Europe Hydrogen Generation Market by Source (Blue, Green, Gray), Generation & Delivery Mode, Application (Refinery, Ammonia, Methanol, Transportation, Power Generation), Country - Forecast to 2030

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USD USD 42.38 BN
MARKET SIZE, 2030
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CAGR 8.1%
(2025-2030)
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160
REPORT PAGES
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60
MARKET TABLES

OVERVIEW

Europe Hydrogen Generation Market Overview

Source: Secondary Research, Interviews with Experts, MarketsandMarkets Analysis

The Europe hydrogen generation market is projected to reach USD 42.38 billion by 2030 from USD 28.68 billion in 2025, at a CAGR of 8.1%. The hydrogen generation market in Europe is expanding due to strong policy support aimed at achieving a low-carbon energy system and long-term climate neutrality goals. Governments across the region are promoting hydrogen as a key solution for decarbonizing sectors such as refining, chemicals, steel, and heavy transportation. Increasing investments in renewable energy sources are enabling the production of green hydrogen through electrolysis. Industrial players are integrating hydrogen into their operations to reduce emissions and comply with stringent environmental regulations. Strategic initiatives and project developments by energy companies and technology providers are accelerating the deployment of hydrogen infrastructure. In addition, the focus on energy security and diversification of energy sources is further supporting the growth of the hydrogen generation market in Europe.

KEY TAKEAWAYS

  • BY COUNTRY
    The UK is projected to be the fastest-growing country at a 13.1% CAGR in Europe hydrogen generation market.
  • BY SOURCE
    The gray hydrogen segment accounted for the dominant market share of 84.7% in the Europe hydrogen generation market in 2024.
  • By GENERATION & DELIVERY MODE
    The merchant segment is likely to record the highest CAGR of 9.3% during the forecast period.
  • By APPLICATION
    The transportation segment is likely to record the highest CAGR of 15.0% during the forecast period.
  • COMPETITIVE LANDSCAPE - KEY PLAYERS
    Key players such as Linde PLC (Ireland), Air Liquide (France), Air Products and Chemicals, Inc. (US), ENGIE (France), and Ørsted A/S (Denmark) have formed strategic collaborations and project-based partnerships to explore hydrogen generation methods.
  • COMPETITIVE LANDSCAPE - STARTUPS
    Uniper SE (Germany) and HyGear (Netherlands) emerge as startups/SMEs in the Europe hydrogen generation market, driven by their focus on innovative and low-carbon hydrogen solutions

The hydrogen generation market in Europe is driven by strong decarbonization goals, supportive government policies, and rising demand for clean energy across industries such as refining, chemicals, and transportation. Increasing investments in renewable energy are enabling green hydrogen production, while growing focus on energy security and emission reduction is accelerating hydrogen adoption across the region.

TRENDS & DISRUPTIONS IMPACTING CUSTOMERS' CUSTOMERS

With the growing emphasis on reducing carbon emissions, hydrogen generation companies have been shifting their focus toward producing low-carbon or zero-carbon hydrogen from conventional hydrogen fuel to reduce their carbon footprint. Hydrogen generation companies increasingly adopt electrolysis technology or technologies such as steam methane reforming, partial oxidation, and auto thermal reforming with carbon capture to produce green hydrogen. The companies diversify their business portfolio from traditional power generation to power generation through renewables. The hydrogen generation market is undergoing a significant transformation driven by the rapid shift toward low-carbon and renewable hydrogen production methods, particularly electrolysis powered by solar and wind. Declining renewable energy costs, government incentives, and global net-zero targets accelerate this transition. Traditional methods, including steam methane reforming (SMR), face growing pressure due to carbon emissions, while emerging technologies, such as methane pyrolysis and biomass gasification, are gaining traction.

Europe Hydrogen Generation Market Disruptions

Source: Secondary Research, Interviews with Experts, MarketsandMarkets Analysis

MARKET DYNAMICS

Drivers
Impact
Level
  • Government initiatives for developing hydrogen economy
  • Growing demand for ammonia in agriculture sector
RESTRAINTS
Impact
Level
  • Energy loss during hydrogen production
  • Limited hydrogen infrastructure
OPPORTUNITIES
Impact
Level
  • Rising emphasis on achieving net-zero carbon emission targets
  • Increasing investment in low-emission fuels
CHALLENGES
Impact
Level
  • High costs associated with renewable hydrogen production

Source: Secondary Research, Interviews with Experts, MarketsandMarkets Analysis

Driver: Enforcement of stringent regulations to curb greenhouse gas emissions

Greenhouse gases (GHGs) absorb infrared radiation (heat energy) emitted from the Earth’s surface and re-radiate it, contributing to global warming. The continued rise in global GHG emissions is largely driven by rapid industrialization and heavy dependence on fossil fuels. According to the International Energy Agency (IEA), total energy-related CO2 emissions increased by 0.8% in 2024, reaching a record high of 37.8 gigatons (Gt). This contributed to atmospheric CO2 concentrations rising to 422.5 parts per million (ppm), which is approximately 3 ppm higher than in 2023 and 50% above pre-industrial levels.

Restraint: Energy loss during hydrogen production

Hydrogen is a synthetic energy carrier. It transports energy produced by various other processes. Water electrolysis converts electrical energy into hydrogen. However, in addition to producing hydrogen, high-grade electrical energy is also utilized to compress, liquefy, transport, transfer, or store the medium. Energy is needed for hydrogen production. The energy input should ideally match the energy level of the synthetic gas. Any method of producing hydrogen, such as electrolysis and reforming, involves energy transformation. The chemical energy of hydrogen is converted from electrical energy or the chemical energy of hydrocarbons. Unfortunately, energy losses are always a part of the creation of hydrogen.

Opportunity: Rising emphasis on achieving net-zero carbon emission targets

Hydrogen production goes through an unprecedented revolution under the net-zero emissions scenario. When the global output reaches 200 Mt H2 in 2030, low-carbon technologies will account for 70% of that production (electrolysis). By 2050, the amount of hydrogen produced will increase to about 500 Mt H2, almost entirely due to the implementation of low-carbon technology policies. Different technologies will be needed to alter the energy system to achieve net-zero emissions by 2050. Energy efficiency, behavioral modification, electrification, renewable energy, hydrogen and hydrogen-based fuels, and carbon capture, utilization, and storage (CCUS) are likely to play major roles in decarbonizing the energy system globally.

Challenges: High costs associated with renewable hydrogen production

Green hydrogen, produced using renewable energy sources or other low-carbon power, is increasingly recognized as a cornerstone for achieving deep decarbonization across energy-intensive and hard-to-abate sectors. Industries such as steel, cement, chemicals, heavy-duty transportation, shipping, and aviation can leverage green hydrogen to reduce carbon footprints and align with global net-zero targets significantly. Despite its environmental benefits, the commercial viability of green hydrogen remains a major challenge. Green hydrogen costs approximately two to four times higher than gray hydrogen, which is derived from fossil fuels without carbon capture. Several factors contribute to this disparity, including the high capital expenditure required for electrolyzer systems, the limited and uneven availability of low-cost renewable electricity, and the underdeveloped infrastructure for hydrogen production, storage, and distribution. These economic and logistical hurdles continue to hinder the widespread adoption of green hydrogen and restrict its contribution to the global energy transition.

EUROPE HYDROGEN GENERATION MARKET: COMMERCIAL USE CASES ACROSS INDUSTRIES

COMPANY USE CASE DESCRIPTION BENEFITS
The steel industry is one of the most carbon-intensive sectors, contributing around 7–9% of global CO2 emissions. Traditional steel manufacturing uses coal-based blast furnaces. SSAB, a leading Swedish steelmaker, aimed to decarbonize its operations but faced challenges sourcing reliable, large-scale green hydrogen for hydrogen-based Direct Reduced Iron (DRI) technology. SSAB, in collaboration with Vattenfall and LKAB, initiated the HYBRIT (Hydrogen Breakthrough Ironmaking Technology) project to revolutionize steel manufacturing by replacing coal with green hydrogen. The initiative features a 4.5 MW pilot electrolyzer powered by renewable electricity to produce fossil-free hydrogen for use in the iron and steelmaking process. The pilot plant successfully demonstrated the feasibility of fossil-free steel production and is progressing toward full-scale commercial deployment. Upon completion, the HYBRIT technology can potentially reduce Sweden’s total CO2 emissions by approximately 10%, representing a significant step toward decarbonizing one of the country’s most emission-intensive industries.
Energy utility company, RWE (Germany), set the goal to produce large-scale hydrogen for its Lingen site in Lower Saxony, Germany. As part of the TansHyDE project, GET H2 Nucleus, RWE tested various electrolysis technologies, including Sunfire’s (Germany) highly efficient high-temperature electrolysis. Initially, Sunfire delivered a 250 kW (kilowatt) system to Lingen. This high-temperature electrolyzer system will generate green hydrogen directly into RWE’s test pipeline at the power plant. As an additional pilot plant, Sunfire installed a 10 MW pressurized alkaline electrolyzer at RWE’s site in Lingen. The commercial project provides valuable insights into green hydrogen production on an industrial scale for both partners.

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MARKET ECOSYSTEM

The hydrogen generation market involves various stakeholders with distinct roles. Technology providers innovate production methods, while producers and suppliers generate and distribute hydrogen. End users drive demand across multiple industries, influenced by regulatory bodies that set standards and policies. Investors provide capital for development, and research institutions contribute knowledge and innovation. Environmental organizations advocate for sustainability, and infrastructure developers build the necessary networks, creating a collaborative environment crucial for advancing the market and promoting cleaner energy solutions.

Europe Hydrogen Generation Market Ecosystem

Logos and trademarks shown above are the property of their respective owners. Their use here is for informational and illustrative purposes only.

MARKET SEGMENTS

Europe Hydrogen Generation Market Segments

Source: Secondary Research, Interviews with Experts, MarketsandMarkets Analysis

Europe Hydrogen Generation Market, by Source

By source, the Europe hydrogen generation market is segmented into blue, gray, and green hydrogen. Among these, green hydrogen is expected to register the highest CAGR due to the region’s strong focus on decarbonization and renewable energy adoption. Increasing deployment of wind and solar energy is supporting large-scale green hydrogen production through electrolysis. In addition, supportive government policies, funding programs, and hydrogen strategies across Europe are encouraging investments in green hydrogen projects.

Europe Hydrogen Generation Market, by Generation & Delivery Mode

By generation & delivery mode, the Europe hydrogen generation market is segmented into captive and merchant. Among these, the merchant segment is expected to register the highest CAGR due to the increasing demand for outsourced hydrogen supply across multiple industries. Merchant hydrogen allows companies to procure hydrogen without investing in on-site production infrastructure. The growing expansion of hydrogen distribution networks and large-scale production facilities is further supporting the merchant supply model.

Europe Hydrogen Generation Market, by Application

By application, the Europe hydrogen generation market is segmented into petroleum refinery, ammonia production, methanol production, transportation, power generation, and others. Among these, the transportation segment is expected to register the highest CAGR due to the increasing adoption of hydrogen as a clean fuel for mobility. Hydrogen fuel cells are gaining traction in heavy-duty vehicles, buses, and long-haul transport as they offer zero-emission operation and faster refueling compared to conventional battery systems. Governments across Europe are also promoting hydrogen-powered mobility through supportive policies and infrastructure development. In addition, investments in hydrogen refueling stations and fuel cell technologies are accelerating market growth.

REGION

Russia is estimated to be the largest market in Europe during the forecast period

Russia holds the largest share in the Europe hydrogen generation market due to its abundant natural gas resources and strong industrial base. The country has a well-established refining, chemical, and fertilizer industry that requires significant volumes of hydrogen. Large-scale hydrogen production through natural gas-based processes is widely supported by existing infrastructure. In addition, the presence of major energy companies and integrated petrochemical complexes strengthens hydrogen demand. Russia is also exploring opportunities to expand hydrogen production for export markets. These factors contribute to its leading position in the Europe hydrogen generation market.

Europe Hydrogen Generation Market Region

EUROPE HYDROGEN GENERATION MARKET: COMPANY EVALUATION MATRIX

Linde PLC is a star player in the Europe hydrogen generation market due to its strong technological expertise, extensive hydrogen production capabilities, and well-established industrial gas infrastructure across the region. ENGIE is emerging as a key leader in the Europe hydrogen generation market, driven by its strong focus on renewable-based hydrogen production and energy transition initiatives. The company is actively developing green hydrogen projects and investing in electrolysis technologies to support Europe’s decarbonization goals.

Europe Hydrogen Generation Market Evaluation Metrics

Source: Secondary Research, Interviews with Experts, MarketsandMarkets Analysis

KEY MARKET PLAYERS

MARKET SCOPE

REPORT METRIC DETAILS
Market Size in 2024 (Value) USD 26.26 BN
Market Forecast in 2030 (Value) USD 42.38 BN
Growth Rate CAGR of 8.1% from 2025–2030
Years Considered 2020–2030
Base Year 2024
Forecast Period 2025–2030
Units Considered Value (USD MN/BN), Volume (Thousand Metric Tons)
Report Coverage Revenue Forecast, Company Ranking, Competitive Landscape, Growth Factors, and Trends
Segments Covered
  • By Source:
    • Blue
    • Gray
    • Green
  • By Generation & Delivery Mode:
    • Captive
    • Merchant
  • By Application:
    • Petroleum Refinery
    • Ammonia Production
    • Methanol Production
    • Transportation
    • Power Generation
    • Others
Countries Covered UK, Germany, Russia, France, Rest of Europe

WHAT IS IN IT FOR YOU: EUROPE HYDROGEN GENERATION MARKET REPORT CONTENT GUIDE

Europe Hydrogen Generation Market Content Guide

RECENT DEVELOPMENTS

  • February 2025 : Air Liquide entered a strategic partnership with TotalEnergies to jointly develop two large-scale green hydrogen projects in the Netherlands, with a total investment of over USD 1 billion. Air Liquide will build, own, and operate the 200 MW "ELYgator" electrolyzer at Maasvlakte in Rotterdam, supplying up to 23,000 tons of renewable hydrogen annually to TotalEnergies’ industrial site—and using renewable power from the OranjeWind and Hollandse Kust Zuid offshore wind farms—expected to be online by 2027 end. The two companies have also created a 50/50 joint venture to build a 250 MW electrolyzer near the Zeeland refinery, set to produce about 30,000 tons of green hydrogen per year when it launches in 2029, reducing CO2 emissions at the Zeeland and Antwerp platforms by up to 450,000 tons annually.
  • December 2024 : Saudi Arabian Oil Co. entered a shareholders’ agreement with Linde PLC and SLB to develop one of the world’s largest carbon capture and storage (CCS) hubs in Jubail, Saudi Arabia. In this deal, Aramco will hold a 60% stake, while Linde and SLB will each hold 20%. The project aims to capture and store up to 9 million tons of CO2 annually by 2027 through a network of pipelines and underground storage in a saline aquifer. This CCS hub is also designed to support Aramco’s blue hydrogen and ammonia programs by providing the carbon capture infrastructure needed to produce low-carbon fuels.
  • November 2024 : ENGIE entered a strategic partnership with Morocco’s OCP Group to accelerate the production of green hydrogen and green ammonia, alongside renewable energy, storage, electrical infrastructure, desalination, and R&D efforts. The deal commits both parties to co-develop large-scale projects—feasibility studies for e-methanol and sustainable aviation fuel—supporting Morocco’s industrial decarbonization ambitions and clean energy transition.
  • January 2024 : Air Products and Chemicals, Inc. entered a 15-year agreement with TotalEnergies to supply 70,000 tons of green hydrogen annually to TotalEnergies’ refineries and biorefineries in Northern Europe starting in 2030. This supply will help TotalEnergies replace fossil-based hydrogen, enabling a reduction of approximately 700,000 tons of CO2 emissions per year. The deal supports TotalEnergies’ goal of cutting Scope 1 and 2 emissions by 40% by 2030 (vs. 2015 levels).
  • May 2021 : Orsted A/S, recognized as the most sustainable energy company globally, and POSCO Group, one of Korea’s largest conglomerates, signed an MoU to enhance their partnership in the fields of offshore wind and renewable hydrogen in Korea.

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Methodology

The study involved major activities in estimating the current size of the europe hydrogen generation market. Exhaustive secondary research was done to collect information on the peer and parent markets. The next step was to validate these findings, assumptions, and sizing with industry experts across the value chain through primary research. Both top-down and bottom-up approaches were employed to estimate the complete market size. Thereafter, market breakdown and data triangulation were used to estimate the market size of the segments and subsegments.

Secondary Research

The secondary sources referred to for this research study include annual reports, press releases, investor presentations of companies, white papers, certified publications, articles from recognized authors, and databases of various companies and associations. Secondary research was mainly used to obtain key information about the industry’s supply chain, the market’s monetary chain, the total pool of key players, market classification and segmentation according to industry trends to the bottom-most level, regional markets, and key developments from market- and technology-oriented perspectives.

Primary Research

In the primary research process, various primary sources from the supply and demand sides were interviewed to obtain qualitative and quantitative information for this report. Primary sources from the supply side include industry experts, such as CEOs, vice presidents, marketing directors, technology & innovation directors, and related key executives from various companies and organizations operating in the europe hydrogen generation market.

In the complete market engineering process, the top-down and bottom-up approaches and several data triangulation methods were extensively used to perform market estimation and market forecasts for the overall market segments and subsegments listed in this report. Extensive qualitative and quantitative analysis was conducted on the complete market engineering process to list key information/insights throughout the report.

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Market Size Estimation

The top-down and bottom-up approaches were used to estimate and validate the size of the europe hydrogen generation market and to evaluate the sizes of various other dependent submarkets. Key players in the market were identified through secondary research, and their shares in the respective regions were determined through primary and secondary research. This entire procedure included the study of annual and financial reports of top market players and extensive interviews for key insights with industry leaders, such as CEOs, VPs, directors, and marketing executives. All percentage shares, splits, and breakdowns were determined using secondary sources and verified through primary sources. All possible parameters that affect the markets covered in this research study were accounted for, viewed in extensive detail, verified through primary research, and analyzed to get the final quantitative and qualitative data.

 

Data Triangulation

After arriving at the overall market size from the estimation process explained below, the total market was split into several segments and subsegments. The data triangulation and market breakdown procedures were employed, wherever applicable, to complete the overall market engineering process and arrive at the exact statistics for all the segments and subsegments. The data was triangulated by studying various factors and trends from the demand and supply sides.

Market Definition

Hydrogen is the lightest and most abundant element in the universe, widely valued for its exceptional energy-carrying capacity. It can be produced either as a primary product or as a by-product from diverse energy sources, including renewables (wind and solar), fossil fuels (coal and natural gas), and nuclear power. Due to its high energy content per unit mass, hydrogen serves as a highly versatile energy carrier. It is critical in various industrial processes, chemical manufacturing, and emerging clean energy applications. The europe hydrogen generation market is defined as the sum of the revenue generated by companies producing hydrogen through various technologies, such as electrolysis, steam methane reforming (SMR), auto thermal reforming (ATR), partial oxidation (POX), and coal gasification.

Stakeholders

  • Fuel cell electric vehicle (FCEV) manufacturers
  • Government organizations
  • Hydrogen charging station owners
  • Hydrogen fuel pump developers and operators
  • Hydrogen generation equipment manufacturers and suppliers
  • Hydrogen generation infrastructure developers
  • Institutional investors
  • Merchant hydrogen producers
  • Methanol producers
  • Refinery operators
  • Research institutes

Report Objectives

  • To describe and forecast the europe hydrogen generation market, by technology, generation and delivery mode, application, source, and region, in terms of value
  • To describe and forecast the europe hydrogen generation market, by technology, generation and delivery mode, application, source, and region, in terms of volume
  • To forecast the market size across four key regions: North America, Europe, Asia Pacific, the Middle East, Africa, and South America, along with country-level analysis, in terms of value and volume
  • To provide detailed information regarding key drivers, restraints, opportunities, and challenges influencing the growth of the europe hydrogen generation market
  • To provide the supply chain analysis, trends/disruptions impacting customer business, ecosystem analysis, regulatory landscape, patent analysis, case study analysis, technology analysis, key conferences & events, the impact of AI/Gen AI, pricing analysis, porter’s five forces analysis, regulatory analysis, and the impact of 2025 US tariff on the europe hydrogen generation market
  • To analyze opportunities for stakeholders and provide a detailed competitive landscape of the market leaders
  • To strategically analyze micromarkets with respect to individual growth trends, prospects, and contributions to the overall market size
  • To benchmark players within the market using the company evaluation matrix, which analyzes market players based on several parameters within the broad categories of business and product strategies
  • To compare key market players with respect to product specifications and applications
  • To strategically profile key players and comprehensively analyze their market rankings and core competencies
  • To analyze competitive developments, such as contracts, agreements, expansions, investments, acquisitions, partnerships, collaborations, and joint ventures, in the europe hydrogen generation market

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  • Further breakdown of the europe hydrogen generation market, by country for the Europe, Asia Pacific, North America, Middle East, Africa, and South America regions

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  • Detailed analysis and profiling of additional market players (up to five)

 

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