Monday, February 16, 2026

 

Rapid microwave method creates high performance carbon material for carbon dioxide capture




Biochar Editorial Office, Shenyang Agricultural University
Rapid microwave synthesis of nitrogen-doped ultramicroporous coal-based carbon with enhanced CO2 adsorption performance 

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Rapid microwave synthesis of nitrogen-doped ultramicroporous coal-based carbon with enhanced CO2 adsorption performance

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Credit: Yulin Feng, Xiaoxiao Meng, Jingyu Li, Naiyuan Xue, Wanjing Li, Miaoting Sun, Jiaxiang Chen, Xingxing Wang, Ruida Zhou, Wenjun Zhuang, Jihui Gao, Guangbo Zhao & Wei Zhou





Scientists have developed a fast and energy efficient way to produce advanced carbon materials capable of capturing carbon dioxide, a major greenhouse gas driving climate change. The new method dramatically reduces production time while improving adsorption performance, offering a promising pathway toward low cost carbon capture technologies.

In a recent study, researchers designed a novel strategy that combines pre oxidation treatment with microwave activation to create nitrogen doped ultramicroporous carbon derived from coal. The material demonstrates exceptional ability to capture and selectively separate carbon dioxide from gas mixtures.

“Carbon capture technologies must become faster, more efficient, and scalable if we hope to meet global climate targets,” said the study’s corresponding author. “Our work shows that microwave assisted synthesis can simultaneously improve material performance while dramatically reducing energy consumption.”

Carbon based adsorbents are widely studied for carbon dioxide capture because of their high stability and tunable pore structures. However, traditional preparation methods rely on long periods of high temperature heating, often lasting more than an hour, which consumes large amounts of energy and limits the retention of key functional elements that enhance adsorption performance. The new microwave based approach addresses these challenges by using volumetric heating to rapidly activate carbon precursors and preserve nitrogen and oxygen functional groups that strongly attract carbon dioxide molecules.

The research team used Ningdong coal as a raw material and introduced an innovative pre oxidation step before microwave processing. This pretreatment creates oxygen containing active sites that enable efficient incorporation of nitrogen atoms during microwave activation. The resulting carbon material contains a high concentration of adsorption active sites and a large number of ultramicropores with widths between 0.6 and 0.7 nanometers, which closely match the size of carbon dioxide molecules.

Experimental results show that the optimized carbon sample achieved a carbon dioxide uptake capacity of 4.72 millimoles per gram at zero degrees Celsius and 3.33 millimoles per gram at room temperature. The material also demonstrated strong selectivity for carbon dioxide over nitrogen, which is essential for practical gas separation applications.

Beyond performance improvements, the new method offers significant energy savings. Conventional activation processes typically require high power furnace heating for extended periods, consuming large amounts of electricity. In contrast, the microwave synthesis approach can produce high quality activated carbon within approximately ten minutes while maintaining high microwave absorption efficiency. This rapid processing reduces overall energy consumption by nearly two orders of magnitude.

The study also revealed important insights into how pore structure and surface chemistry work together to enhance carbon capture performance. Increasing nitrogen doping improved the chemical affinity of the carbon surface toward carbon dioxide molecules, while ultramicroporous structures strengthened physical adsorption through strong molecular confinement effects.

“The synergy between surface functional groups and precisely controlled pore structures is the key to achieving high adsorption efficiency,” the researchers explained. “Our findings provide new guidance for designing next generation porous carbon materials for carbon capture and gas separation.”

The researchers believe that their scalable synthesis strategy could accelerate the development of industrial carbon capture technologies. Because the process uses inexpensive coal resources and rapid microwave heating, it offers strong potential for large scale manufacturing of advanced adsorbents.

As global demand for carbon capture solutions continues to grow, innovations such as this microwave assisted synthesis approach may play a crucial role in reducing greenhouse gas emissions and supporting the transition toward carbon neutrality.

 

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Journal reference: Feng Y, Meng X, Li J, Xue N, Li W, et al. 2026. Rapid microwave synthesis of nitrogen-doped ultramicroporous coal-based carbon with enhanced CO2 adsorption performance. Sustainable Carbon Materials 2: e006 doi: 10.48130/scm-0026-0001  

https://www.maxapress.com/article/doi/10.48130/scm-0026-0001  

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About Sustainable Carbon Materials:

Sustainable Carbon Materials (e-ISSN 3070-3557) is a multidisciplinary platform for communicating advances in fundamental and applied research on carbon-based materials. It is dedicated to serving as an innovative, efficient and professional platform for researchers in the field of carbon materials around the world to deliver findings from this rapidly expanding field of science. It is a peer-reviewed, open-access journal that publishes review, original research, invited review, rapid report, perspective, commentary and correspondence papers.

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New fluorescent strategy could unlock the hidden life cycle of microplastics inside living organisms






Biochar Editorial Office, Shenyang Agricultural University
Challenges in assessing ecological and health risks of microplastics and nanoplastics: tracking their dynamics in living organisms 

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Challenges in assessing ecological and health risks of microplastics and nanoplastics: tracking their dynamics in living organisms

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Credit: Dongdong Zhang, Bo Ren, Hailong Liu, Chao Li, Xiangrui Wang & Wenhong Fan





Microplastics and nanoplastics are now found everywhere on Earth, from ocean depths to agricultural soils and even inside the human body. Yet scientists still struggle to understand what these particles actually do once they enter living organisms. A new study proposes an innovative fluorescence-based strategy that could allow researchers to track microplastics in real time as they move, transform, and degrade inside biological systems.

Global plastic production now exceeds 460 million tons annually, with millions of tons of microplastics and nanoplastics entering the environment each year. These particles have been detected in marine animals, birds, and human tissues including blood, liver, and even brain samples. While laboratory studies have linked exposure to inflammation, organ damage, and developmental effects, a major scientific gap remains.

“Most current methods give us only a snapshot in time,” said corresponding author Wenhong Fan. “We can measure how many particles are present in a tissue, but we cannot directly observe how they travel, accumulate, transform, or break down inside living organisms.”

Traditional detection approaches such as infrared spectroscopy and mass spectrometry require destructive sampling. As a result, researchers cannot follow the dynamic behavior of particles over time. Fluorescence imaging offers a promising alternative, but existing labeling methods often suffer from unstable signals, dye leakage, or fluorescence quenching in complex biological environments.

To overcome these challenges, the research team proposes a fluorescent monomer controlled synthesis strategy. Instead of attaching fluorescent dyes to the surface of microplastics, the method builds fluorescence directly into the polymer structure using aggregation induced emission materials. These specially designed monomers emit stronger light when aggregated, reducing signal loss and improving imaging stability.

The approach allows precise control over particle brightness, emission wavelength, size, and shape. Because fluorescent groups are uniformly distributed throughout each particle, both intact plastics and their degradation fragments can remain visible. This makes it possible to track the entire life cycle of microplastics from ingestion and transport to transformation and eventual breakdown.

Although the strategy is still undergoing experimental validation, its design is grounded in well established principles of polymer chemistry and biocompatible fluorescence imaging. The researchers believe it could provide a powerful new tool for understanding how microplastics interact with cells, tissues, and organs.

“Clarifying the transport and transformation processes of microplastics inside organisms is essential for assessing their true ecological and health risks,” Fan said. “Dynamic tracking will help us move beyond simple exposure measurements toward a deeper understanding of toxicity mechanisms.”

As concern over plastic pollution continues to grow, technologies that reveal what happens inside living systems may be critical for shaping future risk assessment and regulatory decisions.

 

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Journal reference: Zhang D, Ren B, Liu H, Li C, Wang X, et al. 2026. Challenges in assessing ecological and health risks of microplastics and nanoplastics: tracking their dynamics in living organisms. New Contaminants 2: e006 doi: 10.48130/newcontam-0026-0003  

https://www.maxapress.com/article/doi/10.48130/newcontam-0026-0003  

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About the Journal:

New Contaminants (e-ISSN 3069-7603) is an open-access journal focusing on research related to emerging pollutants and their remediation.

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Singapore’s first ancient shipwreck reveals record cargo of Yuan dynasty blue-and-white porcelain





KeAi Communications Co., Ltd.
YUAN DYNASTY BLUE-AND-WHITE PORCELAIN BOWL FRAGMENT PAINTED WITH A DRAGON INSIDE, 14TH CENTURY. 

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YUAN DYNASTY BLUE-AND-WHITE PORCELAIN BOWL FRAGMENT PAINTED WITH A DRAGON INSIDE, 14TH CENTURY.

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Credit: DR MICHAEL FLECKER






A maritime archaeological excavation in Singapore waters has uncovered the Temasek Wreck—an assemblage that is both locally unprecedented and globally significant for Yuan dynasty ceramics. The excavation, carried out intermittently between 2016 and 2019, recovered approximately 3.5 tonnes of ceramic shards along with a small number of intact or nearly intact pieces.

Most striking is the scale of the Yuan blue-and-white porcelain: the author Dr Michael Flecker, from HeritageSG, a subsidiary of Singapore National Heritage Board, reports that the wreck is "the first ancient shipwreck ever found in Singapore waters", and that its blue-and-white cargo exceeds that of any other documented shipwreck.

The recovered blue-and-white alone weighs about 136 kg, comprising over 2350 shards plus several intact or near-intact objects (about 3.9% of the ceramic cargo by weight).

Beyond blue-and-white from Jingdezhen, China—known for its history of ceramic production that peaked during the Ming and Qing dynasties—the cargo includes a wide variety of Longquan celadon, Jingdezhen qingbai (bluish-white glazed) and shufu (“Privy Council”) wares, Dehua whiteware, greenwares probably from Fujian, and Fujian Cizao storage jars and small-mouth jars.

Dr Flecker notes that—even with relatively few intact pieces—the overall ceramic quality is often "superlative", particularly for Jingdezhen blue-and-white and qingbai/shufu wares, as well as Longquan celadon.

The study also addresses the ship and its route. Although no hull survives, associated evidence supports identification as a Chinese junk. Flecker proposed the vessel likely loaded at Quanzhou of Fujian in the mid-14th century and was bound for the thriving entrepot of Temasek (port that preceded modern Singapore), making this tightly dated assemblage a valuable reference collection for comparing less-provenanced finds.

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Contact the author: Dr Michael Flecker, HeritageSG (subsidiary of Singapore National Heritage Board), Singapore. Email: michael_flecker@heritage.sg

The publisher KeAi was established by Elsevier and China Science Publishing & Media Ltd to unfold quality research globally. In 2013, our focus shifted to open access publishing. We now proudly publish more than 200 world-class, open access, English language journals, spanning all scientific disciplines. Many of these are titles we publish in partnership with prestigious societies and academic institutions, such as the National Natural Science Foundation of China (NSFC).

 

 

ASU professor Anne Stone to present at AAAS Conference in Phoenix on ancient origins of modern disease





Arizona State University
ASU Professor Anne Stone 

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Anne Stone is a Regents Professor in ASU’s School of Human Evolution and Social Change and director for ASU’s Center for Evolution and Medicine. She is an internationally recognized expert in ancient DNA whose research focuses on the evolutionary history of infectious disease and the intersections of biology and human populations.

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Credit: ASU





Arizona State University Regents Anne Stone will present research on the evolutionary history of infectious disease at the American Association for the Advancement of Science (AAAS) Annual Meeting, which takes place in Phoenix next week.

Stone’s presentation, “(Re)Emerging Pathogens: Ancient Spillovers Teach Us About Modern Plagues,” examines tuberculosis (TB), a disease that has affected humans and animals for thousands of years. Drawing on genetic analyses of ancient DNA, her research traces how TB moved between species and human populations over time and what those patterns reveal about the emergence of infectious disease today.

Genetic evidence from pre-Columbian TB cases shows that the disease entered human populations in the Americas through multiple zoonotic spillovers from seals, followed by sustained human-to-human transmission across inland regions and into North America. After European contact, TB strains originating in Eurasia rapidly replaced earlier strains, reshaping disease patterns across the continent.

“Ancient genomes allow us to study infectious disease over much longer timescales than modern data alone,” Stone said. “By looking at how pathogens emerged and adapted in the past, we can identify recurring patterns in the ecological and social conditions that make widespread transmission possible.”

Stone’s work also considers how humans respond to disease over time, including cultural practices and genetic adaptations that influence resistance and vulnerability. Understanding these long-term interactions, she said, provides important context for how pathogens may continue to evolve.

Stone is a Regents Professor in ASU’s School of Human Evolution and Social Change and director for ASU’s Center for Evolution and Medicine. She is an internationally recognized expert in ancient DNA whose research focuses on the evolutionary history of infectious disease and the intersections of biology and human populations.

The AAAS Annual Meeting brings together scientists, policymakers and members of the public from around the world to discuss advances in science and their implications for society.

More information about Stone and her research is available at https://search.asu.edu/profile/627984