Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis

Recently, several technical and political efforts targeted the reduction of CO2 levels in the at- mosphere, accompanied by a strong incentivization of carbon-neutral fuel production. In this context, a methanol synthesis plant using H2 originated from electrolysis powered with nuclear energy from fo...

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Main Authors: Marcello Maria Bozzini, Margherita Signorelli, Emanuele Moioli, Flavio Manenti
Format: Article
Language:English
Published: Elsevier 2025-11-01
Series:Journal of CO2 Utilization
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Online Access:http://www.sciencedirect.com/science/article/pii/S2212982025001702
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author Marcello Maria Bozzini
Margherita Signorelli
Emanuele Moioli
Flavio Manenti
author_facet Marcello Maria Bozzini
Margherita Signorelli
Emanuele Moioli
Flavio Manenti
author_sort Marcello Maria Bozzini
collection DOAJ
description Recently, several technical and political efforts targeted the reduction of CO2 levels in the at- mosphere, accompanied by a strong incentivization of carbon-neutral fuel production. In this context, a methanol synthesis plant using H2 originated from electrolysis powered with nuclear energy from fourth-generation micro-modular reactors is proposed here. This latest generation of nuclear reactors aims to transform the energy sector by enhancing the scalability, efficiency, safety, and sustainability of nuclear power. Prefabricated plants can be easily transported and installed at lower costs and with more flexibility, enabling an easier integration with chemi- cal plants. The purpose of this work is to perform an eco-techno-economic assessment of the methanol production fueled by nuclear-power-driven electrolysis and captured CO2. The re- search involves the assessment of the integration of the methanol plant with various technologies for capturing and utilizing CO2 (Direct Air Capture, Carbon Capture of flue gases, or utilizing cheap CO2 from companies). The analysis emphasizes the positive impact of the coupling of electricity production, chemical synthesis and carbon capture in reducing greenhouse gas emis- sions and improving energy efficiency. The findings indicate that the integration of methanol synthesis with carbon capture presents considerable environmental benefits in comparison to tra- ditional methanol plants. Significant reductions compared to state of the art in CO2 emissions were observed, ranging from −0.94 to −1.06 kgCO2-eq/kgMeOH of the proposed technologies, in contrast to the 0.5–4.3 kgCO2-eq/kgMeOH range for traditional plants. The economic analysis showed that the levelized cost of methanol production is 1809$ per ton in the worst-case scenario with DAC, and 1381$ and 1283$ per ton with CCU and benchmark technologies, respectively. These values are expected to decrease with the technological advances. Reducing the CapEx (of the DAC unit and nuclear batteries) and incorporating additional energy optimizations are the main drivers of the further enhancement of the economic competitiveness of the process.
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spelling doaj-art-91fdb99e75b24529b4665565a8be7ff72025-08-20T04:01:01ZengElsevierJournal of CO2 Utilization2212-98392025-11-0110110318610.1016/j.jcou.2025.103186Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysisMarcello Maria Bozzini0Margherita Signorelli1Emanuele Moioli2Flavio Manenti3Politecnico di Milano, Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”, Piazza Leonardo da Vinci 32, Milano 20133, ItalyPolitecnico di Milano, Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”, Piazza Leonardo da Vinci 32, Milano 20133, ItalyPolitecnico di Milano, Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”, Piazza Leonardo da Vinci 32, Milano 20133, Italy; Paul Scherrer Institut, Center for Energy and Environmental Science, Forschunsstrasse 111, Villigen 5232, SwitzerlandPolitecnico di Milano, Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”, Piazza Leonardo da Vinci 32, Milano 20133, Italy; Corresponding author.Recently, several technical and political efforts targeted the reduction of CO2 levels in the at- mosphere, accompanied by a strong incentivization of carbon-neutral fuel production. In this context, a methanol synthesis plant using H2 originated from electrolysis powered with nuclear energy from fourth-generation micro-modular reactors is proposed here. This latest generation of nuclear reactors aims to transform the energy sector by enhancing the scalability, efficiency, safety, and sustainability of nuclear power. Prefabricated plants can be easily transported and installed at lower costs and with more flexibility, enabling an easier integration with chemi- cal plants. The purpose of this work is to perform an eco-techno-economic assessment of the methanol production fueled by nuclear-power-driven electrolysis and captured CO2. The re- search involves the assessment of the integration of the methanol plant with various technologies for capturing and utilizing CO2 (Direct Air Capture, Carbon Capture of flue gases, or utilizing cheap CO2 from companies). The analysis emphasizes the positive impact of the coupling of electricity production, chemical synthesis and carbon capture in reducing greenhouse gas emis- sions and improving energy efficiency. The findings indicate that the integration of methanol synthesis with carbon capture presents considerable environmental benefits in comparison to tra- ditional methanol plants. Significant reductions compared to state of the art in CO2 emissions were observed, ranging from −0.94 to −1.06 kgCO2-eq/kgMeOH of the proposed technologies, in contrast to the 0.5–4.3 kgCO2-eq/kgMeOH range for traditional plants. The economic analysis showed that the levelized cost of methanol production is 1809$ per ton in the worst-case scenario with DAC, and 1381$ and 1283$ per ton with CCU and benchmark technologies, respectively. These values are expected to decrease with the technological advances. Reducing the CapEx (of the DAC unit and nuclear batteries) and incorporating additional energy optimizations are the main drivers of the further enhancement of the economic competitiveness of the process.http://www.sciencedirect.com/science/article/pii/S2212982025001702Methanol synthesisPurple MethanolElectrolysisDirect Air CaptureCO2 mitigationTechno-economic analysis
spellingShingle Marcello Maria Bozzini
Margherita Signorelli
Emanuele Moioli
Flavio Manenti
Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
Journal of CO2 Utilization
Methanol synthesis
Purple Methanol
Electrolysis
Direct Air Capture
CO2 mitigation
Techno-economic analysis
title Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
title_full Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
title_fullStr Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
title_full_unstemmed Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
title_short Techno-economic-assessment of the methanol synthesis from captured CO2 and modular nuclear power-based electrolysis
title_sort techno economic assessment of the methanol synthesis from captured co2 and modular nuclear power based electrolysis
topic Methanol synthesis
Purple Methanol
Electrolysis
Direct Air Capture
CO2 mitigation
Techno-economic analysis
url http://www.sciencedirect.com/science/article/pii/S2212982025001702
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AT margheritasignorelli technoeconomicassessmentofthemethanolsynthesisfromcapturedco2andmodularnuclearpowerbasedelectrolysis
AT emanuelemoioli technoeconomicassessmentofthemethanolsynthesisfromcapturedco2andmodularnuclearpowerbasedelectrolysis
AT flaviomanenti technoeconomicassessmentofthemethanolsynthesisfromcapturedco2andmodularnuclearpowerbasedelectrolysis