fostering innovation and ensuring sustainability. The European Union's stringent environmental policies are driving the demand for cleaner technologies, pushing companies to develop catalysts that enhance ammonia cracking efficiency while reducing harmful emissions. Regulations such as the European Green Deal and the Fit for 55 package incentivize research and development in this sector by offering funding and tax benefits for projects that align with climate goals.
Key players in the market
Some of the key players in Ammonia Cracking Catalysts market include Albemarle Corporation, BASF SE, Clariant International Ltd, DOW Chemical Company, Ecolab Inc, Kraton Corporation, Orica Limited, Shell Global Solutions, Sumitomo Chemical Co., Ltd and Tosoh Corporation.
Key Developments:
In May 2024, Lummus and Sumitomo Chemical Announce Collaboration Agreements for Circular and Polyolefins Technologies Agreements strengthen position in circular economy and expand offering in polyolefins.
In October 2023, DNV, an internationally recognized energy classification and registration society announced that demand for ammonia cracking solutions will increase over the next 5-10 years as hydrogen energy economy undergoes maturation.
In March 2023, Saudi Aramco, Saudi Arabia’s large energy conglomerate signed an agreement with Linde engineering, a major European manufacturer of industrial gases, to develop new ammonia cracking technologies.
Types Covered:
• Platinum Metal Group (PGM)-based Catalysts
• Nickel (Ni)-based Catalysts
Applications Covered:
• Fuel Cells
• Hydrogen Production
• Chemical Synthesis
• Other Applications
Regions Covered:
• North America
US
Canada
Mexico
• Europe
Germany
UK
Italy
France
Spain
Rest of Europe
• Asia Pacific
Japan
China
India
Australia
New Zealand
South Korea
Rest of Asia Pacific
• South America
Argentina
Brazil
Chile
Rest of South America
• Middle East & Africa
Saudi Arabia
UAE
Qatar
South Africa
Rest of Middle East & Africa
What our report offers:
- Market share assessments for the regional and country-level segments
- Strategic recommendations for the new entrants
- Covers Market data for the years 2022, 2023, 2024, 2026, and 2030
- Market Trends (Drivers, Constraints, Opportunities, Threats, Challenges, Investment Opportunities, and recommendations)
- Strategic recommendations in key business segments based on the market estimations
- Competitive landscaping mapping the key common trends
- Company profiling with detailed strategies, financials, and recent developments
- Supply chain trends mapping the latest technological advancements
1 Executive Summary
2 Preface
2.1 Abstract
2.2 Stake Holders
2.3 Research Scope
2.4 Research Methodology
2.4.1 Data Mining
2.4.2 Data Analysis
2.4.3 Data Validation
2.4.4 Research Approach
2.5 Research Sources
2.5.1 Primary Research Sources
2.5.2 Secondary Research Sources
2.5.3 Assumptions
3 Market Trend Analysis
3.1 Introduction
3.2 Drivers
3.3 Restraints
3.4 Opportunities
3.5 Threats
3.6 Application Analysis
3.7 Emerging Markets
3.8 Impact of Covid-19
4 Porters Five Force Analysis
4.1 Bargaining power of suppliers
4.2 Bargaining power of buyers
4.3 Threat of substitutes
4.4 Threat of new entrants
4.5 Competitive rivalry
5 Global Ammonia Cracking Catalysts Market, By Type
5.1 Introduction
5.2 Platinum Metal Group (PGM)-based Catalysts
5.3 Nickel (Ni)-based Catalysts
6 Global Ammonia Cracking Catalysts Market, By Application
6.1 Introduction
6.2 Fuel Cells
6.3 Hydrogen Production
6.4 Chemical Synthesis
6.5 Other Applications
7 Global Ammonia Cracking Catalysts Market, By Geography
7.1 Introduction
7.2 North America
7.2.1 US
7.2.2 Canada
7.2.3 Mexico
7.3 Europe
7.3.1 Germany
7.3.2 UK
7.3.3 Italy
7.3.4 France
7.3.5 Spain
7.3.6 Rest of Europe
7.4 Asia Pacific
7.4.1 Japan
7.4.2 China
7.4.3 India
7.4.4 Australia
7.4.5 New Zealand
7.4.6 South Korea
7.4.7 Rest of Asia Pacific
7.5 South America
7.5.1 Argentina
7.5.2 Brazil
7.5.3 Chile
7.5.4 Rest of South America
7.6 Middle East & Africa
7.6.1 Saudi Arabia
7.6.2 UAE
7.6.3 Qatar
7.6.4 South Africa
7.6.5 Rest of Middle East & Africa
8 Key Developments
8.1 Agreements, Partnerships, Collaborations and Joint Ventures
8.2 Acquisitions & Mergers
8.3 New Product Launch
8.4 Expansions
8.5 Other Key Strategies
9 Company Profiling
9.1 Albemarle Corporation
9.2 BASF SE
9.3 Clariant International Ltd
9.4 DOW Chemical Company
9.5 Ecolab Inc
9.6 Kraton Corporation
9.7 Orica Limited
9.8 Shell Global Solutions
9.9 Sumitomo Chemical Co., Ltd
9.10 Tosoh Corporation
List of Tables
Table 1 Global Ammonia Cracking Catalysts Market Outlook, By Region (2022-2030) ($MN)
Table 2 Global Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 3 Global Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 4 Global Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 5 Global Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 6 Global Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 7 Global Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 8 Global Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 9 Global Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)
Table 10 North America Ammonia Cracking Catalysts Market Outlook, By Country (2022-2030) ($MN)
Table 11 North America Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 12 North America Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 13 North America Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 14 North America Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 15 North America Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 16 North America Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 17 North America Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 18 North America Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)
Table 19 Europe Ammonia Cracking Catalysts Market Outlook, By Country (2022-2030) ($MN)
Table 20 Europe Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 21 Europe Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 22 Europe Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 23 Europe Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 24 Europe Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 25 Europe Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 26 Europe Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 27 Europe Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)
Table 28 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Country (2022-2030) ($MN)
Table 29 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 30 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 31 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 32 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 33 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 34 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 35 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 36 Asia Pacific Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)
Table 37 South America Ammonia Cracking Catalysts Market Outlook, By Country (2022-2030) ($MN)
Table 38 South America Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 39 South America Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 40 South America Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 41 South America Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 42 South America Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 43 South America Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 44 South America Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 45 South America Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)
Table 46 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Country (2022-2030) ($MN)
Table 47 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Type (2022-2030) ($MN)
Table 48 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Platinum Metal Group (PGM)-based Catalysts (2022-2030) ($MN)
Table 49 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Nickel (Ni)-based Catalysts (2022-2030) ($MN)
Table 50 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Application (2022-2030) ($MN)
Table 51 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Fuel Cells (2022-2030) ($MN)
Table 52 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Hydrogen Production (2022-2030) ($MN)
Table 53 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Chemical Synthesis (2022-2030) ($MN)
Table 54 Middle East & Africa Ammonia Cracking Catalysts Market Outlook, By Other Applications (2022-2030) ($MN)