Published by Todd Bush on October 7, 2024
Researchers have developed a stable covalent organic framework (COF) based on phosphonic acids, with potential for large-scale CO2 capture.
A solvent-free, scalable synthesis method and water-resistant properties make these COFs suitable for various applications, including greenhouse gas reduction.
A team of international researchers, led by Heinrich Heine University Düsseldorf (HHU) and the University of Siegen, has synthesized a new compound that forms a covalent organic framework.
>> In Other News: NewsBP, Equinor GBP4 Billion Carbon Capture Project Approved in UK
This compound, based on condensed phosphonic acids, is highly stable and can be used for applications such as capturing carbon dioxide (CO2), as detailed by the researchers in the journal Nature Communications.
Covalent organic frameworks (for short: COFs) are a class of porous crystalline materials, that form scaffold-like structures. The term “covalent” denotes that chemical bonds between the individual building blocks of the framework are formed via shared electron pairs.
On the basis of phosphonic acid, the research team has developed a stable covalent organic framework, which is capable of capturing carbon dioxide (CO2).
A research team headed by Dr. Gündoğ Yücesan, Heisenberg Junior Research Group Leader at the Section for Nanoporous and Nanoscale Materials at HHU, and Professor Dr. Jörn Schmedt auf der Günne, leader of the Inorganic Materials Chemistry group at the University of Siegen, now presents a simple approach to this family of frameworks, the members of which are particularly stable and promise great application potential.
Researchers from Berlin, Bremen, Saarbrucken, Turkey, and the United Kingdom were also involved in the study, which has now been published in Nature Communications.
The class of polyphosphonate covalent organic frameworks is characterized by phosphorus-oxygen-phosphorus bonds, which comprise simple organic phosphonic acid building blocks and – almost like Lego bricks – can be joined together by heating them to temperatures of just approx. 200 degrees Celsius.
Dr. Yücesan: “The special property of these COFs is that, despite the mild synthesis conditions, they exhibit good water and water vapor stability, meaning that – by contrast with compounds developed to date – they can be used in water and electrolytes.”
A further milestone was the development of a sustainable synthesis route. Yücesan: “For the first time, a solid-state synthesis process has been developed for COFs, which can be realized completely without solvents. This method enables low-cost, scalable production from kilograms to tonnes, making it more cost-effective compared with other microporous materials.”
One challenge for the researchers was that the compounds did not crystallize well and are amorphous. They succeeded in finding evidence for the bonds by means of nuclear magnetic resonance.
Professor Schmedt auf der Günne: “If we had not been able to use the common states of neighboring phosphorus atom nuclei, the bonding structure of the substance would have remained in the dark and the properties would not have been understood.”
Polyphosphonates of this type have great application potential. The framework structures can capture the harmful greenhouse gas CO2. A slight change in pressure can release it again. “Such substances are needed for waste gas cleaning and to prevent greenhouse gas emissions,” the authors of the study note.
Reference:“Polyphosphonate covalent organic frameworks” by Ke Xu, Robert Oestreich, Takin Haj Hassani Sohi, Mailis Lounasvuori, Jean G. A. Ruthes, Yunus Zorlu, Julia Michalski, Philipp Seiffert, Till Strothmann, Patrik Tholen, A. Ozgur Yazaydin, Markus Suta, Volker Presser, Tristan Petit, Christoph Janiak, Jens Beckmann, Jörn Schmedt auf der Günne and Gündoğ Yücesan, 9 September 2024, Nature Communications.DOI: 10.1038/s41467-024-51950-1
Follow the money flow of climate, technology, and energy investments to uncover new opportunities and jobs.
Inside This Issue 🌊 Startups Turn to the Oceans to Capture Carbon: A Spotlight on Innovators ✈️ Avina Clean Hydrogen and Gov. Pritzker Announce Sustainable Aviation Fuel Facility in Southwest Illi...
Inside This Issue 🌍 5 Key Carbon Removal Innovations That Shaped 2024 🧪 New Material Could Capture Millions of Tonnes of Atmospheric Carbon 💰 DOE Re-opens Funding Opportunity, Making $500 Million ...
Inside This Issue 💰 OCED Announces up to $1.8 Billion in New Funding for Transformational Direct Air Capture Technologies 🌱 BP Announces Investment Decision for “Lingen Green Hydrogen” Project 🧪 C...
SEFA Rebrands to Heidelberg Materials
Heidelberg Materials North America is pleased to announce that its subsidiary, SEFA, has joined the Heidelberg Materials brand effective today. Irving, Texas, Jan. 02, 2025 (GLOBE NEWSWIRE) -- Hei...
HERACLES, a member of Holcim Group, signed today a Front-End Engineering Design (FEED) contract with Air Liquide Engineering and Construction (E&C) for the CO2 capturing, liquefaction, storage,...
Critical Year for Pathways Alliance’s $16.5 Billion Carbon Capture Project
The Pathways Alliance, a coalition of major oilsands producers, faces a pivotal year for its ambitious $16.5 billion carbon capture, utilization, and storage (CCUS) project in northern Alberta. De...
US to Issue Hydrogen Credit Rule This Week, With Path for Nuclear, Sources Say
WASHINGTON/NEW YORK, Dec 31 (Reuters) - The U.S. Treasury Department intends to release guidance on how to access tax credits for hydrogen production under the 2022 Inflation Reduction Act later th...
Follow the money flow of climate, technology, and energy investments to uncover new opportunities and jobs.