[HTML][HTML] Technologies and policies to decarbonize global industry: Review and assessment of mitigation drivers through 2070

J Rissman, C Bataille, E Masanet, N Aden… - Applied energy, 2020 - Elsevier
Fully decarbonizing global industry is essential to achieving climate stabilization, and
reaching net zero greenhouse gas emissions by 2050–2070 is necessary to limit global …

A review of technology and policy deep decarbonization pathway options for making energy-intensive industry production consistent with the Paris Agreement

C Bataille, M Åhman, K Neuhoff, LJ Nilsson… - Journal of Cleaner …, 2018 - Elsevier
The production of commodities by energy-intensive industry is responsible for 1/3 of annual
global greenhouse gas (GHG) emissions. The climate goal of the Paris Agreement, to hold …

An industrial policy framework for transforming energy and emissions intensive industries towards zero emissions

LJ Nilsson, F Bauer, M Åhman, FNG Andersson… - Climate …, 2021 - Taylor & Francis
The target of zero emissions sets a new standard for industry and industrial policy. Industrial
policy in the twenty-first century must aim to achieve zero emissions in the energy and …

[HTML][HTML] The transition of energy intensive processing industries towards deep decarbonization: Characteristics and implications for future research

JH Wesseling, S Lechtenböhmer, M Åhman… - … and Sustainable Energy …, 2017 - Elsevier
Energy-intensive processing industries (EPIs) produce iron and steel, aluminum, chemicals,
cement, glass, and paper and pulp and are responsible for a large share of global …

Decarbonising the energy intensive basic materials industry through electrification–Implications for future EU electricity demand

S Lechtenböhmer, LJ Nilsson, M Åhman, C Schneider - Energy, 2016 - Elsevier
The need for deep decarbonisation in the energy intensive basic materials industry is
increasingly recognised. In light of the vast future potential for renewable electricity the …

[HTML][HTML] Mitigation options for decarbonization of the non-metallic minerals industry and their impacts on costs, energy consumption and GHG emissions in the EU …

K Korczak, M Kochański, T Skoczkowski - Journal of Cleaner Production, 2022 - Elsevier
The non-metallic minerals industry is the third-largest industrial energy consumer, and it
constitutes around 7% of global CO 2 emissions due to the high energy intensity of …

[HTML][HTML] Circular steel for fast decarbonization: Thermodynamics, kinetics, and microstructure behind upcycling scrap into high-performance sheet steel

D Raabe, M Jovičević-Klug, D Ponge… - Annual review of …, 2024 - annualreviews.org
Steel production accounts for approximately 8% of all global CO2 emissions, with the
primary steelmaking route using iron ores contributing approximately 80% of those …

Industry transformations for high service provisioning with lower energy and material demand: a review of models and scenarios

D Wiedenhofer, J Streeck, F Wiese… - Annual Review of …, 2024 - annualreviews.org
Developing transformative pathways for industry's compliance with international climate
targets requires model-based insights into how supply-and demand-side measures affect …

[HTML][HTML] From knowledge gaps to technological maturity: A comparative review of pathways to deep emission reduction for energy-intensive industries

P Diesing, G Lopez, P Blechinger, C Breyer - Renewable and Sustainable …, 2025 - Elsevier
Energy intensive industries, such as steel, cement, basic chemicals, aluminium, glass as
well as pulp and paper contribute substantial amounts of greenhouse gas emissions, which …

Lock-in of mature innovation systems: the transformation toward clean concrete in the Netherlands

JH Wesseling, A Van der Vooren - Journal of cleaner production, 2017 - Elsevier
Energy-intensive processing industries like the concrete industry form the base of the
economy and account for a large part of global greenhouse gas emissions. Sectoral …