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Review of hydrogen production using chemical-looping technology

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TLDR
In this article, the authors give an overview on the recent advances of two categories, chemical looping reforming (CLR) and Chemical looping hydrogen production (CLH), and the existing technical problems and the aspects of future research of each approach are also summarized.
Abstract
Hydrogen is an attractive energy carrier due to its potentially high energy efficiency and low generation of pollutants, which can be used for transportation and stationary power generation. However, hydrogen is not readily available in sufficient quantities and the production cost is still high. Steam methane reforming (SMR) process is now the most widely used technology for H 2 production, but this process is complex and cannot get thorough carbon capture. Hydrogen production using chemical looping technology has received a great deal of attention in recent years because it can produce hydrogen with higher process efficiency and can capture carbon dioxide. Many researchers have carried out intensive research work on the hydrogen production processes using chemical looping technology. Based on the previous studies stated in the literature, the authors try to give an overview on the recent advances of two categories, chemical looping reforming (CLR) and chemical looping hydrogen production (CLH) processes. Besides, the characteristics of the processes are pointed out based on the comparison with the conventional SMR process. The existing technical problems and the aspects of future research of each approach are also summarized.

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Citations
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Hydrogen production for energy: An overview

TL;DR: In this article, the authors presented the hydrogen-based energy system as four corners (stages) of a square shaped integrated whole to demonstrate the interconnection and interdependency of these main stages.
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A review on catalyst development for dry reforming of methane to syngas: Recent advances

TL;DR: In this paper, a review provides a contemporary assessment of progresses recorded on synergistic interplay among catalyst components (active metals, support, promoters and binders) during dry reforming using state-of-the-art experimental and theoretical techniques.
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A systematic review on CO2 capture with ionic liquids: Current status and future prospects

TL;DR: In this article, a review of previous engineering and research works on various CO2 capture techniques using ionic liquids (ILs) is presented, focusing on the thermodynamic and mass transfer aspects.
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Hydrogen in energy transition: A review

TL;DR: In this paper, the authors reviewed recent developments of hydrogen technologies, their social, industrial, and environmental standing, as well as the stage of transitioning economies of both advanced and beginner countries.
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Chemical looping beyond combustion – a perspective

TL;DR: In this article, the use of oxygen carriers or redox catalysts for chemical production has been investigated and shown to offer significant opportunities for process intensification and exergy loss minimization.
References
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Journal ArticleDOI

World Energy Outlook

M.W. Thring
Journal ArticleDOI

Progress in chemical-looping combustion and reforming technologies

TL;DR: A comprehensive review of the Chemical-Looping Combustion (CLC) and ChemicalLooping Reforming (CLR) processes reporting the main advances in these technologies up to 2010 is presented in this article.
Journal ArticleDOI

Solar thermochemical production of hydrogen--a review

TL;DR: In this paper, the authors review the underlying science and describes the technological advances in the field of solar thermochemical production of hydrogen that uses concentrated solar radiation as the energy source of high-temperature process heat.
Journal ArticleDOI

Fuel processing for low-temperature and high-temperature fuel cells: Challenges, and opportunities for sustainable development in the 21st century

TL;DR: In this article, the authors discuss the needs for fundamental changes in the energy system for major efficiency improvements in terms of global resource limitation and sustainable development, and discuss the strategies and options of fuel processors depend on the type of fuel cells and applications.
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